ETH Price: $2,500.12 (-0.39%)

Transaction Decoder

Block:
22720791 at Jun-17-2025 12:55:47 AM +UTC
Transaction Fee:
0.000231422004273782 ETH $0.58
Gas Used:
282,377 Gas / 0.819549766 Gwei

Emitted Events:

440 AdminUpgradeabilityProxy.0xddf252ad1be2c89b69c2b068fc378daa952ba7f163c4a11628f55a4df523b3ef( 0xddf252ad1be2c89b69c2b068fc378daa952ba7f163c4a11628f55a4df523b3ef, 0x000000000000000000000000922164bbbd36acf9e854acbbf32facc949fcaeef, 0x00000000000000000000000055877bd7f2ee37bde55ca4b271a3631f3a7ef121, 000000000000000000000000000000000000000000000000008682beb296c85a )
441 AdminUpgradeabilityProxy.0xddf252ad1be2c89b69c2b068fc378daa952ba7f163c4a11628f55a4df523b3ef( 0xddf252ad1be2c89b69c2b068fc378daa952ba7f163c4a11628f55a4df523b3ef, 0x000000000000000000000000922164bbbd36acf9e854acbbf32facc949fcaeef, 0x00000000000000000000000038699d04656ff537ef8671b6b595402ebdbdf6f4, 0000000000000000000000000000000000000000000000000000000000000000 )
442 WBTC.Transfer( from=UniswapV3Pool, to=0x55877bD7F2EE37BDe55cA4B271A3631f3A7ef121, value=121123 )
443 AdminUpgradeabilityProxy.0xddf252ad1be2c89b69c2b068fc378daa952ba7f163c4a11628f55a4df523b3ef( 0xddf252ad1be2c89b69c2b068fc378daa952ba7f163c4a11628f55a4df523b3ef, 0x00000000000000000000000055877bd7f2ee37bde55ca4b271a3631f3a7ef121, 0x0000000000000000000000005a2abdc02ecc86fa3d015f498ec2f2c190c11700, 000000000000000000000000000000000000000000000000008682beb296c85a )
444 AdminUpgradeabilityProxy.0xddf252ad1be2c89b69c2b068fc378daa952ba7f163c4a11628f55a4df523b3ef( 0xddf252ad1be2c89b69c2b068fc378daa952ba7f163c4a11628f55a4df523b3ef, 0x00000000000000000000000055877bd7f2ee37bde55ca4b271a3631f3a7ef121, 0x00000000000000000000000038699d04656ff537ef8671b6b595402ebdbdf6f4, 0000000000000000000000000000000000000000000000000000000000000000 )
445 UniswapV3Pool.Swap( sender=0x55877bD7F2EE37BDe55cA4B271A3631f3A7ef121, recipient=0x55877bD7F2EE37BDe55cA4B271A3631f3A7ef121, amount0=-121123, amount1=37861402430851162, sqrtPriceX96=44232035052432380354512618895704581, liquidity=565660316668835, tick=264665 )
446 TetherToken.Transfer( from=0x56534741CD8B152df6d48AdF7ac51f75169A83b2, to=[Sender] 0x922164bbbd36acf9e854acbbf32facc949fcaeef, value=129710350 )
447 WBTC.Transfer( from=0x55877bD7F2EE37BDe55cA4B271A3631f3A7ef121, to=0x56534741CD8B152df6d48AdF7ac51f75169A83b2, value=121123 )
448 0x56534741cd8b152df6d48adf7ac51f75169a83b2.0xc42079f94a6350d7e6235f29174924f928cc2ac818eb64fed8004e115fbcca67( 0xc42079f94a6350d7e6235f29174924f928cc2ac818eb64fed8004e115fbcca67, 0x00000000000000000000000055877bd7f2ee37bde55ca4b271a3631f3a7ef121, 0x000000000000000000000000922164bbbd36acf9e854acbbf32facc949fcaeef, 000000000000000000000000000000000000000000000000000000000001d923, fffffffffffffffffffffffffffffffffffffffffffffffffffffffff844c6f2, 0000000000000000000000000000000000000020bb962d670f99dc3b7ee1669e, 000000000000000000000000000000000000000000000000000001062b8ca4ce, 000000000000000000000000000000000000000000000000000000000001108b )
449 OpenOceanExchangeProxy.0x76af224a143865a50b41496e1a73622698692c565c1214bc862f18e22d829c5e( 0x76af224a143865a50b41496e1a73622698692c565c1214bc862f18e22d829c5e, 0x000000000000000000000000922164bbbd36acf9e854acbbf32facc949fcaeef, 0x00000000000000000000000045804880de22913dafe09f4980848ece6ecbaf78, 0x000000000000000000000000dac17f958d2ee523a2206206994597c13d831ec7, 000000000000000000000000922164bbbd36acf9e854acbbf32facc949fcaeef, 000000000000000000000000000000000000000000000000008682beb296c85a, 000000000000000000000000000000000000000000000000008682beb296c85a, 0000000000000000000000000000000000000000000000000000000007bb390e, 0000000000000000000000000000000000000000000000000000000003dcfcad, 0000000000000000000000000000000000000000000000000000000007bbf4bb, 000000000000000000000000922164bbbd36acf9e854acbbf32facc949fcaeef )

Account State Difference:

  Address   Before After State Difference Code
0x2260FAC5...93bc2C599
0x45804880...E6EcbAf78
0x56534741...5169A83b2
(Uniswap V3: WBTC-USDT 2)
0x5A2AbDC0...190C11700
(Uniswap V3: WBTC-PAXG)
0x922164BB...949fCAEef
0.730548641806049545 Eth
Nonce: 380
0.730317219801775763 Eth
Nonce: 381
0.000231422004273782
0xdAC17F95...13D831ec7
(BuilderNet)
41.672587927234028488 Eth41.672599841973412368 Eth0.00001191473938388

Execution Trace

OpenOceanExchangeProxy.90411a32( )
  • OpenOceanExchange.swap( caller=0x55877bD7F2EE37BDe55cA4B271A3631f3A7ef121, desc=[{name:srcToken, type:address, order:1, indexed:false, value:0x45804880De22913dAFE09f4980848ECE6EcbAf78, valueString:0x45804880De22913dAFE09f4980848ECE6EcbAf78}, {name:dstToken, type:address, order:2, indexed:false, value:0xdAC17F958D2ee523a2206206994597C13D831ec7, valueString:0xdAC17F958D2ee523a2206206994597C13D831ec7}, {name:srcReceiver, type:address, order:3, indexed:false, value:0x55877bD7F2EE37BDe55cA4B271A3631f3A7ef121, valueString:0x55877bD7F2EE37BDe55cA4B271A3631f3A7ef121}, {name:dstReceiver, type:address, order:4, indexed:false, value:0x922164BBBd36Acf9E854AcBbF32faCC949fCAEef, valueString:0x922164BBBd36Acf9E854AcBbF32faCC949fCAEef}, {name:amount, type:uint256, order:5, indexed:false, value:37861402430851162, valueString:37861402430851162}, {name:minReturnAmount, type:uint256, order:6, indexed:false, value:64814253, valueString:64814253}, {name:guaranteedAmount, type:uint256, order:7, indexed:false, value:129758395, valueString:129758395}, {name:flags, type:uint256, order:8, indexed:false, value:2, valueString:2}, {name:referrer, type:address, order:9, indexed:false, value:0x922164BBBd36Acf9E854AcBbF32faCC949fCAEef, valueString:0x922164BBBd36Acf9E854AcBbF32faCC949fCAEef}, {name:permit, type:bytes, order:10, indexed:false, value:0x, valueString:0x}], calls= ) => ( returnAmount=129710350 )
    • AdminUpgradeabilityProxy.23b872dd( )
      • PAXGImplementation.transferFrom( _from=0x922164BBBd36Acf9E854AcBbF32faCC949fCAEef, _to=0x55877bD7F2EE37BDe55cA4B271A3631f3A7ef121, _value=37861402430851162 ) => ( True )
      • TetherToken.balanceOf( who=0x922164BBBd36Acf9E854AcBbF32faCC949fCAEef ) => ( 769508070 )
      • 0x55877bd7f2ee37bde55ca4b271a3631f3a7ef121.a8920d2b( )
        • 0x55877bd7f2ee37bde55ca4b271a3631f3a7ef121.0c7e1209( )
          • 0x55877bd7f2ee37bde55ca4b271a3631f3a7ef121.e5b07cdb( )
            • UniswapV3Pool.swap( recipient=0x55877bD7F2EE37BDe55cA4B271A3631f3A7ef121, zeroForOne=False, amountSpecified=37861402430851162, sqrtPriceLimitX96=1461446703485210103287273052203988822378723970341, data=0x00000000000000000000000000000000000000000000000000000000000000200000000000000000000000000000000000000000000000000000000000000040000000000000000000000000000000000000000000000000008682BEB296C85A000000000000000000000000000000000000000000000000000000000000002E45804880DE22913DAFE09F4980848ECE6ECBAF78000BB82260FAC5E5542A773AA44FBCFEDF7C193BC2C599000001000000000000000000000000000000000000 ) => ( amount0=-121123, amount1=37861402430851162 )
              • WBTC.transfer( _to=0x55877bD7F2EE37BDe55cA4B271A3631f3A7ef121, _value=121123 ) => ( True )
              • AdminUpgradeabilityProxy.70a08231( )
              • 0x55877bd7f2ee37bde55ca4b271a3631f3a7ef121.fa461e33( )
              • AdminUpgradeabilityProxy.70a08231( )
              • 0x55877bd7f2ee37bde55ca4b271a3631f3a7ef121.0c7e1209( )
                • 0x55877bd7f2ee37bde55ca4b271a3631f3a7ef121.9f865422( )
                  • WBTC.balanceOf( _owner=0x55877bD7F2EE37BDe55cA4B271A3631f3A7ef121 ) => ( 121123 )
                  • 0x55877bd7f2ee37bde55ca4b271a3631f3a7ef121.e5b07cdb( )
                    • Uniswap V3: WBTC-USDT 2.128acb08( )
                    • TetherToken.balanceOf( who=0x922164BBBd36Acf9E854AcBbF32faCC949fCAEef ) => ( 899218420 )
                      File 1 of 7: OpenOceanExchangeProxy
                      // File: @openzeppelin/contracts/proxy/Proxy.sol
                      
                      // SPDX-License-Identifier: MIT
                      
                      pragma solidity >=0.6.0 <0.8.0;
                      
                      /**
                       * @dev This abstract contract provides a fallback function that delegates all calls to another contract using the EVM
                       * instruction `delegatecall`. We refer to the second contract as the _implementation_ behind the proxy, and it has to
                       * be specified by overriding the virtual {_implementation} function.
                       *
                       * Additionally, delegation to the implementation can be triggered manually through the {_fallback} function, or to a
                       * different contract through the {_delegate} function.
                       *
                       * The success and return data of the delegated call will be returned back to the caller of the proxy.
                       */
                      abstract contract Proxy {
                          /**
                           * @dev Delegates the current call to `implementation`.
                           *
                           * This function does not return to its internall call site, it will return directly to the external caller.
                           */
                          function _delegate(address implementation) internal virtual {
                              // solhint-disable-next-line no-inline-assembly
                              assembly {
                                  // Copy msg.data. We take full control of memory in this inline assembly
                                  // block because it will not return to Solidity code. We overwrite the
                                  // Solidity scratch pad at memory position 0.
                                  calldatacopy(0, 0, calldatasize())
                      
                                  // Call the implementation.
                                  // out and outsize are 0 because we don't know the size yet.
                                  let result := delegatecall(gas(), implementation, 0, calldatasize(), 0, 0)
                      
                                  // Copy the returned data.
                                  returndatacopy(0, 0, returndatasize())
                      
                                  switch result
                                  // delegatecall returns 0 on error.
                                  case 0 {
                                      revert(0, returndatasize())
                                  }
                                  default {
                                      return(0, returndatasize())
                                  }
                              }
                          }
                      
                          /**
                           * @dev This is a virtual function that should be overriden so it returns the address to which the fallback function
                           * and {_fallback} should delegate.
                           */
                          function _implementation() internal view virtual returns (address);
                      
                          /**
                           * @dev Delegates the current call to the address returned by `_implementation()`.
                           *
                           * This function does not return to its internall call site, it will return directly to the external caller.
                           */
                          function _fallback() internal virtual {
                              _beforeFallback();
                              _delegate(_implementation());
                          }
                      
                          /**
                           * @dev Fallback function that delegates calls to the address returned by `_implementation()`. Will run if no other
                           * function in the contract matches the call data.
                           */
                          fallback() external payable virtual {
                              _fallback();
                          }
                      
                          /**
                           * @dev Fallback function that delegates calls to the address returned by `_implementation()`. Will run if call data
                           * is empty.
                           */
                          receive() external payable virtual {
                              _fallback();
                          }
                      
                          /**
                           * @dev Hook that is called before falling back to the implementation. Can happen as part of a manual `_fallback`
                           * call, or as part of the Solidity `fallback` or `receive` functions.
                           *
                           * If overriden should call `super._beforeFallback()`.
                           */
                          function _beforeFallback() internal virtual {}
                      }
                      
                      // File: @openzeppelin/contracts/utils/Address.sol
                      
                      pragma solidity >=0.6.2 <0.8.0;
                      
                      /**
                       * @dev Collection of functions related to the address type
                       */
                      library Address {
                          /**
                           * @dev Returns true if `account` is a contract.
                           *
                           * [IMPORTANT]
                           * ====
                           * It is unsafe to assume that an address for which this function returns
                           * false is an externally-owned account (EOA) and not a contract.
                           *
                           * Among others, `isContract` will return false for the following
                           * types of addresses:
                           *
                           *  - an externally-owned account
                           *  - a contract in construction
                           *  - an address where a contract will be created
                           *  - an address where a contract lived, but was destroyed
                           * ====
                           */
                          function isContract(address account) internal view returns (bool) {
                              // This method relies on extcodesize, which returns 0 for contracts in
                              // construction, since the code is only stored at the end of the
                              // constructor execution.
                      
                              uint256 size;
                              // solhint-disable-next-line no-inline-assembly
                              assembly {
                                  size := extcodesize(account)
                              }
                              return size > 0;
                          }
                      
                          /**
                           * @dev Replacement for Solidity's `transfer`: sends `amount` wei to
                           * `recipient`, forwarding all available gas and reverting on errors.
                           *
                           * https://eips.ethereum.org/EIPS/eip-1884[EIP1884] increases the gas cost
                           * of certain opcodes, possibly making contracts go over the 2300 gas limit
                           * imposed by `transfer`, making them unable to receive funds via
                           * `transfer`. {sendValue} removes this limitation.
                           *
                           * https://diligence.consensys.net/posts/2019/09/stop-using-soliditys-transfer-now/[Learn more].
                           *
                           * IMPORTANT: because control is transferred to `recipient`, care must be
                           * taken to not create reentrancy vulnerabilities. Consider using
                           * {ReentrancyGuard} or the
                           * https://solidity.readthedocs.io/en/v0.5.11/security-considerations.html#use-the-checks-effects-interactions-pattern[checks-effects-interactions pattern].
                           */
                          function sendValue(address payable recipient, uint256 amount) internal {
                              require(address(this).balance >= amount, "Address: insufficient balance");
                      
                              // solhint-disable-next-line avoid-low-level-calls, avoid-call-value
                              (bool success, ) = recipient.call{value: amount}("");
                              require(success, "Address: unable to send value, recipient may have reverted");
                          }
                      
                          /**
                           * @dev Performs a Solidity function call using a low level `call`. A
                           * plain`call` is an unsafe replacement for a function call: use this
                           * function instead.
                           *
                           * If `target` reverts with a revert reason, it is bubbled up by this
                           * function (like regular Solidity function calls).
                           *
                           * Returns the raw returned data. To convert to the expected return value,
                           * use https://solidity.readthedocs.io/en/latest/units-and-global-variables.html?highlight=abi.decode#abi-encoding-and-decoding-functions[`abi.decode`].
                           *
                           * Requirements:
                           *
                           * - `target` must be a contract.
                           * - calling `target` with `data` must not revert.
                           *
                           * _Available since v3.1._
                           */
                          function functionCall(address target, bytes memory data) internal returns (bytes memory) {
                              return functionCall(target, data, "Address: low-level call failed");
                          }
                      
                          /**
                           * @dev Same as {xref-Address-functionCall-address-bytes-}[`functionCall`], but with
                           * `errorMessage` as a fallback revert reason when `target` reverts.
                           *
                           * _Available since v3.1._
                           */
                          function functionCall(
                              address target,
                              bytes memory data,
                              string memory errorMessage
                          ) internal returns (bytes memory) {
                              return functionCallWithValue(target, data, 0, errorMessage);
                          }
                      
                          /**
                           * @dev Same as {xref-Address-functionCall-address-bytes-}[`functionCall`],
                           * but also transferring `value` wei to `target`.
                           *
                           * Requirements:
                           *
                           * - the calling contract must have an ETH balance of at least `value`.
                           * - the called Solidity function must be `payable`.
                           *
                           * _Available since v3.1._
                           */
                          function functionCallWithValue(
                              address target,
                              bytes memory data,
                              uint256 value
                          ) internal returns (bytes memory) {
                              return functionCallWithValue(target, data, value, "Address: low-level call with value failed");
                          }
                      
                          /**
                           * @dev Same as {xref-Address-functionCallWithValue-address-bytes-uint256-}[`functionCallWithValue`], but
                           * with `errorMessage` as a fallback revert reason when `target` reverts.
                           *
                           * _Available since v3.1._
                           */
                          function functionCallWithValue(
                              address target,
                              bytes memory data,
                              uint256 value,
                              string memory errorMessage
                          ) internal returns (bytes memory) {
                              require(address(this).balance >= value, "Address: insufficient balance for call");
                              require(isContract(target), "Address: call to non-contract");
                      
                              // solhint-disable-next-line avoid-low-level-calls
                              (bool success, bytes memory returndata) = target.call{value: value}(data);
                              return _verifyCallResult(success, returndata, errorMessage);
                          }
                      
                          /**
                           * @dev Same as {xref-Address-functionCall-address-bytes-}[`functionCall`],
                           * but performing a static call.
                           *
                           * _Available since v3.3._
                           */
                          function functionStaticCall(address target, bytes memory data) internal view returns (bytes memory) {
                              return functionStaticCall(target, data, "Address: low-level static call failed");
                          }
                      
                          /**
                           * @dev Same as {xref-Address-functionCall-address-bytes-string-}[`functionCall`],
                           * but performing a static call.
                           *
                           * _Available since v3.3._
                           */
                          function functionStaticCall(
                              address target,
                              bytes memory data,
                              string memory errorMessage
                          ) internal view returns (bytes memory) {
                              require(isContract(target), "Address: static call to non-contract");
                      
                              // solhint-disable-next-line avoid-low-level-calls
                              (bool success, bytes memory returndata) = target.staticcall(data);
                              return _verifyCallResult(success, returndata, errorMessage);
                          }
                      
                          /**
                           * @dev Same as {xref-Address-functionCall-address-bytes-}[`functionCall`],
                           * but performing a delegate call.
                           *
                           * _Available since v3.4._
                           */
                          function functionDelegateCall(address target, bytes memory data) internal returns (bytes memory) {
                              return functionDelegateCall(target, data, "Address: low-level delegate call failed");
                          }
                      
                          /**
                           * @dev Same as {xref-Address-functionCall-address-bytes-string-}[`functionCall`],
                           * but performing a delegate call.
                           *
                           * _Available since v3.4._
                           */
                          function functionDelegateCall(
                              address target,
                              bytes memory data,
                              string memory errorMessage
                          ) internal returns (bytes memory) {
                              require(isContract(target), "Address: delegate call to non-contract");
                      
                              // solhint-disable-next-line avoid-low-level-calls
                              (bool success, bytes memory returndata) = target.delegatecall(data);
                              return _verifyCallResult(success, returndata, errorMessage);
                          }
                      
                          function _verifyCallResult(
                              bool success,
                              bytes memory returndata,
                              string memory errorMessage
                          ) private pure returns (bytes memory) {
                              if (success) {
                                  return returndata;
                              } else {
                                  // Look for revert reason and bubble it up if present
                                  if (returndata.length > 0) {
                                      // The easiest way to bubble the revert reason is using memory via assembly
                      
                                      // solhint-disable-next-line no-inline-assembly
                                      assembly {
                                          let returndata_size := mload(returndata)
                                          revert(add(32, returndata), returndata_size)
                                      }
                                  } else {
                                      revert(errorMessage);
                                  }
                              }
                          }
                      }
                      
                      // File: @openzeppelin/contracts/proxy/UpgradeableProxy.sol
                      
                      pragma solidity >=0.6.0 <0.8.0;
                      
                      /**
                       * @dev This contract implements an upgradeable proxy. It is upgradeable because calls are delegated to an
                       * implementation address that can be changed. This address is stored in storage in the location specified by
                       * https://eips.ethereum.org/EIPS/eip-1967[EIP1967], so that it doesn't conflict with the storage layout of the
                       * implementation behind the proxy.
                       *
                       * Upgradeability is only provided internally through {_upgradeTo}. For an externally upgradeable proxy see
                       * {TransparentUpgradeableProxy}.
                       */
                      contract UpgradeableProxy is Proxy {
                          /**
                           * @dev Initializes the upgradeable proxy with an initial implementation specified by `_logic`.
                           *
                           * If `_data` is nonempty, it's used as data in a delegate call to `_logic`. This will typically be an encoded
                           * function call, and allows initializating the storage of the proxy like a Solidity constructor.
                           */
                          constructor(address _logic, bytes memory _data) public payable {
                              assert(_IMPLEMENTATION_SLOT == bytes32(uint256(keccak256("eip1967.proxy.implementation")) - 1));
                              _setImplementation(_logic);
                              if (_data.length > 0) {
                                  Address.functionDelegateCall(_logic, _data);
                              }
                          }
                      
                          /**
                           * @dev Emitted when the implementation is upgraded.
                           */
                          event Upgraded(address indexed implementation);
                      
                          /**
                           * @dev Storage slot with the address of the current implementation.
                           * This is the keccak-256 hash of "eip1967.proxy.implementation" subtracted by 1, and is
                           * validated in the constructor.
                           */
                          bytes32 private constant _IMPLEMENTATION_SLOT = 0x360894a13ba1a3210667c828492db98dca3e2076cc3735a920a3ca505d382bbc;
                      
                          /**
                           * @dev Returns the current implementation address.
                           */
                          function _implementation() internal view virtual override returns (address impl) {
                              bytes32 slot = _IMPLEMENTATION_SLOT;
                              // solhint-disable-next-line no-inline-assembly
                              assembly {
                                  impl := sload(slot)
                              }
                          }
                      
                          /**
                           * @dev Upgrades the proxy to a new implementation.
                           *
                           * Emits an {Upgraded} event.
                           */
                          function _upgradeTo(address newImplementation) internal virtual {
                              _setImplementation(newImplementation);
                              emit Upgraded(newImplementation);
                          }
                      
                          /**
                           * @dev Stores a new address in the EIP1967 implementation slot.
                           */
                          function _setImplementation(address newImplementation) private {
                              require(Address.isContract(newImplementation), "UpgradeableProxy: new implementation is not a contract");
                      
                              bytes32 slot = _IMPLEMENTATION_SLOT;
                      
                              // solhint-disable-next-line no-inline-assembly
                              assembly {
                                  sstore(slot, newImplementation)
                              }
                          }
                      }
                      
                      // File: @openzeppelin/contracts/proxy/TransparentUpgradeableProxy.sol
                      
                      pragma solidity >=0.6.0 <0.8.0;
                      
                      /**
                       * @dev This contract implements a proxy that is upgradeable by an admin.
                       *
                       * To avoid https://medium.com/nomic-labs-blog/malicious-backdoors-in-ethereum-proxies-62629adf3357[proxy selector
                       * clashing], which can potentially be used in an attack, this contract uses the
                       * https://blog.openzeppelin.com/the-transparent-proxy-pattern/[transparent proxy pattern]. This pattern implies two
                       * things that go hand in hand:
                       *
                       * 1. If any account other than the admin calls the proxy, the call will be forwarded to the implementation, even if
                       * that call matches one of the admin functions exposed by the proxy itself.
                       * 2. If the admin calls the proxy, it can access the admin functions, but its calls will never be forwarded to the
                       * implementation. If the admin tries to call a function on the implementation it will fail with an error that says
                       * "admin cannot fallback to proxy target".
                       *
                       * These properties mean that the admin account can only be used for admin actions like upgrading the proxy or changing
                       * the admin, so it's best if it's a dedicated account that is not used for anything else. This will avoid headaches due
                       * to sudden errors when trying to call a function from the proxy implementation.
                       *
                       * Our recommendation is for the dedicated account to be an instance of the {ProxyAdmin} contract. If set up this way,
                       * you should think of the `ProxyAdmin` instance as the real administrative interface of your proxy.
                       */
                      contract TransparentUpgradeableProxy is UpgradeableProxy {
                          /**
                           * @dev Initializes an upgradeable proxy managed by `_admin`, backed by the implementation at `_logic`, and
                           * optionally initialized with `_data` as explained in {UpgradeableProxy-constructor}.
                           */
                          constructor(
                              address _logic,
                              address admin_,
                              bytes memory _data
                          ) public payable UpgradeableProxy(_logic, _data) {
                              assert(_ADMIN_SLOT == bytes32(uint256(keccak256("eip1967.proxy.admin")) - 1));
                              _setAdmin(admin_);
                          }
                      
                          /**
                           * @dev Emitted when the admin account has changed.
                           */
                          event AdminChanged(address previousAdmin, address newAdmin);
                      
                          /**
                           * @dev Storage slot with the admin of the contract.
                           * This is the keccak-256 hash of "eip1967.proxy.admin" subtracted by 1, and is
                           * validated in the constructor.
                           */
                          bytes32 private constant _ADMIN_SLOT = 0xb53127684a568b3173ae13b9f8a6016e243e63b6e8ee1178d6a717850b5d6103;
                      
                          /**
                           * @dev Modifier used internally that will delegate the call to the implementation unless the sender is the admin.
                           */
                          modifier ifAdmin() {
                              if (msg.sender == _admin()) {
                                  _;
                              } else {
                                  _fallback();
                              }
                          }
                      
                          /**
                           * @dev Returns the current admin.
                           *
                           * NOTE: Only the admin can call this function. See {ProxyAdmin-getProxyAdmin}.
                           *
                           * TIP: To get this value clients can read directly from the storage slot shown below (specified by EIP1967) using the
                           * https://eth.wiki/json-rpc/API#eth_getstorageat[`eth_getStorageAt`] RPC call.
                           * `0xb53127684a568b3173ae13b9f8a6016e243e63b6e8ee1178d6a717850b5d6103`
                           */
                          function admin() external ifAdmin returns (address admin_) {
                              admin_ = _admin();
                          }
                      
                          /**
                           * @dev Returns the current implementation.
                           *
                           * NOTE: Only the admin can call this function. See {ProxyAdmin-getProxyImplementation}.
                           *
                           * TIP: To get this value clients can read directly from the storage slot shown below (specified by EIP1967) using the
                           * https://eth.wiki/json-rpc/API#eth_getstorageat[`eth_getStorageAt`] RPC call.
                           * `0x360894a13ba1a3210667c828492db98dca3e2076cc3735a920a3ca505d382bbc`
                           */
                          function implementation() external ifAdmin returns (address implementation_) {
                              implementation_ = _implementation();
                          }
                      
                          /**
                           * @dev Changes the admin of the proxy.
                           *
                           * Emits an {AdminChanged} event.
                           *
                           * NOTE: Only the admin can call this function. See {ProxyAdmin-changeProxyAdmin}.
                           */
                          function changeAdmin(address newAdmin) external virtual ifAdmin {
                              require(newAdmin != address(0), "TransparentUpgradeableProxy: new admin is the zero address");
                              emit AdminChanged(_admin(), newAdmin);
                              _setAdmin(newAdmin);
                          }
                      
                          /**
                           * @dev Upgrade the implementation of the proxy.
                           *
                           * NOTE: Only the admin can call this function. See {ProxyAdmin-upgrade}.
                           */
                          function upgradeTo(address newImplementation) external virtual ifAdmin {
                              _upgradeTo(newImplementation);
                          }
                      
                          /**
                           * @dev Upgrade the implementation of the proxy, and then call a function from the new implementation as specified
                           * by `data`, which should be an encoded function call. This is useful to initialize new storage variables in the
                           * proxied contract.
                           *
                           * NOTE: Only the admin can call this function. See {ProxyAdmin-upgradeAndCall}.
                           */
                          function upgradeToAndCall(address newImplementation, bytes calldata data) external payable virtual ifAdmin {
                              _upgradeTo(newImplementation);
                              Address.functionDelegateCall(newImplementation, data);
                          }
                      
                          /**
                           * @dev Returns the current admin.
                           */
                          function _admin() internal view virtual returns (address adm) {
                              bytes32 slot = _ADMIN_SLOT;
                              // solhint-disable-next-line no-inline-assembly
                              assembly {
                                  adm := sload(slot)
                              }
                          }
                      
                          /**
                           * @dev Stores a new address in the EIP1967 admin slot.
                           */
                          function _setAdmin(address newAdmin) private {
                              bytes32 slot = _ADMIN_SLOT;
                      
                              // solhint-disable-next-line no-inline-assembly
                              assembly {
                                  sstore(slot, newAdmin)
                              }
                          }
                      
                          /**
                           * @dev Makes sure the admin cannot access the fallback function. See {Proxy-_beforeFallback}.
                           */
                          function _beforeFallback() internal virtual override {
                              require(msg.sender != _admin(), "TransparentUpgradeableProxy: admin cannot fallback to proxy target");
                              super._beforeFallback();
                          }
                      }
                      
                      // File: contracts/OpenOceanExchangeProxy.sol
                      
                      pragma solidity ^0.6.12;
                      
                      contract OpenOceanExchangeProxy is TransparentUpgradeableProxy {
                          constructor(
                              address logic,
                              address admin,
                              bytes memory data
                          ) public TransparentUpgradeableProxy(logic, admin, data) {}
                      }

                      File 2 of 7: AdminUpgradeabilityProxy
                      // File: contracts/zeppelin/Proxy.sol
                      
                      pragma solidity 0.4.24;
                      
                      /**
                       * @title Proxy
                       * @dev Implements delegation of calls to other contracts, with proper
                       * forwarding of return values and bubbling of failures.
                       * It defines a fallback function that delegates all calls to the address
                       * returned by the abstract _implementation() internal function.
                       */
                      contract Proxy {
                          /**
                           * @dev Fallback function.
                           * Implemented entirely in `_fallback`.
                           */
                          function () payable external {
                              _fallback();
                          }
                      
                          /**
                           * @return The Address of the implementation.
                           */
                          function _implementation() internal view returns (address);
                      
                          /**
                           * @dev Delegates execution to an implementation contract.
                           * This is a low level function that doesn't return to its internal call site.
                           * It will return to the external caller whatever the implementation returns.
                           * @param implementation Address to delegate.
                           */
                          function _delegate(address implementation) internal {
                              assembly {
                              // Copy msg.data. We take full control of memory in this inline assembly
                              // block because it will not return to Solidity code. We overwrite the
                              // Solidity scratch pad at memory position 0.
                                  calldatacopy(0, 0, calldatasize)
                      
                              // Call the implementation.
                              // out and outsize are 0 because we don't know the size yet.
                                  let result := delegatecall(gas, implementation, 0, calldatasize, 0, 0)
                      
                              // Copy the returned data.
                                  returndatacopy(0, 0, returndatasize)
                      
                                  switch result
                                  // delegatecall returns 0 on error.
                                  case 0 { revert(0, returndatasize) }
                                  default { return(0, returndatasize) }
                              }
                          }
                      
                          /**
                           * @dev Function that is run as the first thing in the fallback function.
                           * Can be redefined in derived contracts to add functionality.
                           * Redefinitions must call super._willFallback().
                           */
                          function _willFallback() internal {
                          }
                      
                          /**
                           * @dev fallback implementation.
                           * Extracted to enable manual triggering.
                           */
                          function _fallback() internal {
                              _willFallback();
                              _delegate(_implementation());
                          }
                      }
                      
                      // File: contracts/zeppelin/AddressUtils.sol
                      
                      pragma solidity 0.4.24;
                      
                      
                      /**
                       * Utility library of inline functions on addresses
                       */
                      library AddressUtils {
                      
                          /**
                           * Returns whether the target address is a contract
                           * @dev This function will return false if invoked during the constructor of a contract,
                           * as the code is not actually created until after the constructor finishes.
                           * @param addr address to check
                           * @return whether the target address is a contract
                           */
                          function isContract(address addr) internal view returns (bool) {
                              uint256 size;
                              // XXX Currently there is no better way to check if there is a contract in an address
                              // than to check the size of the code at that address.
                              // See https://ethereum.stackexchange.com/a/14016/36603
                              // for more details about how this works.
                              // TODO Check this again before the Serenity release, because all addresses will be
                              // contracts then.
                              // solium-disable-next-line security/no-inline-assembly
                              assembly { size := extcodesize(addr) }
                              return size > 0;
                          }
                      
                      }
                      
                      // File: contracts/zeppelin/UpgradeabilityProxy.sol
                      
                      pragma solidity 0.4.24;
                      
                      
                      
                      /**
                       * @title UpgradeabilityProxy
                       * @dev This contract implements a proxy that allows to change the
                       * implementation address to which it will delegate.
                       * Such a change is called an implementation upgrade.
                       */
                      contract UpgradeabilityProxy is Proxy {
                          /**
                           * @dev Emitted when the implementation is upgraded.
                           * @param implementation Address of the new implementation.
                           */
                          event Upgraded(address implementation);
                      
                          /**
                           * @dev Storage slot with the address of the current implementation.
                           * This is the keccak-256 hash of "org.zeppelinos.proxy.implementation", and is
                           * validated in the constructor.
                           */
                          bytes32 private constant IMPLEMENTATION_SLOT = 0x7050c9e0f4ca769c69bd3a8ef740bc37934f8e2c036e5a723fd8ee048ed3f8c3;
                      
                          /**
                           * @dev Contract constructor.
                           * @param _implementation Address of the initial implementation.
                           */
                          constructor(address _implementation) public {
                              assert(IMPLEMENTATION_SLOT == keccak256("org.zeppelinos.proxy.implementation"));
                      
                              _setImplementation(_implementation);
                          }
                      
                          /**
                           * @dev Returns the current implementation.
                           * @return Address of the current implementation
                           */
                          function _implementation() internal view returns (address impl) {
                              bytes32 slot = IMPLEMENTATION_SLOT;
                              assembly {
                                  impl := sload(slot)
                              }
                          }
                      
                          /**
                           * @dev Upgrades the proxy to a new implementation.
                           * @param newImplementation Address of the new implementation.
                           */
                          function _upgradeTo(address newImplementation) internal {
                              _setImplementation(newImplementation);
                              emit Upgraded(newImplementation);
                          }
                      
                          /**
                           * @dev Sets the implementation address of the proxy.
                           * @param newImplementation Address of the new implementation.
                           */
                          function _setImplementation(address newImplementation) private {
                              require(AddressUtils.isContract(newImplementation), "Cannot set a proxy implementation to a non-contract address");
                      
                              bytes32 slot = IMPLEMENTATION_SLOT;
                      
                              assembly {
                                  sstore(slot, newImplementation)
                              }
                          }
                      }
                      
                      // File: contracts/zeppelin/AdminUpgradeabilityProxy.sol
                      
                      pragma solidity 0.4.24;
                      
                      
                      /**
                       * @title AdminUpgradeabilityProxy
                       * @dev This contract combines an upgradeability proxy with an authorization
                       * mechanism for administrative tasks.
                       * All external functions in this contract must be guarded by the
                       * `ifAdmin` modifier. See ethereum/solidity#3864 for a Solidity
                       * feature proposal that would enable this to be done automatically.
                       */
                      contract AdminUpgradeabilityProxy is UpgradeabilityProxy {
                          /**
                           * @dev Emitted when the administration has been transferred.
                           * @param previousAdmin Address of the previous admin.
                           * @param newAdmin Address of the new admin.
                           */
                          event AdminChanged(address previousAdmin, address newAdmin);
                      
                          /**
                           * @dev Storage slot with the admin of the contract.
                           * This is the keccak-256 hash of "org.zeppelinos.proxy.admin", and is
                           * validated in the constructor.
                           */
                          bytes32 private constant ADMIN_SLOT = 0x10d6a54a4754c8869d6886b5f5d7fbfa5b4522237ea5c60d11bc4e7a1ff9390b;
                      
                          /**
                           * @dev Modifier to check whether the `msg.sender` is the admin.
                           * If it is, it will run the function. Otherwise, it will delegate the call
                           * to the implementation.
                           */
                          modifier ifAdmin() {
                              if (msg.sender == _admin()) {
                                  _;
                              } else {
                                  _fallback();
                              }
                          }
                      
                          /**
                           * Contract constructor.
                           * It sets the `msg.sender` as the proxy administrator.
                           * @param _implementation address of the initial implementation.
                           */
                          constructor(address _implementation) UpgradeabilityProxy(_implementation) public {
                              assert(ADMIN_SLOT == keccak256("org.zeppelinos.proxy.admin"));
                      
                              _setAdmin(msg.sender);
                          }
                      
                          /**
                           * @return The address of the proxy admin.
                           */
                          function admin() external view ifAdmin returns (address) {
                              return _admin();
                          }
                      
                          /**
                           * @return The address of the implementation.
                           */
                          function implementation() external view ifAdmin returns (address) {
                              return _implementation();
                          }
                      
                          /**
                           * @dev Changes the admin of the proxy.
                           * Only the current admin can call this function.
                           * @param newAdmin Address to transfer proxy administration to.
                           */
                          function changeAdmin(address newAdmin) external ifAdmin {
                              require(newAdmin != address(0), "Cannot change the admin of a proxy to the zero address");
                              emit AdminChanged(_admin(), newAdmin);
                              _setAdmin(newAdmin);
                          }
                      
                          /**
                           * @dev Upgrade the backing implementation of the proxy.
                           * Only the admin can call this function.
                           * @param newImplementation Address of the new implementation.
                           */
                          function upgradeTo(address newImplementation) external ifAdmin {
                              _upgradeTo(newImplementation);
                          }
                      
                          /**
                           * @dev Upgrade the backing implementation of the proxy and call a function
                           * on the new implementation.
                           * This is useful to initialize the proxied contract.
                           * @param newImplementation Address of the new implementation.
                           * @param data Data to send as msg.data in the low level call.
                           * It should include the signature and the parameters of the function to be
                           * called, as described in
                           * https://solidity.readthedocs.io/en/develop/abi-spec.html#function-selector-and-argument-encoding.
                           */
                          function upgradeToAndCall(address newImplementation, bytes data) payable external ifAdmin {
                              _upgradeTo(newImplementation);
                              require(address(this).call.value(msg.value)(data));
                          }
                      
                          /**
                           * @return The admin slot.
                           */
                          function _admin() internal view returns (address adm) {
                              bytes32 slot = ADMIN_SLOT;
                              assembly {
                                  adm := sload(slot)
                              }
                          }
                      
                          /**
                           * @dev Sets the address of the proxy admin.
                           * @param newAdmin Address of the new proxy admin.
                           */
                          function _setAdmin(address newAdmin) internal {
                              bytes32 slot = ADMIN_SLOT;
                      
                              assembly {
                                  sstore(slot, newAdmin)
                              }
                          }
                      
                          /**
                           * @dev Only fall back when the sender is not the admin.
                           */
                          function _willFallback() internal {
                              require(msg.sender != _admin(), "Cannot call fallback function from the proxy admin");
                              super._willFallback();
                          }
                      }

                      File 3 of 7: UniswapV3Pool
                      // SPDX-License-Identifier: BUSL-1.1
                      pragma solidity =0.7.6;
                      import './interfaces/IUniswapV3Pool.sol';
                      import './NoDelegateCall.sol';
                      import './libraries/LowGasSafeMath.sol';
                      import './libraries/SafeCast.sol';
                      import './libraries/Tick.sol';
                      import './libraries/TickBitmap.sol';
                      import './libraries/Position.sol';
                      import './libraries/Oracle.sol';
                      import './libraries/FullMath.sol';
                      import './libraries/FixedPoint128.sol';
                      import './libraries/TransferHelper.sol';
                      import './libraries/TickMath.sol';
                      import './libraries/LiquidityMath.sol';
                      import './libraries/SqrtPriceMath.sol';
                      import './libraries/SwapMath.sol';
                      import './interfaces/IUniswapV3PoolDeployer.sol';
                      import './interfaces/IUniswapV3Factory.sol';
                      import './interfaces/IERC20Minimal.sol';
                      import './interfaces/callback/IUniswapV3MintCallback.sol';
                      import './interfaces/callback/IUniswapV3SwapCallback.sol';
                      import './interfaces/callback/IUniswapV3FlashCallback.sol';
                      contract UniswapV3Pool is IUniswapV3Pool, NoDelegateCall {
                          using LowGasSafeMath for uint256;
                          using LowGasSafeMath for int256;
                          using SafeCast for uint256;
                          using SafeCast for int256;
                          using Tick for mapping(int24 => Tick.Info);
                          using TickBitmap for mapping(int16 => uint256);
                          using Position for mapping(bytes32 => Position.Info);
                          using Position for Position.Info;
                          using Oracle for Oracle.Observation[65535];
                          /// @inheritdoc IUniswapV3PoolImmutables
                          address public immutable override factory;
                          /// @inheritdoc IUniswapV3PoolImmutables
                          address public immutable override token0;
                          /// @inheritdoc IUniswapV3PoolImmutables
                          address public immutable override token1;
                          /// @inheritdoc IUniswapV3PoolImmutables
                          uint24 public immutable override fee;
                          /// @inheritdoc IUniswapV3PoolImmutables
                          int24 public immutable override tickSpacing;
                          /// @inheritdoc IUniswapV3PoolImmutables
                          uint128 public immutable override maxLiquidityPerTick;
                          struct Slot0 {
                              // the current price
                              uint160 sqrtPriceX96;
                              // the current tick
                              int24 tick;
                              // the most-recently updated index of the observations array
                              uint16 observationIndex;
                              // the current maximum number of observations that are being stored
                              uint16 observationCardinality;
                              // the next maximum number of observations to store, triggered in observations.write
                              uint16 observationCardinalityNext;
                              // the current protocol fee as a percentage of the swap fee taken on withdrawal
                              // represented as an integer denominator (1/x)%
                              uint8 feeProtocol;
                              // whether the pool is locked
                              bool unlocked;
                          }
                          /// @inheritdoc IUniswapV3PoolState
                          Slot0 public override slot0;
                          /// @inheritdoc IUniswapV3PoolState
                          uint256 public override feeGrowthGlobal0X128;
                          /// @inheritdoc IUniswapV3PoolState
                          uint256 public override feeGrowthGlobal1X128;
                          // accumulated protocol fees in token0/token1 units
                          struct ProtocolFees {
                              uint128 token0;
                              uint128 token1;
                          }
                          /// @inheritdoc IUniswapV3PoolState
                          ProtocolFees public override protocolFees;
                          /// @inheritdoc IUniswapV3PoolState
                          uint128 public override liquidity;
                          /// @inheritdoc IUniswapV3PoolState
                          mapping(int24 => Tick.Info) public override ticks;
                          /// @inheritdoc IUniswapV3PoolState
                          mapping(int16 => uint256) public override tickBitmap;
                          /// @inheritdoc IUniswapV3PoolState
                          mapping(bytes32 => Position.Info) public override positions;
                          /// @inheritdoc IUniswapV3PoolState
                          Oracle.Observation[65535] public override observations;
                          /// @dev Mutually exclusive reentrancy protection into the pool to/from a method. This method also prevents entrance
                          /// to a function before the pool is initialized. The reentrancy guard is required throughout the contract because
                          /// we use balance checks to determine the payment status of interactions such as mint, swap and flash.
                          modifier lock() {
                              require(slot0.unlocked, 'LOK');
                              slot0.unlocked = false;
                              _;
                              slot0.unlocked = true;
                          }
                          /// @dev Prevents calling a function from anyone except the address returned by IUniswapV3Factory#owner()
                          modifier onlyFactoryOwner() {
                              require(msg.sender == IUniswapV3Factory(factory).owner());
                              _;
                          }
                          constructor() {
                              int24 _tickSpacing;
                              (factory, token0, token1, fee, _tickSpacing) = IUniswapV3PoolDeployer(msg.sender).parameters();
                              tickSpacing = _tickSpacing;
                              maxLiquidityPerTick = Tick.tickSpacingToMaxLiquidityPerTick(_tickSpacing);
                          }
                          /// @dev Common checks for valid tick inputs.
                          function checkTicks(int24 tickLower, int24 tickUpper) private pure {
                              require(tickLower < tickUpper, 'TLU');
                              require(tickLower >= TickMath.MIN_TICK, 'TLM');
                              require(tickUpper <= TickMath.MAX_TICK, 'TUM');
                          }
                          /// @dev Returns the block timestamp truncated to 32 bits, i.e. mod 2**32. This method is overridden in tests.
                          function _blockTimestamp() internal view virtual returns (uint32) {
                              return uint32(block.timestamp); // truncation is desired
                          }
                          /// @dev Get the pool's balance of token0
                          /// @dev This function is gas optimized to avoid a redundant extcodesize check in addition to the returndatasize
                          /// check
                          function balance0() private view returns (uint256) {
                              (bool success, bytes memory data) =
                                  token0.staticcall(abi.encodeWithSelector(IERC20Minimal.balanceOf.selector, address(this)));
                              require(success && data.length >= 32);
                              return abi.decode(data, (uint256));
                          }
                          /// @dev Get the pool's balance of token1
                          /// @dev This function is gas optimized to avoid a redundant extcodesize check in addition to the returndatasize
                          /// check
                          function balance1() private view returns (uint256) {
                              (bool success, bytes memory data) =
                                  token1.staticcall(abi.encodeWithSelector(IERC20Minimal.balanceOf.selector, address(this)));
                              require(success && data.length >= 32);
                              return abi.decode(data, (uint256));
                          }
                          /// @inheritdoc IUniswapV3PoolDerivedState
                          function snapshotCumulativesInside(int24 tickLower, int24 tickUpper)
                              external
                              view
                              override
                              noDelegateCall
                              returns (
                                  int56 tickCumulativeInside,
                                  uint160 secondsPerLiquidityInsideX128,
                                  uint32 secondsInside
                              )
                          {
                              checkTicks(tickLower, tickUpper);
                              int56 tickCumulativeLower;
                              int56 tickCumulativeUpper;
                              uint160 secondsPerLiquidityOutsideLowerX128;
                              uint160 secondsPerLiquidityOutsideUpperX128;
                              uint32 secondsOutsideLower;
                              uint32 secondsOutsideUpper;
                              {
                                  Tick.Info storage lower = ticks[tickLower];
                                  Tick.Info storage upper = ticks[tickUpper];
                                  bool initializedLower;
                                  (tickCumulativeLower, secondsPerLiquidityOutsideLowerX128, secondsOutsideLower, initializedLower) = (
                                      lower.tickCumulativeOutside,
                                      lower.secondsPerLiquidityOutsideX128,
                                      lower.secondsOutside,
                                      lower.initialized
                                  );
                                  require(initializedLower);
                                  bool initializedUpper;
                                  (tickCumulativeUpper, secondsPerLiquidityOutsideUpperX128, secondsOutsideUpper, initializedUpper) = (
                                      upper.tickCumulativeOutside,
                                      upper.secondsPerLiquidityOutsideX128,
                                      upper.secondsOutside,
                                      upper.initialized
                                  );
                                  require(initializedUpper);
                              }
                              Slot0 memory _slot0 = slot0;
                              if (_slot0.tick < tickLower) {
                                  return (
                                      tickCumulativeLower - tickCumulativeUpper,
                                      secondsPerLiquidityOutsideLowerX128 - secondsPerLiquidityOutsideUpperX128,
                                      secondsOutsideLower - secondsOutsideUpper
                                  );
                              } else if (_slot0.tick < tickUpper) {
                                  uint32 time = _blockTimestamp();
                                  (int56 tickCumulative, uint160 secondsPerLiquidityCumulativeX128) =
                                      observations.observeSingle(
                                          time,
                                          0,
                                          _slot0.tick,
                                          _slot0.observationIndex,
                                          liquidity,
                                          _slot0.observationCardinality
                                      );
                                  return (
                                      tickCumulative - tickCumulativeLower - tickCumulativeUpper,
                                      secondsPerLiquidityCumulativeX128 -
                                          secondsPerLiquidityOutsideLowerX128 -
                                          secondsPerLiquidityOutsideUpperX128,
                                      time - secondsOutsideLower - secondsOutsideUpper
                                  );
                              } else {
                                  return (
                                      tickCumulativeUpper - tickCumulativeLower,
                                      secondsPerLiquidityOutsideUpperX128 - secondsPerLiquidityOutsideLowerX128,
                                      secondsOutsideUpper - secondsOutsideLower
                                  );
                              }
                          }
                          /// @inheritdoc IUniswapV3PoolDerivedState
                          function observe(uint32[] calldata secondsAgos)
                              external
                              view
                              override
                              noDelegateCall
                              returns (int56[] memory tickCumulatives, uint160[] memory secondsPerLiquidityCumulativeX128s)
                          {
                              return
                                  observations.observe(
                                      _blockTimestamp(),
                                      secondsAgos,
                                      slot0.tick,
                                      slot0.observationIndex,
                                      liquidity,
                                      slot0.observationCardinality
                                  );
                          }
                          /// @inheritdoc IUniswapV3PoolActions
                          function increaseObservationCardinalityNext(uint16 observationCardinalityNext)
                              external
                              override
                              lock
                              noDelegateCall
                          {
                              uint16 observationCardinalityNextOld = slot0.observationCardinalityNext; // for the event
                              uint16 observationCardinalityNextNew =
                                  observations.grow(observationCardinalityNextOld, observationCardinalityNext);
                              slot0.observationCardinalityNext = observationCardinalityNextNew;
                              if (observationCardinalityNextOld != observationCardinalityNextNew)
                                  emit IncreaseObservationCardinalityNext(observationCardinalityNextOld, observationCardinalityNextNew);
                          }
                          /// @inheritdoc IUniswapV3PoolActions
                          /// @dev not locked because it initializes unlocked
                          function initialize(uint160 sqrtPriceX96) external override {
                              require(slot0.sqrtPriceX96 == 0, 'AI');
                              int24 tick = TickMath.getTickAtSqrtRatio(sqrtPriceX96);
                              (uint16 cardinality, uint16 cardinalityNext) = observations.initialize(_blockTimestamp());
                              slot0 = Slot0({
                                  sqrtPriceX96: sqrtPriceX96,
                                  tick: tick,
                                  observationIndex: 0,
                                  observationCardinality: cardinality,
                                  observationCardinalityNext: cardinalityNext,
                                  feeProtocol: 0,
                                  unlocked: true
                              });
                              emit Initialize(sqrtPriceX96, tick);
                          }
                          struct ModifyPositionParams {
                              // the address that owns the position
                              address owner;
                              // the lower and upper tick of the position
                              int24 tickLower;
                              int24 tickUpper;
                              // any change in liquidity
                              int128 liquidityDelta;
                          }
                          /// @dev Effect some changes to a position
                          /// @param params the position details and the change to the position's liquidity to effect
                          /// @return position a storage pointer referencing the position with the given owner and tick range
                          /// @return amount0 the amount of token0 owed to the pool, negative if the pool should pay the recipient
                          /// @return amount1 the amount of token1 owed to the pool, negative if the pool should pay the recipient
                          function _modifyPosition(ModifyPositionParams memory params)
                              private
                              noDelegateCall
                              returns (
                                  Position.Info storage position,
                                  int256 amount0,
                                  int256 amount1
                              )
                          {
                              checkTicks(params.tickLower, params.tickUpper);
                              Slot0 memory _slot0 = slot0; // SLOAD for gas optimization
                              position = _updatePosition(
                                  params.owner,
                                  params.tickLower,
                                  params.tickUpper,
                                  params.liquidityDelta,
                                  _slot0.tick
                              );
                              if (params.liquidityDelta != 0) {
                                  if (_slot0.tick < params.tickLower) {
                                      // current tick is below the passed range; liquidity can only become in range by crossing from left to
                                      // right, when we'll need _more_ token0 (it's becoming more valuable) so user must provide it
                                      amount0 = SqrtPriceMath.getAmount0Delta(
                                          TickMath.getSqrtRatioAtTick(params.tickLower),
                                          TickMath.getSqrtRatioAtTick(params.tickUpper),
                                          params.liquidityDelta
                                      );
                                  } else if (_slot0.tick < params.tickUpper) {
                                      // current tick is inside the passed range
                                      uint128 liquidityBefore = liquidity; // SLOAD for gas optimization
                                      // write an oracle entry
                                      (slot0.observationIndex, slot0.observationCardinality) = observations.write(
                                          _slot0.observationIndex,
                                          _blockTimestamp(),
                                          _slot0.tick,
                                          liquidityBefore,
                                          _slot0.observationCardinality,
                                          _slot0.observationCardinalityNext
                                      );
                                      amount0 = SqrtPriceMath.getAmount0Delta(
                                          _slot0.sqrtPriceX96,
                                          TickMath.getSqrtRatioAtTick(params.tickUpper),
                                          params.liquidityDelta
                                      );
                                      amount1 = SqrtPriceMath.getAmount1Delta(
                                          TickMath.getSqrtRatioAtTick(params.tickLower),
                                          _slot0.sqrtPriceX96,
                                          params.liquidityDelta
                                      );
                                      liquidity = LiquidityMath.addDelta(liquidityBefore, params.liquidityDelta);
                                  } else {
                                      // current tick is above the passed range; liquidity can only become in range by crossing from right to
                                      // left, when we'll need _more_ token1 (it's becoming more valuable) so user must provide it
                                      amount1 = SqrtPriceMath.getAmount1Delta(
                                          TickMath.getSqrtRatioAtTick(params.tickLower),
                                          TickMath.getSqrtRatioAtTick(params.tickUpper),
                                          params.liquidityDelta
                                      );
                                  }
                              }
                          }
                          /// @dev Gets and updates a position with the given liquidity delta
                          /// @param owner the owner of the position
                          /// @param tickLower the lower tick of the position's tick range
                          /// @param tickUpper the upper tick of the position's tick range
                          /// @param tick the current tick, passed to avoid sloads
                          function _updatePosition(
                              address owner,
                              int24 tickLower,
                              int24 tickUpper,
                              int128 liquidityDelta,
                              int24 tick
                          ) private returns (Position.Info storage position) {
                              position = positions.get(owner, tickLower, tickUpper);
                              uint256 _feeGrowthGlobal0X128 = feeGrowthGlobal0X128; // SLOAD for gas optimization
                              uint256 _feeGrowthGlobal1X128 = feeGrowthGlobal1X128; // SLOAD for gas optimization
                              // if we need to update the ticks, do it
                              bool flippedLower;
                              bool flippedUpper;
                              if (liquidityDelta != 0) {
                                  uint32 time = _blockTimestamp();
                                  (int56 tickCumulative, uint160 secondsPerLiquidityCumulativeX128) =
                                      observations.observeSingle(
                                          time,
                                          0,
                                          slot0.tick,
                                          slot0.observationIndex,
                                          liquidity,
                                          slot0.observationCardinality
                                      );
                                  flippedLower = ticks.update(
                                      tickLower,
                                      tick,
                                      liquidityDelta,
                                      _feeGrowthGlobal0X128,
                                      _feeGrowthGlobal1X128,
                                      secondsPerLiquidityCumulativeX128,
                                      tickCumulative,
                                      time,
                                      false,
                                      maxLiquidityPerTick
                                  );
                                  flippedUpper = ticks.update(
                                      tickUpper,
                                      tick,
                                      liquidityDelta,
                                      _feeGrowthGlobal0X128,
                                      _feeGrowthGlobal1X128,
                                      secondsPerLiquidityCumulativeX128,
                                      tickCumulative,
                                      time,
                                      true,
                                      maxLiquidityPerTick
                                  );
                                  if (flippedLower) {
                                      tickBitmap.flipTick(tickLower, tickSpacing);
                                  }
                                  if (flippedUpper) {
                                      tickBitmap.flipTick(tickUpper, tickSpacing);
                                  }
                              }
                              (uint256 feeGrowthInside0X128, uint256 feeGrowthInside1X128) =
                                  ticks.getFeeGrowthInside(tickLower, tickUpper, tick, _feeGrowthGlobal0X128, _feeGrowthGlobal1X128);
                              position.update(liquidityDelta, feeGrowthInside0X128, feeGrowthInside1X128);
                              // clear any tick data that is no longer needed
                              if (liquidityDelta < 0) {
                                  if (flippedLower) {
                                      ticks.clear(tickLower);
                                  }
                                  if (flippedUpper) {
                                      ticks.clear(tickUpper);
                                  }
                              }
                          }
                          /// @inheritdoc IUniswapV3PoolActions
                          /// @dev noDelegateCall is applied indirectly via _modifyPosition
                          function mint(
                              address recipient,
                              int24 tickLower,
                              int24 tickUpper,
                              uint128 amount,
                              bytes calldata data
                          ) external override lock returns (uint256 amount0, uint256 amount1) {
                              require(amount > 0);
                              (, int256 amount0Int, int256 amount1Int) =
                                  _modifyPosition(
                                      ModifyPositionParams({
                                          owner: recipient,
                                          tickLower: tickLower,
                                          tickUpper: tickUpper,
                                          liquidityDelta: int256(amount).toInt128()
                                      })
                                  );
                              amount0 = uint256(amount0Int);
                              amount1 = uint256(amount1Int);
                              uint256 balance0Before;
                              uint256 balance1Before;
                              if (amount0 > 0) balance0Before = balance0();
                              if (amount1 > 0) balance1Before = balance1();
                              IUniswapV3MintCallback(msg.sender).uniswapV3MintCallback(amount0, amount1, data);
                              if (amount0 > 0) require(balance0Before.add(amount0) <= balance0(), 'M0');
                              if (amount1 > 0) require(balance1Before.add(amount1) <= balance1(), 'M1');
                              emit Mint(msg.sender, recipient, tickLower, tickUpper, amount, amount0, amount1);
                          }
                          /// @inheritdoc IUniswapV3PoolActions
                          function collect(
                              address recipient,
                              int24 tickLower,
                              int24 tickUpper,
                              uint128 amount0Requested,
                              uint128 amount1Requested
                          ) external override lock returns (uint128 amount0, uint128 amount1) {
                              // we don't need to checkTicks here, because invalid positions will never have non-zero tokensOwed{0,1}
                              Position.Info storage position = positions.get(msg.sender, tickLower, tickUpper);
                              amount0 = amount0Requested > position.tokensOwed0 ? position.tokensOwed0 : amount0Requested;
                              amount1 = amount1Requested > position.tokensOwed1 ? position.tokensOwed1 : amount1Requested;
                              if (amount0 > 0) {
                                  position.tokensOwed0 -= amount0;
                                  TransferHelper.safeTransfer(token0, recipient, amount0);
                              }
                              if (amount1 > 0) {
                                  position.tokensOwed1 -= amount1;
                                  TransferHelper.safeTransfer(token1, recipient, amount1);
                              }
                              emit Collect(msg.sender, recipient, tickLower, tickUpper, amount0, amount1);
                          }
                          /// @inheritdoc IUniswapV3PoolActions
                          /// @dev noDelegateCall is applied indirectly via _modifyPosition
                          function burn(
                              int24 tickLower,
                              int24 tickUpper,
                              uint128 amount
                          ) external override lock returns (uint256 amount0, uint256 amount1) {
                              (Position.Info storage position, int256 amount0Int, int256 amount1Int) =
                                  _modifyPosition(
                                      ModifyPositionParams({
                                          owner: msg.sender,
                                          tickLower: tickLower,
                                          tickUpper: tickUpper,
                                          liquidityDelta: -int256(amount).toInt128()
                                      })
                                  );
                              amount0 = uint256(-amount0Int);
                              amount1 = uint256(-amount1Int);
                              if (amount0 > 0 || amount1 > 0) {
                                  (position.tokensOwed0, position.tokensOwed1) = (
                                      position.tokensOwed0 + uint128(amount0),
                                      position.tokensOwed1 + uint128(amount1)
                                  );
                              }
                              emit Burn(msg.sender, tickLower, tickUpper, amount, amount0, amount1);
                          }
                          struct SwapCache {
                              // the protocol fee for the input token
                              uint8 feeProtocol;
                              // liquidity at the beginning of the swap
                              uint128 liquidityStart;
                              // the timestamp of the current block
                              uint32 blockTimestamp;
                              // the current value of the tick accumulator, computed only if we cross an initialized tick
                              int56 tickCumulative;
                              // the current value of seconds per liquidity accumulator, computed only if we cross an initialized tick
                              uint160 secondsPerLiquidityCumulativeX128;
                              // whether we've computed and cached the above two accumulators
                              bool computedLatestObservation;
                          }
                          // the top level state of the swap, the results of which are recorded in storage at the end
                          struct SwapState {
                              // the amount remaining to be swapped in/out of the input/output asset
                              int256 amountSpecifiedRemaining;
                              // the amount already swapped out/in of the output/input asset
                              int256 amountCalculated;
                              // current sqrt(price)
                              uint160 sqrtPriceX96;
                              // the tick associated with the current price
                              int24 tick;
                              // the global fee growth of the input token
                              uint256 feeGrowthGlobalX128;
                              // amount of input token paid as protocol fee
                              uint128 protocolFee;
                              // the current liquidity in range
                              uint128 liquidity;
                          }
                          struct StepComputations {
                              // the price at the beginning of the step
                              uint160 sqrtPriceStartX96;
                              // the next tick to swap to from the current tick in the swap direction
                              int24 tickNext;
                              // whether tickNext is initialized or not
                              bool initialized;
                              // sqrt(price) for the next tick (1/0)
                              uint160 sqrtPriceNextX96;
                              // how much is being swapped in in this step
                              uint256 amountIn;
                              // how much is being swapped out
                              uint256 amountOut;
                              // how much fee is being paid in
                              uint256 feeAmount;
                          }
                          /// @inheritdoc IUniswapV3PoolActions
                          function swap(
                              address recipient,
                              bool zeroForOne,
                              int256 amountSpecified,
                              uint160 sqrtPriceLimitX96,
                              bytes calldata data
                          ) external override noDelegateCall returns (int256 amount0, int256 amount1) {
                              require(amountSpecified != 0, 'AS');
                              Slot0 memory slot0Start = slot0;
                              require(slot0Start.unlocked, 'LOK');
                              require(
                                  zeroForOne
                                      ? sqrtPriceLimitX96 < slot0Start.sqrtPriceX96 && sqrtPriceLimitX96 > TickMath.MIN_SQRT_RATIO
                                      : sqrtPriceLimitX96 > slot0Start.sqrtPriceX96 && sqrtPriceLimitX96 < TickMath.MAX_SQRT_RATIO,
                                  'SPL'
                              );
                              slot0.unlocked = false;
                              SwapCache memory cache =
                                  SwapCache({
                                      liquidityStart: liquidity,
                                      blockTimestamp: _blockTimestamp(),
                                      feeProtocol: zeroForOne ? (slot0Start.feeProtocol % 16) : (slot0Start.feeProtocol >> 4),
                                      secondsPerLiquidityCumulativeX128: 0,
                                      tickCumulative: 0,
                                      computedLatestObservation: false
                                  });
                              bool exactInput = amountSpecified > 0;
                              SwapState memory state =
                                  SwapState({
                                      amountSpecifiedRemaining: amountSpecified,
                                      amountCalculated: 0,
                                      sqrtPriceX96: slot0Start.sqrtPriceX96,
                                      tick: slot0Start.tick,
                                      feeGrowthGlobalX128: zeroForOne ? feeGrowthGlobal0X128 : feeGrowthGlobal1X128,
                                      protocolFee: 0,
                                      liquidity: cache.liquidityStart
                                  });
                              // continue swapping as long as we haven't used the entire input/output and haven't reached the price limit
                              while (state.amountSpecifiedRemaining != 0 && state.sqrtPriceX96 != sqrtPriceLimitX96) {
                                  StepComputations memory step;
                                  step.sqrtPriceStartX96 = state.sqrtPriceX96;
                                  (step.tickNext, step.initialized) = tickBitmap.nextInitializedTickWithinOneWord(
                                      state.tick,
                                      tickSpacing,
                                      zeroForOne
                                  );
                                  // ensure that we do not overshoot the min/max tick, as the tick bitmap is not aware of these bounds
                                  if (step.tickNext < TickMath.MIN_TICK) {
                                      step.tickNext = TickMath.MIN_TICK;
                                  } else if (step.tickNext > TickMath.MAX_TICK) {
                                      step.tickNext = TickMath.MAX_TICK;
                                  }
                                  // get the price for the next tick
                                  step.sqrtPriceNextX96 = TickMath.getSqrtRatioAtTick(step.tickNext);
                                  // compute values to swap to the target tick, price limit, or point where input/output amount is exhausted
                                  (state.sqrtPriceX96, step.amountIn, step.amountOut, step.feeAmount) = SwapMath.computeSwapStep(
                                      state.sqrtPriceX96,
                                      (zeroForOne ? step.sqrtPriceNextX96 < sqrtPriceLimitX96 : step.sqrtPriceNextX96 > sqrtPriceLimitX96)
                                          ? sqrtPriceLimitX96
                                          : step.sqrtPriceNextX96,
                                      state.liquidity,
                                      state.amountSpecifiedRemaining,
                                      fee
                                  );
                                  if (exactInput) {
                                      state.amountSpecifiedRemaining -= (step.amountIn + step.feeAmount).toInt256();
                                      state.amountCalculated = state.amountCalculated.sub(step.amountOut.toInt256());
                                  } else {
                                      state.amountSpecifiedRemaining += step.amountOut.toInt256();
                                      state.amountCalculated = state.amountCalculated.add((step.amountIn + step.feeAmount).toInt256());
                                  }
                                  // if the protocol fee is on, calculate how much is owed, decrement feeAmount, and increment protocolFee
                                  if (cache.feeProtocol > 0) {
                                      uint256 delta = step.feeAmount / cache.feeProtocol;
                                      step.feeAmount -= delta;
                                      state.protocolFee += uint128(delta);
                                  }
                                  // update global fee tracker
                                  if (state.liquidity > 0)
                                      state.feeGrowthGlobalX128 += FullMath.mulDiv(step.feeAmount, FixedPoint128.Q128, state.liquidity);
                                  // shift tick if we reached the next price
                                  if (state.sqrtPriceX96 == step.sqrtPriceNextX96) {
                                      // if the tick is initialized, run the tick transition
                                      if (step.initialized) {
                                          // check for the placeholder value, which we replace with the actual value the first time the swap
                                          // crosses an initialized tick
                                          if (!cache.computedLatestObservation) {
                                              (cache.tickCumulative, cache.secondsPerLiquidityCumulativeX128) = observations.observeSingle(
                                                  cache.blockTimestamp,
                                                  0,
                                                  slot0Start.tick,
                                                  slot0Start.observationIndex,
                                                  cache.liquidityStart,
                                                  slot0Start.observationCardinality
                                              );
                                              cache.computedLatestObservation = true;
                                          }
                                          int128 liquidityNet =
                                              ticks.cross(
                                                  step.tickNext,
                                                  (zeroForOne ? state.feeGrowthGlobalX128 : feeGrowthGlobal0X128),
                                                  (zeroForOne ? feeGrowthGlobal1X128 : state.feeGrowthGlobalX128),
                                                  cache.secondsPerLiquidityCumulativeX128,
                                                  cache.tickCumulative,
                                                  cache.blockTimestamp
                                              );
                                          // if we're moving leftward, we interpret liquidityNet as the opposite sign
                                          // safe because liquidityNet cannot be type(int128).min
                                          if (zeroForOne) liquidityNet = -liquidityNet;
                                          state.liquidity = LiquidityMath.addDelta(state.liquidity, liquidityNet);
                                      }
                                      state.tick = zeroForOne ? step.tickNext - 1 : step.tickNext;
                                  } else if (state.sqrtPriceX96 != step.sqrtPriceStartX96) {
                                      // recompute unless we're on a lower tick boundary (i.e. already transitioned ticks), and haven't moved
                                      state.tick = TickMath.getTickAtSqrtRatio(state.sqrtPriceX96);
                                  }
                              }
                              // update tick and write an oracle entry if the tick change
                              if (state.tick != slot0Start.tick) {
                                  (uint16 observationIndex, uint16 observationCardinality) =
                                      observations.write(
                                          slot0Start.observationIndex,
                                          cache.blockTimestamp,
                                          slot0Start.tick,
                                          cache.liquidityStart,
                                          slot0Start.observationCardinality,
                                          slot0Start.observationCardinalityNext
                                      );
                                  (slot0.sqrtPriceX96, slot0.tick, slot0.observationIndex, slot0.observationCardinality) = (
                                      state.sqrtPriceX96,
                                      state.tick,
                                      observationIndex,
                                      observationCardinality
                                  );
                              } else {
                                  // otherwise just update the price
                                  slot0.sqrtPriceX96 = state.sqrtPriceX96;
                              }
                              // update liquidity if it changed
                              if (cache.liquidityStart != state.liquidity) liquidity = state.liquidity;
                              // update fee growth global and, if necessary, protocol fees
                              // overflow is acceptable, protocol has to withdraw before it hits type(uint128).max fees
                              if (zeroForOne) {
                                  feeGrowthGlobal0X128 = state.feeGrowthGlobalX128;
                                  if (state.protocolFee > 0) protocolFees.token0 += state.protocolFee;
                              } else {
                                  feeGrowthGlobal1X128 = state.feeGrowthGlobalX128;
                                  if (state.protocolFee > 0) protocolFees.token1 += state.protocolFee;
                              }
                              (amount0, amount1) = zeroForOne == exactInput
                                  ? (amountSpecified - state.amountSpecifiedRemaining, state.amountCalculated)
                                  : (state.amountCalculated, amountSpecified - state.amountSpecifiedRemaining);
                              // do the transfers and collect payment
                              if (zeroForOne) {
                                  if (amount1 < 0) TransferHelper.safeTransfer(token1, recipient, uint256(-amount1));
                                  uint256 balance0Before = balance0();
                                  IUniswapV3SwapCallback(msg.sender).uniswapV3SwapCallback(amount0, amount1, data);
                                  require(balance0Before.add(uint256(amount0)) <= balance0(), 'IIA');
                              } else {
                                  if (amount0 < 0) TransferHelper.safeTransfer(token0, recipient, uint256(-amount0));
                                  uint256 balance1Before = balance1();
                                  IUniswapV3SwapCallback(msg.sender).uniswapV3SwapCallback(amount0, amount1, data);
                                  require(balance1Before.add(uint256(amount1)) <= balance1(), 'IIA');
                              }
                              emit Swap(msg.sender, recipient, amount0, amount1, state.sqrtPriceX96, state.liquidity, state.tick);
                              slot0.unlocked = true;
                          }
                          /// @inheritdoc IUniswapV3PoolActions
                          function flash(
                              address recipient,
                              uint256 amount0,
                              uint256 amount1,
                              bytes calldata data
                          ) external override lock noDelegateCall {
                              uint128 _liquidity = liquidity;
                              require(_liquidity > 0, 'L');
                              uint256 fee0 = FullMath.mulDivRoundingUp(amount0, fee, 1e6);
                              uint256 fee1 = FullMath.mulDivRoundingUp(amount1, fee, 1e6);
                              uint256 balance0Before = balance0();
                              uint256 balance1Before = balance1();
                              if (amount0 > 0) TransferHelper.safeTransfer(token0, recipient, amount0);
                              if (amount1 > 0) TransferHelper.safeTransfer(token1, recipient, amount1);
                              IUniswapV3FlashCallback(msg.sender).uniswapV3FlashCallback(fee0, fee1, data);
                              uint256 balance0After = balance0();
                              uint256 balance1After = balance1();
                              require(balance0Before.add(fee0) <= balance0After, 'F0');
                              require(balance1Before.add(fee1) <= balance1After, 'F1');
                              // sub is safe because we know balanceAfter is gt balanceBefore by at least fee
                              uint256 paid0 = balance0After - balance0Before;
                              uint256 paid1 = balance1After - balance1Before;
                              if (paid0 > 0) {
                                  uint8 feeProtocol0 = slot0.feeProtocol % 16;
                                  uint256 fees0 = feeProtocol0 == 0 ? 0 : paid0 / feeProtocol0;
                                  if (uint128(fees0) > 0) protocolFees.token0 += uint128(fees0);
                                  feeGrowthGlobal0X128 += FullMath.mulDiv(paid0 - fees0, FixedPoint128.Q128, _liquidity);
                              }
                              if (paid1 > 0) {
                                  uint8 feeProtocol1 = slot0.feeProtocol >> 4;
                                  uint256 fees1 = feeProtocol1 == 0 ? 0 : paid1 / feeProtocol1;
                                  if (uint128(fees1) > 0) protocolFees.token1 += uint128(fees1);
                                  feeGrowthGlobal1X128 += FullMath.mulDiv(paid1 - fees1, FixedPoint128.Q128, _liquidity);
                              }
                              emit Flash(msg.sender, recipient, amount0, amount1, paid0, paid1);
                          }
                          /// @inheritdoc IUniswapV3PoolOwnerActions
                          function setFeeProtocol(uint8 feeProtocol0, uint8 feeProtocol1) external override lock onlyFactoryOwner {
                              require(
                                  (feeProtocol0 == 0 || (feeProtocol0 >= 4 && feeProtocol0 <= 10)) &&
                                      (feeProtocol1 == 0 || (feeProtocol1 >= 4 && feeProtocol1 <= 10))
                              );
                              uint8 feeProtocolOld = slot0.feeProtocol;
                              slot0.feeProtocol = feeProtocol0 + (feeProtocol1 << 4);
                              emit SetFeeProtocol(feeProtocolOld % 16, feeProtocolOld >> 4, feeProtocol0, feeProtocol1);
                          }
                          /// @inheritdoc IUniswapV3PoolOwnerActions
                          function collectProtocol(
                              address recipient,
                              uint128 amount0Requested,
                              uint128 amount1Requested
                          ) external override lock onlyFactoryOwner returns (uint128 amount0, uint128 amount1) {
                              amount0 = amount0Requested > protocolFees.token0 ? protocolFees.token0 : amount0Requested;
                              amount1 = amount1Requested > protocolFees.token1 ? protocolFees.token1 : amount1Requested;
                              if (amount0 > 0) {
                                  if (amount0 == protocolFees.token0) amount0--; // ensure that the slot is not cleared, for gas savings
                                  protocolFees.token0 -= amount0;
                                  TransferHelper.safeTransfer(token0, recipient, amount0);
                              }
                              if (amount1 > 0) {
                                  if (amount1 == protocolFees.token1) amount1--; // ensure that the slot is not cleared, for gas savings
                                  protocolFees.token1 -= amount1;
                                  TransferHelper.safeTransfer(token1, recipient, amount1);
                              }
                              emit CollectProtocol(msg.sender, recipient, amount0, amount1);
                          }
                      }
                      // SPDX-License-Identifier: GPL-2.0-or-later
                      pragma solidity >=0.5.0;
                      import './pool/IUniswapV3PoolImmutables.sol';
                      import './pool/IUniswapV3PoolState.sol';
                      import './pool/IUniswapV3PoolDerivedState.sol';
                      import './pool/IUniswapV3PoolActions.sol';
                      import './pool/IUniswapV3PoolOwnerActions.sol';
                      import './pool/IUniswapV3PoolEvents.sol';
                      /// @title The interface for a Uniswap V3 Pool
                      /// @notice A Uniswap pool facilitates swapping and automated market making between any two assets that strictly conform
                      /// to the ERC20 specification
                      /// @dev The pool interface is broken up into many smaller pieces
                      interface IUniswapV3Pool is
                          IUniswapV3PoolImmutables,
                          IUniswapV3PoolState,
                          IUniswapV3PoolDerivedState,
                          IUniswapV3PoolActions,
                          IUniswapV3PoolOwnerActions,
                          IUniswapV3PoolEvents
                      {
                      }
                      // SPDX-License-Identifier: BUSL-1.1
                      pragma solidity =0.7.6;
                      /// @title Prevents delegatecall to a contract
                      /// @notice Base contract that provides a modifier for preventing delegatecall to methods in a child contract
                      abstract contract NoDelegateCall {
                          /// @dev The original address of this contract
                          address private immutable original;
                          constructor() {
                              // Immutables are computed in the init code of the contract, and then inlined into the deployed bytecode.
                              // In other words, this variable won't change when it's checked at runtime.
                              original = address(this);
                          }
                          /// @dev Private method is used instead of inlining into modifier because modifiers are copied into each method,
                          ///     and the use of immutable means the address bytes are copied in every place the modifier is used.
                          function checkNotDelegateCall() private view {
                              require(address(this) == original);
                          }
                          /// @notice Prevents delegatecall into the modified method
                          modifier noDelegateCall() {
                              checkNotDelegateCall();
                              _;
                          }
                      }
                      // SPDX-License-Identifier: GPL-2.0-or-later
                      pragma solidity >=0.7.0;
                      /// @title Optimized overflow and underflow safe math operations
                      /// @notice Contains methods for doing math operations that revert on overflow or underflow for minimal gas cost
                      library LowGasSafeMath {
                          /// @notice Returns x + y, reverts if sum overflows uint256
                          /// @param x The augend
                          /// @param y The addend
                          /// @return z The sum of x and y
                          function add(uint256 x, uint256 y) internal pure returns (uint256 z) {
                              require((z = x + y) >= x);
                          }
                          /// @notice Returns x - y, reverts if underflows
                          /// @param x The minuend
                          /// @param y The subtrahend
                          /// @return z The difference of x and y
                          function sub(uint256 x, uint256 y) internal pure returns (uint256 z) {
                              require((z = x - y) <= x);
                          }
                          /// @notice Returns x * y, reverts if overflows
                          /// @param x The multiplicand
                          /// @param y The multiplier
                          /// @return z The product of x and y
                          function mul(uint256 x, uint256 y) internal pure returns (uint256 z) {
                              require(x == 0 || (z = x * y) / x == y);
                          }
                          /// @notice Returns x + y, reverts if overflows or underflows
                          /// @param x The augend
                          /// @param y The addend
                          /// @return z The sum of x and y
                          function add(int256 x, int256 y) internal pure returns (int256 z) {
                              require((z = x + y) >= x == (y >= 0));
                          }
                          /// @notice Returns x - y, reverts if overflows or underflows
                          /// @param x The minuend
                          /// @param y The subtrahend
                          /// @return z The difference of x and y
                          function sub(int256 x, int256 y) internal pure returns (int256 z) {
                              require((z = x - y) <= x == (y >= 0));
                          }
                      }
                      // SPDX-License-Identifier: GPL-2.0-or-later
                      pragma solidity >=0.5.0;
                      /// @title Safe casting methods
                      /// @notice Contains methods for safely casting between types
                      library SafeCast {
                          /// @notice Cast a uint256 to a uint160, revert on overflow
                          /// @param y The uint256 to be downcasted
                          /// @return z The downcasted integer, now type uint160
                          function toUint160(uint256 y) internal pure returns (uint160 z) {
                              require((z = uint160(y)) == y);
                          }
                          /// @notice Cast a int256 to a int128, revert on overflow or underflow
                          /// @param y The int256 to be downcasted
                          /// @return z The downcasted integer, now type int128
                          function toInt128(int256 y) internal pure returns (int128 z) {
                              require((z = int128(y)) == y);
                          }
                          /// @notice Cast a uint256 to a int256, revert on overflow
                          /// @param y The uint256 to be casted
                          /// @return z The casted integer, now type int256
                          function toInt256(uint256 y) internal pure returns (int256 z) {
                              require(y < 2**255);
                              z = int256(y);
                          }
                      }
                      // SPDX-License-Identifier: BUSL-1.1
                      pragma solidity >=0.5.0;
                      import './LowGasSafeMath.sol';
                      import './SafeCast.sol';
                      import './TickMath.sol';
                      import './LiquidityMath.sol';
                      /// @title Tick
                      /// @notice Contains functions for managing tick processes and relevant calculations
                      library Tick {
                          using LowGasSafeMath for int256;
                          using SafeCast for int256;
                          // info stored for each initialized individual tick
                          struct Info {
                              // the total position liquidity that references this tick
                              uint128 liquidityGross;
                              // amount of net liquidity added (subtracted) when tick is crossed from left to right (right to left),
                              int128 liquidityNet;
                              // fee growth per unit of liquidity on the _other_ side of this tick (relative to the current tick)
                              // only has relative meaning, not absolute — the value depends on when the tick is initialized
                              uint256 feeGrowthOutside0X128;
                              uint256 feeGrowthOutside1X128;
                              // the cumulative tick value on the other side of the tick
                              int56 tickCumulativeOutside;
                              // the seconds per unit of liquidity on the _other_ side of this tick (relative to the current tick)
                              // only has relative meaning, not absolute — the value depends on when the tick is initialized
                              uint160 secondsPerLiquidityOutsideX128;
                              // the seconds spent on the other side of the tick (relative to the current tick)
                              // only has relative meaning, not absolute — the value depends on when the tick is initialized
                              uint32 secondsOutside;
                              // true iff the tick is initialized, i.e. the value is exactly equivalent to the expression liquidityGross != 0
                              // these 8 bits are set to prevent fresh sstores when crossing newly initialized ticks
                              bool initialized;
                          }
                          /// @notice Derives max liquidity per tick from given tick spacing
                          /// @dev Executed within the pool constructor
                          /// @param tickSpacing The amount of required tick separation, realized in multiples of `tickSpacing`
                          ///     e.g., a tickSpacing of 3 requires ticks to be initialized every 3rd tick i.e., ..., -6, -3, 0, 3, 6, ...
                          /// @return The max liquidity per tick
                          function tickSpacingToMaxLiquidityPerTick(int24 tickSpacing) internal pure returns (uint128) {
                              int24 minTick = (TickMath.MIN_TICK / tickSpacing) * tickSpacing;
                              int24 maxTick = (TickMath.MAX_TICK / tickSpacing) * tickSpacing;
                              uint24 numTicks = uint24((maxTick - minTick) / tickSpacing) + 1;
                              return type(uint128).max / numTicks;
                          }
                          /// @notice Retrieves fee growth data
                          /// @param self The mapping containing all tick information for initialized ticks
                          /// @param tickLower The lower tick boundary of the position
                          /// @param tickUpper The upper tick boundary of the position
                          /// @param tickCurrent The current tick
                          /// @param feeGrowthGlobal0X128 The all-time global fee growth, per unit of liquidity, in token0
                          /// @param feeGrowthGlobal1X128 The all-time global fee growth, per unit of liquidity, in token1
                          /// @return feeGrowthInside0X128 The all-time fee growth in token0, per unit of liquidity, inside the position's tick boundaries
                          /// @return feeGrowthInside1X128 The all-time fee growth in token1, per unit of liquidity, inside the position's tick boundaries
                          function getFeeGrowthInside(
                              mapping(int24 => Tick.Info) storage self,
                              int24 tickLower,
                              int24 tickUpper,
                              int24 tickCurrent,
                              uint256 feeGrowthGlobal0X128,
                              uint256 feeGrowthGlobal1X128
                          ) internal view returns (uint256 feeGrowthInside0X128, uint256 feeGrowthInside1X128) {
                              Info storage lower = self[tickLower];
                              Info storage upper = self[tickUpper];
                              // calculate fee growth below
                              uint256 feeGrowthBelow0X128;
                              uint256 feeGrowthBelow1X128;
                              if (tickCurrent >= tickLower) {
                                  feeGrowthBelow0X128 = lower.feeGrowthOutside0X128;
                                  feeGrowthBelow1X128 = lower.feeGrowthOutside1X128;
                              } else {
                                  feeGrowthBelow0X128 = feeGrowthGlobal0X128 - lower.feeGrowthOutside0X128;
                                  feeGrowthBelow1X128 = feeGrowthGlobal1X128 - lower.feeGrowthOutside1X128;
                              }
                              // calculate fee growth above
                              uint256 feeGrowthAbove0X128;
                              uint256 feeGrowthAbove1X128;
                              if (tickCurrent < tickUpper) {
                                  feeGrowthAbove0X128 = upper.feeGrowthOutside0X128;
                                  feeGrowthAbove1X128 = upper.feeGrowthOutside1X128;
                              } else {
                                  feeGrowthAbove0X128 = feeGrowthGlobal0X128 - upper.feeGrowthOutside0X128;
                                  feeGrowthAbove1X128 = feeGrowthGlobal1X128 - upper.feeGrowthOutside1X128;
                              }
                              feeGrowthInside0X128 = feeGrowthGlobal0X128 - feeGrowthBelow0X128 - feeGrowthAbove0X128;
                              feeGrowthInside1X128 = feeGrowthGlobal1X128 - feeGrowthBelow1X128 - feeGrowthAbove1X128;
                          }
                          /// @notice Updates a tick and returns true if the tick was flipped from initialized to uninitialized, or vice versa
                          /// @param self The mapping containing all tick information for initialized ticks
                          /// @param tick The tick that will be updated
                          /// @param tickCurrent The current tick
                          /// @param liquidityDelta A new amount of liquidity to be added (subtracted) when tick is crossed from left to right (right to left)
                          /// @param feeGrowthGlobal0X128 The all-time global fee growth, per unit of liquidity, in token0
                          /// @param feeGrowthGlobal1X128 The all-time global fee growth, per unit of liquidity, in token1
                          /// @param secondsPerLiquidityCumulativeX128 The all-time seconds per max(1, liquidity) of the pool
                          /// @param time The current block timestamp cast to a uint32
                          /// @param upper true for updating a position's upper tick, or false for updating a position's lower tick
                          /// @param maxLiquidity The maximum liquidity allocation for a single tick
                          /// @return flipped Whether the tick was flipped from initialized to uninitialized, or vice versa
                          function update(
                              mapping(int24 => Tick.Info) storage self,
                              int24 tick,
                              int24 tickCurrent,
                              int128 liquidityDelta,
                              uint256 feeGrowthGlobal0X128,
                              uint256 feeGrowthGlobal1X128,
                              uint160 secondsPerLiquidityCumulativeX128,
                              int56 tickCumulative,
                              uint32 time,
                              bool upper,
                              uint128 maxLiquidity
                          ) internal returns (bool flipped) {
                              Tick.Info storage info = self[tick];
                              uint128 liquidityGrossBefore = info.liquidityGross;
                              uint128 liquidityGrossAfter = LiquidityMath.addDelta(liquidityGrossBefore, liquidityDelta);
                              require(liquidityGrossAfter <= maxLiquidity, 'LO');
                              flipped = (liquidityGrossAfter == 0) != (liquidityGrossBefore == 0);
                              if (liquidityGrossBefore == 0) {
                                  // by convention, we assume that all growth before a tick was initialized happened _below_ the tick
                                  if (tick <= tickCurrent) {
                                      info.feeGrowthOutside0X128 = feeGrowthGlobal0X128;
                                      info.feeGrowthOutside1X128 = feeGrowthGlobal1X128;
                                      info.secondsPerLiquidityOutsideX128 = secondsPerLiquidityCumulativeX128;
                                      info.tickCumulativeOutside = tickCumulative;
                                      info.secondsOutside = time;
                                  }
                                  info.initialized = true;
                              }
                              info.liquidityGross = liquidityGrossAfter;
                              // when the lower (upper) tick is crossed left to right (right to left), liquidity must be added (removed)
                              info.liquidityNet = upper
                                  ? int256(info.liquidityNet).sub(liquidityDelta).toInt128()
                                  : int256(info.liquidityNet).add(liquidityDelta).toInt128();
                          }
                          /// @notice Clears tick data
                          /// @param self The mapping containing all initialized tick information for initialized ticks
                          /// @param tick The tick that will be cleared
                          function clear(mapping(int24 => Tick.Info) storage self, int24 tick) internal {
                              delete self[tick];
                          }
                          /// @notice Transitions to next tick as needed by price movement
                          /// @param self The mapping containing all tick information for initialized ticks
                          /// @param tick The destination tick of the transition
                          /// @param feeGrowthGlobal0X128 The all-time global fee growth, per unit of liquidity, in token0
                          /// @param feeGrowthGlobal1X128 The all-time global fee growth, per unit of liquidity, in token1
                          /// @param secondsPerLiquidityCumulativeX128 The current seconds per liquidity
                          /// @param time The current block.timestamp
                          /// @return liquidityNet The amount of liquidity added (subtracted) when tick is crossed from left to right (right to left)
                          function cross(
                              mapping(int24 => Tick.Info) storage self,
                              int24 tick,
                              uint256 feeGrowthGlobal0X128,
                              uint256 feeGrowthGlobal1X128,
                              uint160 secondsPerLiquidityCumulativeX128,
                              int56 tickCumulative,
                              uint32 time
                          ) internal returns (int128 liquidityNet) {
                              Tick.Info storage info = self[tick];
                              info.feeGrowthOutside0X128 = feeGrowthGlobal0X128 - info.feeGrowthOutside0X128;
                              info.feeGrowthOutside1X128 = feeGrowthGlobal1X128 - info.feeGrowthOutside1X128;
                              info.secondsPerLiquidityOutsideX128 = secondsPerLiquidityCumulativeX128 - info.secondsPerLiquidityOutsideX128;
                              info.tickCumulativeOutside = tickCumulative - info.tickCumulativeOutside;
                              info.secondsOutside = time - info.secondsOutside;
                              liquidityNet = info.liquidityNet;
                          }
                      }
                      // SPDX-License-Identifier: BUSL-1.1
                      pragma solidity >=0.5.0;
                      import './BitMath.sol';
                      /// @title Packed tick initialized state library
                      /// @notice Stores a packed mapping of tick index to its initialized state
                      /// @dev The mapping uses int16 for keys since ticks are represented as int24 and there are 256 (2^8) values per word.
                      library TickBitmap {
                          /// @notice Computes the position in the mapping where the initialized bit for a tick lives
                          /// @param tick The tick for which to compute the position
                          /// @return wordPos The key in the mapping containing the word in which the bit is stored
                          /// @return bitPos The bit position in the word where the flag is stored
                          function position(int24 tick) private pure returns (int16 wordPos, uint8 bitPos) {
                              wordPos = int16(tick >> 8);
                              bitPos = uint8(tick % 256);
                          }
                          /// @notice Flips the initialized state for a given tick from false to true, or vice versa
                          /// @param self The mapping in which to flip the tick
                          /// @param tick The tick to flip
                          /// @param tickSpacing The spacing between usable ticks
                          function flipTick(
                              mapping(int16 => uint256) storage self,
                              int24 tick,
                              int24 tickSpacing
                          ) internal {
                              require(tick % tickSpacing == 0); // ensure that the tick is spaced
                              (int16 wordPos, uint8 bitPos) = position(tick / tickSpacing);
                              uint256 mask = 1 << bitPos;
                              self[wordPos] ^= mask;
                          }
                          /// @notice Returns the next initialized tick contained in the same word (or adjacent word) as the tick that is either
                          /// to the left (less than or equal to) or right (greater than) of the given tick
                          /// @param self The mapping in which to compute the next initialized tick
                          /// @param tick The starting tick
                          /// @param tickSpacing The spacing between usable ticks
                          /// @param lte Whether to search for the next initialized tick to the left (less than or equal to the starting tick)
                          /// @return next The next initialized or uninitialized tick up to 256 ticks away from the current tick
                          /// @return initialized Whether the next tick is initialized, as the function only searches within up to 256 ticks
                          function nextInitializedTickWithinOneWord(
                              mapping(int16 => uint256) storage self,
                              int24 tick,
                              int24 tickSpacing,
                              bool lte
                          ) internal view returns (int24 next, bool initialized) {
                              int24 compressed = tick / tickSpacing;
                              if (tick < 0 && tick % tickSpacing != 0) compressed--; // round towards negative infinity
                              if (lte) {
                                  (int16 wordPos, uint8 bitPos) = position(compressed);
                                  // all the 1s at or to the right of the current bitPos
                                  uint256 mask = (1 << bitPos) - 1 + (1 << bitPos);
                                  uint256 masked = self[wordPos] & mask;
                                  // if there are no initialized ticks to the right of or at the current tick, return rightmost in the word
                                  initialized = masked != 0;
                                  // overflow/underflow is possible, but prevented externally by limiting both tickSpacing and tick
                                  next = initialized
                                      ? (compressed - int24(bitPos - BitMath.mostSignificantBit(masked))) * tickSpacing
                                      : (compressed - int24(bitPos)) * tickSpacing;
                              } else {
                                  // start from the word of the next tick, since the current tick state doesn't matter
                                  (int16 wordPos, uint8 bitPos) = position(compressed + 1);
                                  // all the 1s at or to the left of the bitPos
                                  uint256 mask = ~((1 << bitPos) - 1);
                                  uint256 masked = self[wordPos] & mask;
                                  // if there are no initialized ticks to the left of the current tick, return leftmost in the word
                                  initialized = masked != 0;
                                  // overflow/underflow is possible, but prevented externally by limiting both tickSpacing and tick
                                  next = initialized
                                      ? (compressed + 1 + int24(BitMath.leastSignificantBit(masked) - bitPos)) * tickSpacing
                                      : (compressed + 1 + int24(type(uint8).max - bitPos)) * tickSpacing;
                              }
                          }
                      }
                      // SPDX-License-Identifier: BUSL-1.1
                      pragma solidity >=0.5.0;
                      import './FullMath.sol';
                      import './FixedPoint128.sol';
                      import './LiquidityMath.sol';
                      /// @title Position
                      /// @notice Positions represent an owner address' liquidity between a lower and upper tick boundary
                      /// @dev Positions store additional state for tracking fees owed to the position
                      library Position {
                          // info stored for each user's position
                          struct Info {
                              // the amount of liquidity owned by this position
                              uint128 liquidity;
                              // fee growth per unit of liquidity as of the last update to liquidity or fees owed
                              uint256 feeGrowthInside0LastX128;
                              uint256 feeGrowthInside1LastX128;
                              // the fees owed to the position owner in token0/token1
                              uint128 tokensOwed0;
                              uint128 tokensOwed1;
                          }
                          /// @notice Returns the Info struct of a position, given an owner and position boundaries
                          /// @param self The mapping containing all user positions
                          /// @param owner The address of the position owner
                          /// @param tickLower The lower tick boundary of the position
                          /// @param tickUpper The upper tick boundary of the position
                          /// @return position The position info struct of the given owners' position
                          function get(
                              mapping(bytes32 => Info) storage self,
                              address owner,
                              int24 tickLower,
                              int24 tickUpper
                          ) internal view returns (Position.Info storage position) {
                              position = self[keccak256(abi.encodePacked(owner, tickLower, tickUpper))];
                          }
                          /// @notice Credits accumulated fees to a user's position
                          /// @param self The individual position to update
                          /// @param liquidityDelta The change in pool liquidity as a result of the position update
                          /// @param feeGrowthInside0X128 The all-time fee growth in token0, per unit of liquidity, inside the position's tick boundaries
                          /// @param feeGrowthInside1X128 The all-time fee growth in token1, per unit of liquidity, inside the position's tick boundaries
                          function update(
                              Info storage self,
                              int128 liquidityDelta,
                              uint256 feeGrowthInside0X128,
                              uint256 feeGrowthInside1X128
                          ) internal {
                              Info memory _self = self;
                              uint128 liquidityNext;
                              if (liquidityDelta == 0) {
                                  require(_self.liquidity > 0, 'NP'); // disallow pokes for 0 liquidity positions
                                  liquidityNext = _self.liquidity;
                              } else {
                                  liquidityNext = LiquidityMath.addDelta(_self.liquidity, liquidityDelta);
                              }
                              // calculate accumulated fees
                              uint128 tokensOwed0 =
                                  uint128(
                                      FullMath.mulDiv(
                                          feeGrowthInside0X128 - _self.feeGrowthInside0LastX128,
                                          _self.liquidity,
                                          FixedPoint128.Q128
                                      )
                                  );
                              uint128 tokensOwed1 =
                                  uint128(
                                      FullMath.mulDiv(
                                          feeGrowthInside1X128 - _self.feeGrowthInside1LastX128,
                                          _self.liquidity,
                                          FixedPoint128.Q128
                                      )
                                  );
                              // update the position
                              if (liquidityDelta != 0) self.liquidity = liquidityNext;
                              self.feeGrowthInside0LastX128 = feeGrowthInside0X128;
                              self.feeGrowthInside1LastX128 = feeGrowthInside1X128;
                              if (tokensOwed0 > 0 || tokensOwed1 > 0) {
                                  // overflow is acceptable, have to withdraw before you hit type(uint128).max fees
                                  self.tokensOwed0 += tokensOwed0;
                                  self.tokensOwed1 += tokensOwed1;
                              }
                          }
                      }
                      // SPDX-License-Identifier: BUSL-1.1
                      pragma solidity >=0.5.0;
                      /// @title Oracle
                      /// @notice Provides price and liquidity data useful for a wide variety of system designs
                      /// @dev Instances of stored oracle data, "observations", are collected in the oracle array
                      /// Every pool is initialized with an oracle array length of 1. Anyone can pay the SSTOREs to increase the
                      /// maximum length of the oracle array. New slots will be added when the array is fully populated.
                      /// Observations are overwritten when the full length of the oracle array is populated.
                      /// The most recent observation is available, independent of the length of the oracle array, by passing 0 to observe()
                      library Oracle {
                          struct Observation {
                              // the block timestamp of the observation
                              uint32 blockTimestamp;
                              // the tick accumulator, i.e. tick * time elapsed since the pool was first initialized
                              int56 tickCumulative;
                              // the seconds per liquidity, i.e. seconds elapsed / max(1, liquidity) since the pool was first initialized
                              uint160 secondsPerLiquidityCumulativeX128;
                              // whether or not the observation is initialized
                              bool initialized;
                          }
                          /// @notice Transforms a previous observation into a new observation, given the passage of time and the current tick and liquidity values
                          /// @dev blockTimestamp _must_ be chronologically equal to or greater than last.blockTimestamp, safe for 0 or 1 overflows
                          /// @param last The specified observation to be transformed
                          /// @param blockTimestamp The timestamp of the new observation
                          /// @param tick The active tick at the time of the new observation
                          /// @param liquidity The total in-range liquidity at the time of the new observation
                          /// @return Observation The newly populated observation
                          function transform(
                              Observation memory last,
                              uint32 blockTimestamp,
                              int24 tick,
                              uint128 liquidity
                          ) private pure returns (Observation memory) {
                              uint32 delta = blockTimestamp - last.blockTimestamp;
                              return
                                  Observation({
                                      blockTimestamp: blockTimestamp,
                                      tickCumulative: last.tickCumulative + int56(tick) * delta,
                                      secondsPerLiquidityCumulativeX128: last.secondsPerLiquidityCumulativeX128 +
                                          ((uint160(delta) << 128) / (liquidity > 0 ? liquidity : 1)),
                                      initialized: true
                                  });
                          }
                          /// @notice Initialize the oracle array by writing the first slot. Called once for the lifecycle of the observations array
                          /// @param self The stored oracle array
                          /// @param time The time of the oracle initialization, via block.timestamp truncated to uint32
                          /// @return cardinality The number of populated elements in the oracle array
                          /// @return cardinalityNext The new length of the oracle array, independent of population
                          function initialize(Observation[65535] storage self, uint32 time)
                              internal
                              returns (uint16 cardinality, uint16 cardinalityNext)
                          {
                              self[0] = Observation({
                                  blockTimestamp: time,
                                  tickCumulative: 0,
                                  secondsPerLiquidityCumulativeX128: 0,
                                  initialized: true
                              });
                              return (1, 1);
                          }
                          /// @notice Writes an oracle observation to the array
                          /// @dev Writable at most once per block. Index represents the most recently written element. cardinality and index must be tracked externally.
                          /// If the index is at the end of the allowable array length (according to cardinality), and the next cardinality
                          /// is greater than the current one, cardinality may be increased. This restriction is created to preserve ordering.
                          /// @param self The stored oracle array
                          /// @param index The index of the observation that was most recently written to the observations array
                          /// @param blockTimestamp The timestamp of the new observation
                          /// @param tick The active tick at the time of the new observation
                          /// @param liquidity The total in-range liquidity at the time of the new observation
                          /// @param cardinality The number of populated elements in the oracle array
                          /// @param cardinalityNext The new length of the oracle array, independent of population
                          /// @return indexUpdated The new index of the most recently written element in the oracle array
                          /// @return cardinalityUpdated The new cardinality of the oracle array
                          function write(
                              Observation[65535] storage self,
                              uint16 index,
                              uint32 blockTimestamp,
                              int24 tick,
                              uint128 liquidity,
                              uint16 cardinality,
                              uint16 cardinalityNext
                          ) internal returns (uint16 indexUpdated, uint16 cardinalityUpdated) {
                              Observation memory last = self[index];
                              // early return if we've already written an observation this block
                              if (last.blockTimestamp == blockTimestamp) return (index, cardinality);
                              // if the conditions are right, we can bump the cardinality
                              if (cardinalityNext > cardinality && index == (cardinality - 1)) {
                                  cardinalityUpdated = cardinalityNext;
                              } else {
                                  cardinalityUpdated = cardinality;
                              }
                              indexUpdated = (index + 1) % cardinalityUpdated;
                              self[indexUpdated] = transform(last, blockTimestamp, tick, liquidity);
                          }
                          /// @notice Prepares the oracle array to store up to `next` observations
                          /// @param self The stored oracle array
                          /// @param current The current next cardinality of the oracle array
                          /// @param next The proposed next cardinality which will be populated in the oracle array
                          /// @return next The next cardinality which will be populated in the oracle array
                          function grow(
                              Observation[65535] storage self,
                              uint16 current,
                              uint16 next
                          ) internal returns (uint16) {
                              require(current > 0, 'I');
                              // no-op if the passed next value isn't greater than the current next value
                              if (next <= current) return current;
                              // store in each slot to prevent fresh SSTOREs in swaps
                              // this data will not be used because the initialized boolean is still false
                              for (uint16 i = current; i < next; i++) self[i].blockTimestamp = 1;
                              return next;
                          }
                          /// @notice comparator for 32-bit timestamps
                          /// @dev safe for 0 or 1 overflows, a and b _must_ be chronologically before or equal to time
                          /// @param time A timestamp truncated to 32 bits
                          /// @param a A comparison timestamp from which to determine the relative position of `time`
                          /// @param b From which to determine the relative position of `time`
                          /// @return bool Whether `a` is chronologically <= `b`
                          function lte(
                              uint32 time,
                              uint32 a,
                              uint32 b
                          ) private pure returns (bool) {
                              // if there hasn't been overflow, no need to adjust
                              if (a <= time && b <= time) return a <= b;
                              uint256 aAdjusted = a > time ? a : a + 2**32;
                              uint256 bAdjusted = b > time ? b : b + 2**32;
                              return aAdjusted <= bAdjusted;
                          }
                          /// @notice Fetches the observations beforeOrAt and atOrAfter a target, i.e. where [beforeOrAt, atOrAfter] is satisfied.
                          /// The result may be the same observation, or adjacent observations.
                          /// @dev The answer must be contained in the array, used when the target is located within the stored observation
                          /// boundaries: older than the most recent observation and younger, or the same age as, the oldest observation
                          /// @param self The stored oracle array
                          /// @param time The current block.timestamp
                          /// @param target The timestamp at which the reserved observation should be for
                          /// @param index The index of the observation that was most recently written to the observations array
                          /// @param cardinality The number of populated elements in the oracle array
                          /// @return beforeOrAt The observation recorded before, or at, the target
                          /// @return atOrAfter The observation recorded at, or after, the target
                          function binarySearch(
                              Observation[65535] storage self,
                              uint32 time,
                              uint32 target,
                              uint16 index,
                              uint16 cardinality
                          ) private view returns (Observation memory beforeOrAt, Observation memory atOrAfter) {
                              uint256 l = (index + 1) % cardinality; // oldest observation
                              uint256 r = l + cardinality - 1; // newest observation
                              uint256 i;
                              while (true) {
                                  i = (l + r) / 2;
                                  beforeOrAt = self[i % cardinality];
                                  // we've landed on an uninitialized tick, keep searching higher (more recently)
                                  if (!beforeOrAt.initialized) {
                                      l = i + 1;
                                      continue;
                                  }
                                  atOrAfter = self[(i + 1) % cardinality];
                                  bool targetAtOrAfter = lte(time, beforeOrAt.blockTimestamp, target);
                                  // check if we've found the answer!
                                  if (targetAtOrAfter && lte(time, target, atOrAfter.blockTimestamp)) break;
                                  if (!targetAtOrAfter) r = i - 1;
                                  else l = i + 1;
                              }
                          }
                          /// @notice Fetches the observations beforeOrAt and atOrAfter a given target, i.e. where [beforeOrAt, atOrAfter] is satisfied
                          /// @dev Assumes there is at least 1 initialized observation.
                          /// Used by observeSingle() to compute the counterfactual accumulator values as of a given block timestamp.
                          /// @param self The stored oracle array
                          /// @param time The current block.timestamp
                          /// @param target The timestamp at which the reserved observation should be for
                          /// @param tick The active tick at the time of the returned or simulated observation
                          /// @param index The index of the observation that was most recently written to the observations array
                          /// @param liquidity The total pool liquidity at the time of the call
                          /// @param cardinality The number of populated elements in the oracle array
                          /// @return beforeOrAt The observation which occurred at, or before, the given timestamp
                          /// @return atOrAfter The observation which occurred at, or after, the given timestamp
                          function getSurroundingObservations(
                              Observation[65535] storage self,
                              uint32 time,
                              uint32 target,
                              int24 tick,
                              uint16 index,
                              uint128 liquidity,
                              uint16 cardinality
                          ) private view returns (Observation memory beforeOrAt, Observation memory atOrAfter) {
                              // optimistically set before to the newest observation
                              beforeOrAt = self[index];
                              // if the target is chronologically at or after the newest observation, we can early return
                              if (lte(time, beforeOrAt.blockTimestamp, target)) {
                                  if (beforeOrAt.blockTimestamp == target) {
                                      // if newest observation equals target, we're in the same block, so we can ignore atOrAfter
                                      return (beforeOrAt, atOrAfter);
                                  } else {
                                      // otherwise, we need to transform
                                      return (beforeOrAt, transform(beforeOrAt, target, tick, liquidity));
                                  }
                              }
                              // now, set before to the oldest observation
                              beforeOrAt = self[(index + 1) % cardinality];
                              if (!beforeOrAt.initialized) beforeOrAt = self[0];
                              // ensure that the target is chronologically at or after the oldest observation
                              require(lte(time, beforeOrAt.blockTimestamp, target), 'OLD');
                              // if we've reached this point, we have to binary search
                              return binarySearch(self, time, target, index, cardinality);
                          }
                          /// @dev Reverts if an observation at or before the desired observation timestamp does not exist.
                          /// 0 may be passed as `secondsAgo' to return the current cumulative values.
                          /// If called with a timestamp falling between two observations, returns the counterfactual accumulator values
                          /// at exactly the timestamp between the two observations.
                          /// @param self The stored oracle array
                          /// @param time The current block timestamp
                          /// @param secondsAgo The amount of time to look back, in seconds, at which point to return an observation
                          /// @param tick The current tick
                          /// @param index The index of the observation that was most recently written to the observations array
                          /// @param liquidity The current in-range pool liquidity
                          /// @param cardinality The number of populated elements in the oracle array
                          /// @return tickCumulative The tick * time elapsed since the pool was first initialized, as of `secondsAgo`
                          /// @return secondsPerLiquidityCumulativeX128 The time elapsed / max(1, liquidity) since the pool was first initialized, as of `secondsAgo`
                          function observeSingle(
                              Observation[65535] storage self,
                              uint32 time,
                              uint32 secondsAgo,
                              int24 tick,
                              uint16 index,
                              uint128 liquidity,
                              uint16 cardinality
                          ) internal view returns (int56 tickCumulative, uint160 secondsPerLiquidityCumulativeX128) {
                              if (secondsAgo == 0) {
                                  Observation memory last = self[index];
                                  if (last.blockTimestamp != time) last = transform(last, time, tick, liquidity);
                                  return (last.tickCumulative, last.secondsPerLiquidityCumulativeX128);
                              }
                              uint32 target = time - secondsAgo;
                              (Observation memory beforeOrAt, Observation memory atOrAfter) =
                                  getSurroundingObservations(self, time, target, tick, index, liquidity, cardinality);
                              if (target == beforeOrAt.blockTimestamp) {
                                  // we're at the left boundary
                                  return (beforeOrAt.tickCumulative, beforeOrAt.secondsPerLiquidityCumulativeX128);
                              } else if (target == atOrAfter.blockTimestamp) {
                                  // we're at the right boundary
                                  return (atOrAfter.tickCumulative, atOrAfter.secondsPerLiquidityCumulativeX128);
                              } else {
                                  // we're in the middle
                                  uint32 observationTimeDelta = atOrAfter.blockTimestamp - beforeOrAt.blockTimestamp;
                                  uint32 targetDelta = target - beforeOrAt.blockTimestamp;
                                  return (
                                      beforeOrAt.tickCumulative +
                                          ((atOrAfter.tickCumulative - beforeOrAt.tickCumulative) / observationTimeDelta) *
                                          targetDelta,
                                      beforeOrAt.secondsPerLiquidityCumulativeX128 +
                                          uint160(
                                              (uint256(
                                                  atOrAfter.secondsPerLiquidityCumulativeX128 - beforeOrAt.secondsPerLiquidityCumulativeX128
                                              ) * targetDelta) / observationTimeDelta
                                          )
                                  );
                              }
                          }
                          /// @notice Returns the accumulator values as of each time seconds ago from the given time in the array of `secondsAgos`
                          /// @dev Reverts if `secondsAgos` > oldest observation
                          /// @param self The stored oracle array
                          /// @param time The current block.timestamp
                          /// @param secondsAgos Each amount of time to look back, in seconds, at which point to return an observation
                          /// @param tick The current tick
                          /// @param index The index of the observation that was most recently written to the observations array
                          /// @param liquidity The current in-range pool liquidity
                          /// @param cardinality The number of populated elements in the oracle array
                          /// @return tickCumulatives The tick * time elapsed since the pool was first initialized, as of each `secondsAgo`
                          /// @return secondsPerLiquidityCumulativeX128s The cumulative seconds / max(1, liquidity) since the pool was first initialized, as of each `secondsAgo`
                          function observe(
                              Observation[65535] storage self,
                              uint32 time,
                              uint32[] memory secondsAgos,
                              int24 tick,
                              uint16 index,
                              uint128 liquidity,
                              uint16 cardinality
                          ) internal view returns (int56[] memory tickCumulatives, uint160[] memory secondsPerLiquidityCumulativeX128s) {
                              require(cardinality > 0, 'I');
                              tickCumulatives = new int56[](secondsAgos.length);
                              secondsPerLiquidityCumulativeX128s = new uint160[](secondsAgos.length);
                              for (uint256 i = 0; i < secondsAgos.length; i++) {
                                  (tickCumulatives[i], secondsPerLiquidityCumulativeX128s[i]) = observeSingle(
                                      self,
                                      time,
                                      secondsAgos[i],
                                      tick,
                                      index,
                                      liquidity,
                                      cardinality
                                  );
                              }
                          }
                      }
                      // SPDX-License-Identifier: MIT
                      pragma solidity >=0.4.0;
                      /// @title Contains 512-bit math functions
                      /// @notice Facilitates multiplication and division that can have overflow of an intermediate value without any loss of precision
                      /// @dev Handles "phantom overflow" i.e., allows multiplication and division where an intermediate value overflows 256 bits
                      library FullMath {
                          /// @notice Calculates floor(a×b÷denominator) with full precision. Throws if result overflows a uint256 or denominator == 0
                          /// @param a The multiplicand
                          /// @param b The multiplier
                          /// @param denominator The divisor
                          /// @return result The 256-bit result
                          /// @dev Credit to Remco Bloemen under MIT license https://xn--2-umb.com/21/muldiv
                          function mulDiv(
                              uint256 a,
                              uint256 b,
                              uint256 denominator
                          ) internal pure returns (uint256 result) {
                              // 512-bit multiply [prod1 prod0] = a * b
                              // Compute the product mod 2**256 and mod 2**256 - 1
                              // then use the Chinese Remainder Theorem to reconstruct
                              // the 512 bit result. The result is stored in two 256
                              // variables such that product = prod1 * 2**256 + prod0
                              uint256 prod0; // Least significant 256 bits of the product
                              uint256 prod1; // Most significant 256 bits of the product
                              assembly {
                                  let mm := mulmod(a, b, not(0))
                                  prod0 := mul(a, b)
                                  prod1 := sub(sub(mm, prod0), lt(mm, prod0))
                              }
                              // Handle non-overflow cases, 256 by 256 division
                              if (prod1 == 0) {
                                  require(denominator > 0);
                                  assembly {
                                      result := div(prod0, denominator)
                                  }
                                  return result;
                              }
                              // Make sure the result is less than 2**256.
                              // Also prevents denominator == 0
                              require(denominator > prod1);
                              ///////////////////////////////////////////////
                              // 512 by 256 division.
                              ///////////////////////////////////////////////
                              // Make division exact by subtracting the remainder from [prod1 prod0]
                              // Compute remainder using mulmod
                              uint256 remainder;
                              assembly {
                                  remainder := mulmod(a, b, denominator)
                              }
                              // Subtract 256 bit number from 512 bit number
                              assembly {
                                  prod1 := sub(prod1, gt(remainder, prod0))
                                  prod0 := sub(prod0, remainder)
                              }
                              // Factor powers of two out of denominator
                              // Compute largest power of two divisor of denominator.
                              // Always >= 1.
                              uint256 twos = -denominator & denominator;
                              // Divide denominator by power of two
                              assembly {
                                  denominator := div(denominator, twos)
                              }
                              // Divide [prod1 prod0] by the factors of two
                              assembly {
                                  prod0 := div(prod0, twos)
                              }
                              // Shift in bits from prod1 into prod0. For this we need
                              // to flip `twos` such that it is 2**256 / twos.
                              // If twos is zero, then it becomes one
                              assembly {
                                  twos := add(div(sub(0, twos), twos), 1)
                              }
                              prod0 |= prod1 * twos;
                              // Invert denominator mod 2**256
                              // Now that denominator is an odd number, it has an inverse
                              // modulo 2**256 such that denominator * inv = 1 mod 2**256.
                              // Compute the inverse by starting with a seed that is correct
                              // correct for four bits. That is, denominator * inv = 1 mod 2**4
                              uint256 inv = (3 * denominator) ^ 2;
                              // Now use Newton-Raphson iteration to improve the precision.
                              // Thanks to Hensel's lifting lemma, this also works in modular
                              // arithmetic, doubling the correct bits in each step.
                              inv *= 2 - denominator * inv; // inverse mod 2**8
                              inv *= 2 - denominator * inv; // inverse mod 2**16
                              inv *= 2 - denominator * inv; // inverse mod 2**32
                              inv *= 2 - denominator * inv; // inverse mod 2**64
                              inv *= 2 - denominator * inv; // inverse mod 2**128
                              inv *= 2 - denominator * inv; // inverse mod 2**256
                              // Because the division is now exact we can divide by multiplying
                              // with the modular inverse of denominator. This will give us the
                              // correct result modulo 2**256. Since the precoditions guarantee
                              // that the outcome is less than 2**256, this is the final result.
                              // We don't need to compute the high bits of the result and prod1
                              // is no longer required.
                              result = prod0 * inv;
                              return result;
                          }
                          /// @notice Calculates ceil(a×b÷denominator) with full precision. Throws if result overflows a uint256 or denominator == 0
                          /// @param a The multiplicand
                          /// @param b The multiplier
                          /// @param denominator The divisor
                          /// @return result The 256-bit result
                          function mulDivRoundingUp(
                              uint256 a,
                              uint256 b,
                              uint256 denominator
                          ) internal pure returns (uint256 result) {
                              result = mulDiv(a, b, denominator);
                              if (mulmod(a, b, denominator) > 0) {
                                  require(result < type(uint256).max);
                                  result++;
                              }
                          }
                      }
                      // SPDX-License-Identifier: GPL-2.0-or-later
                      pragma solidity >=0.4.0;
                      /// @title FixedPoint128
                      /// @notice A library for handling binary fixed point numbers, see https://en.wikipedia.org/wiki/Q_(number_format)
                      library FixedPoint128 {
                          uint256 internal constant Q128 = 0x100000000000000000000000000000000;
                      }
                      // SPDX-License-Identifier: GPL-2.0-or-later
                      pragma solidity >=0.6.0;
                      import '../interfaces/IERC20Minimal.sol';
                      /// @title TransferHelper
                      /// @notice Contains helper methods for interacting with ERC20 tokens that do not consistently return true/false
                      library TransferHelper {
                          /// @notice Transfers tokens from msg.sender to a recipient
                          /// @dev Calls transfer on token contract, errors with TF if transfer fails
                          /// @param token The contract address of the token which will be transferred
                          /// @param to The recipient of the transfer
                          /// @param value The value of the transfer
                          function safeTransfer(
                              address token,
                              address to,
                              uint256 value
                          ) internal {
                              (bool success, bytes memory data) =
                                  token.call(abi.encodeWithSelector(IERC20Minimal.transfer.selector, to, value));
                              require(success && (data.length == 0 || abi.decode(data, (bool))), 'TF');
                          }
                      }
                      // SPDX-License-Identifier: GPL-2.0-or-later
                      pragma solidity >=0.5.0;
                      /// @title Math library for computing sqrt prices from ticks and vice versa
                      /// @notice Computes sqrt price for ticks of size 1.0001, i.e. sqrt(1.0001^tick) as fixed point Q64.96 numbers. Supports
                      /// prices between 2**-128 and 2**128
                      library TickMath {
                          /// @dev The minimum tick that may be passed to #getSqrtRatioAtTick computed from log base 1.0001 of 2**-128
                          int24 internal constant MIN_TICK = -887272;
                          /// @dev The maximum tick that may be passed to #getSqrtRatioAtTick computed from log base 1.0001 of 2**128
                          int24 internal constant MAX_TICK = -MIN_TICK;
                          /// @dev The minimum value that can be returned from #getSqrtRatioAtTick. Equivalent to getSqrtRatioAtTick(MIN_TICK)
                          uint160 internal constant MIN_SQRT_RATIO = 4295128739;
                          /// @dev The maximum value that can be returned from #getSqrtRatioAtTick. Equivalent to getSqrtRatioAtTick(MAX_TICK)
                          uint160 internal constant MAX_SQRT_RATIO = 1461446703485210103287273052203988822378723970342;
                          /// @notice Calculates sqrt(1.0001^tick) * 2^96
                          /// @dev Throws if |tick| > max tick
                          /// @param tick The input tick for the above formula
                          /// @return sqrtPriceX96 A Fixed point Q64.96 number representing the sqrt of the ratio of the two assets (token1/token0)
                          /// at the given tick
                          function getSqrtRatioAtTick(int24 tick) internal pure returns (uint160 sqrtPriceX96) {
                              uint256 absTick = tick < 0 ? uint256(-int256(tick)) : uint256(int256(tick));
                              require(absTick <= uint256(MAX_TICK), 'T');
                              uint256 ratio = absTick & 0x1 != 0 ? 0xfffcb933bd6fad37aa2d162d1a594001 : 0x100000000000000000000000000000000;
                              if (absTick & 0x2 != 0) ratio = (ratio * 0xfff97272373d413259a46990580e213a) >> 128;
                              if (absTick & 0x4 != 0) ratio = (ratio * 0xfff2e50f5f656932ef12357cf3c7fdcc) >> 128;
                              if (absTick & 0x8 != 0) ratio = (ratio * 0xffe5caca7e10e4e61c3624eaa0941cd0) >> 128;
                              if (absTick & 0x10 != 0) ratio = (ratio * 0xffcb9843d60f6159c9db58835c926644) >> 128;
                              if (absTick & 0x20 != 0) ratio = (ratio * 0xff973b41fa98c081472e6896dfb254c0) >> 128;
                              if (absTick & 0x40 != 0) ratio = (ratio * 0xff2ea16466c96a3843ec78b326b52861) >> 128;
                              if (absTick & 0x80 != 0) ratio = (ratio * 0xfe5dee046a99a2a811c461f1969c3053) >> 128;
                              if (absTick & 0x100 != 0) ratio = (ratio * 0xfcbe86c7900a88aedcffc83b479aa3a4) >> 128;
                              if (absTick & 0x200 != 0) ratio = (ratio * 0xf987a7253ac413176f2b074cf7815e54) >> 128;
                              if (absTick & 0x400 != 0) ratio = (ratio * 0xf3392b0822b70005940c7a398e4b70f3) >> 128;
                              if (absTick & 0x800 != 0) ratio = (ratio * 0xe7159475a2c29b7443b29c7fa6e889d9) >> 128;
                              if (absTick & 0x1000 != 0) ratio = (ratio * 0xd097f3bdfd2022b8845ad8f792aa5825) >> 128;
                              if (absTick & 0x2000 != 0) ratio = (ratio * 0xa9f746462d870fdf8a65dc1f90e061e5) >> 128;
                              if (absTick & 0x4000 != 0) ratio = (ratio * 0x70d869a156d2a1b890bb3df62baf32f7) >> 128;
                              if (absTick & 0x8000 != 0) ratio = (ratio * 0x31be135f97d08fd981231505542fcfa6) >> 128;
                              if (absTick & 0x10000 != 0) ratio = (ratio * 0x9aa508b5b7a84e1c677de54f3e99bc9) >> 128;
                              if (absTick & 0x20000 != 0) ratio = (ratio * 0x5d6af8dedb81196699c329225ee604) >> 128;
                              if (absTick & 0x40000 != 0) ratio = (ratio * 0x2216e584f5fa1ea926041bedfe98) >> 128;
                              if (absTick & 0x80000 != 0) ratio = (ratio * 0x48a170391f7dc42444e8fa2) >> 128;
                              if (tick > 0) ratio = type(uint256).max / ratio;
                              // this divides by 1<<32 rounding up to go from a Q128.128 to a Q128.96.
                              // we then downcast because we know the result always fits within 160 bits due to our tick input constraint
                              // we round up in the division so getTickAtSqrtRatio of the output price is always consistent
                              sqrtPriceX96 = uint160((ratio >> 32) + (ratio % (1 << 32) == 0 ? 0 : 1));
                          }
                          /// @notice Calculates the greatest tick value such that getRatioAtTick(tick) <= ratio
                          /// @dev Throws in case sqrtPriceX96 < MIN_SQRT_RATIO, as MIN_SQRT_RATIO is the lowest value getRatioAtTick may
                          /// ever return.
                          /// @param sqrtPriceX96 The sqrt ratio for which to compute the tick as a Q64.96
                          /// @return tick The greatest tick for which the ratio is less than or equal to the input ratio
                          function getTickAtSqrtRatio(uint160 sqrtPriceX96) internal pure returns (int24 tick) {
                              // second inequality must be < because the price can never reach the price at the max tick
                              require(sqrtPriceX96 >= MIN_SQRT_RATIO && sqrtPriceX96 < MAX_SQRT_RATIO, 'R');
                              uint256 ratio = uint256(sqrtPriceX96) << 32;
                              uint256 r = ratio;
                              uint256 msb = 0;
                              assembly {
                                  let f := shl(7, gt(r, 0xFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFF))
                                  msb := or(msb, f)
                                  r := shr(f, r)
                              }
                              assembly {
                                  let f := shl(6, gt(r, 0xFFFFFFFFFFFFFFFF))
                                  msb := or(msb, f)
                                  r := shr(f, r)
                              }
                              assembly {
                                  let f := shl(5, gt(r, 0xFFFFFFFF))
                                  msb := or(msb, f)
                                  r := shr(f, r)
                              }
                              assembly {
                                  let f := shl(4, gt(r, 0xFFFF))
                                  msb := or(msb, f)
                                  r := shr(f, r)
                              }
                              assembly {
                                  let f := shl(3, gt(r, 0xFF))
                                  msb := or(msb, f)
                                  r := shr(f, r)
                              }
                              assembly {
                                  let f := shl(2, gt(r, 0xF))
                                  msb := or(msb, f)
                                  r := shr(f, r)
                              }
                              assembly {
                                  let f := shl(1, gt(r, 0x3))
                                  msb := or(msb, f)
                                  r := shr(f, r)
                              }
                              assembly {
                                  let f := gt(r, 0x1)
                                  msb := or(msb, f)
                              }
                              if (msb >= 128) r = ratio >> (msb - 127);
                              else r = ratio << (127 - msb);
                              int256 log_2 = (int256(msb) - 128) << 64;
                              assembly {
                                  r := shr(127, mul(r, r))
                                  let f := shr(128, r)
                                  log_2 := or(log_2, shl(63, f))
                                  r := shr(f, r)
                              }
                              assembly {
                                  r := shr(127, mul(r, r))
                                  let f := shr(128, r)
                                  log_2 := or(log_2, shl(62, f))
                                  r := shr(f, r)
                              }
                              assembly {
                                  r := shr(127, mul(r, r))
                                  let f := shr(128, r)
                                  log_2 := or(log_2, shl(61, f))
                                  r := shr(f, r)
                              }
                              assembly {
                                  r := shr(127, mul(r, r))
                                  let f := shr(128, r)
                                  log_2 := or(log_2, shl(60, f))
                                  r := shr(f, r)
                              }
                              assembly {
                                  r := shr(127, mul(r, r))
                                  let f := shr(128, r)
                                  log_2 := or(log_2, shl(59, f))
                                  r := shr(f, r)
                              }
                              assembly {
                                  r := shr(127, mul(r, r))
                                  let f := shr(128, r)
                                  log_2 := or(log_2, shl(58, f))
                                  r := shr(f, r)
                              }
                              assembly {
                                  r := shr(127, mul(r, r))
                                  let f := shr(128, r)
                                  log_2 := or(log_2, shl(57, f))
                                  r := shr(f, r)
                              }
                              assembly {
                                  r := shr(127, mul(r, r))
                                  let f := shr(128, r)
                                  log_2 := or(log_2, shl(56, f))
                                  r := shr(f, r)
                              }
                              assembly {
                                  r := shr(127, mul(r, r))
                                  let f := shr(128, r)
                                  log_2 := or(log_2, shl(55, f))
                                  r := shr(f, r)
                              }
                              assembly {
                                  r := shr(127, mul(r, r))
                                  let f := shr(128, r)
                                  log_2 := or(log_2, shl(54, f))
                                  r := shr(f, r)
                              }
                              assembly {
                                  r := shr(127, mul(r, r))
                                  let f := shr(128, r)
                                  log_2 := or(log_2, shl(53, f))
                                  r := shr(f, r)
                              }
                              assembly {
                                  r := shr(127, mul(r, r))
                                  let f := shr(128, r)
                                  log_2 := or(log_2, shl(52, f))
                                  r := shr(f, r)
                              }
                              assembly {
                                  r := shr(127, mul(r, r))
                                  let f := shr(128, r)
                                  log_2 := or(log_2, shl(51, f))
                                  r := shr(f, r)
                              }
                              assembly {
                                  r := shr(127, mul(r, r))
                                  let f := shr(128, r)
                                  log_2 := or(log_2, shl(50, f))
                              }
                              int256 log_sqrt10001 = log_2 * 255738958999603826347141; // 128.128 number
                              int24 tickLow = int24((log_sqrt10001 - 3402992956809132418596140100660247210) >> 128);
                              int24 tickHi = int24((log_sqrt10001 + 291339464771989622907027621153398088495) >> 128);
                              tick = tickLow == tickHi ? tickLow : getSqrtRatioAtTick(tickHi) <= sqrtPriceX96 ? tickHi : tickLow;
                          }
                      }
                      // SPDX-License-Identifier: GPL-2.0-or-later
                      pragma solidity >=0.5.0;
                      /// @title Math library for liquidity
                      library LiquidityMath {
                          /// @notice Add a signed liquidity delta to liquidity and revert if it overflows or underflows
                          /// @param x The liquidity before change
                          /// @param y The delta by which liquidity should be changed
                          /// @return z The liquidity delta
                          function addDelta(uint128 x, int128 y) internal pure returns (uint128 z) {
                              if (y < 0) {
                                  require((z = x - uint128(-y)) < x, 'LS');
                              } else {
                                  require((z = x + uint128(y)) >= x, 'LA');
                              }
                          }
                      }
                      // SPDX-License-Identifier: BUSL-1.1
                      pragma solidity >=0.5.0;
                      import './LowGasSafeMath.sol';
                      import './SafeCast.sol';
                      import './FullMath.sol';
                      import './UnsafeMath.sol';
                      import './FixedPoint96.sol';
                      /// @title Functions based on Q64.96 sqrt price and liquidity
                      /// @notice Contains the math that uses square root of price as a Q64.96 and liquidity to compute deltas
                      library SqrtPriceMath {
                          using LowGasSafeMath for uint256;
                          using SafeCast for uint256;
                          /// @notice Gets the next sqrt price given a delta of token0
                          /// @dev Always rounds up, because in the exact output case (increasing price) we need to move the price at least
                          /// far enough to get the desired output amount, and in the exact input case (decreasing price) we need to move the
                          /// price less in order to not send too much output.
                          /// The most precise formula for this is liquidity * sqrtPX96 / (liquidity +- amount * sqrtPX96),
                          /// if this is impossible because of overflow, we calculate liquidity / (liquidity / sqrtPX96 +- amount).
                          /// @param sqrtPX96 The starting price, i.e. before accounting for the token0 delta
                          /// @param liquidity The amount of usable liquidity
                          /// @param amount How much of token0 to add or remove from virtual reserves
                          /// @param add Whether to add or remove the amount of token0
                          /// @return The price after adding or removing amount, depending on add
                          function getNextSqrtPriceFromAmount0RoundingUp(
                              uint160 sqrtPX96,
                              uint128 liquidity,
                              uint256 amount,
                              bool add
                          ) internal pure returns (uint160) {
                              // we short circuit amount == 0 because the result is otherwise not guaranteed to equal the input price
                              if (amount == 0) return sqrtPX96;
                              uint256 numerator1 = uint256(liquidity) << FixedPoint96.RESOLUTION;
                              if (add) {
                                  uint256 product;
                                  if ((product = amount * sqrtPX96) / amount == sqrtPX96) {
                                      uint256 denominator = numerator1 + product;
                                      if (denominator >= numerator1)
                                          // always fits in 160 bits
                                          return uint160(FullMath.mulDivRoundingUp(numerator1, sqrtPX96, denominator));
                                  }
                                  return uint160(UnsafeMath.divRoundingUp(numerator1, (numerator1 / sqrtPX96).add(amount)));
                              } else {
                                  uint256 product;
                                  // if the product overflows, we know the denominator underflows
                                  // in addition, we must check that the denominator does not underflow
                                  require((product = amount * sqrtPX96) / amount == sqrtPX96 && numerator1 > product);
                                  uint256 denominator = numerator1 - product;
                                  return FullMath.mulDivRoundingUp(numerator1, sqrtPX96, denominator).toUint160();
                              }
                          }
                          /// @notice Gets the next sqrt price given a delta of token1
                          /// @dev Always rounds down, because in the exact output case (decreasing price) we need to move the price at least
                          /// far enough to get the desired output amount, and in the exact input case (increasing price) we need to move the
                          /// price less in order to not send too much output.
                          /// The formula we compute is within <1 wei of the lossless version: sqrtPX96 +- amount / liquidity
                          /// @param sqrtPX96 The starting price, i.e., before accounting for the token1 delta
                          /// @param liquidity The amount of usable liquidity
                          /// @param amount How much of token1 to add, or remove, from virtual reserves
                          /// @param add Whether to add, or remove, the amount of token1
                          /// @return The price after adding or removing `amount`
                          function getNextSqrtPriceFromAmount1RoundingDown(
                              uint160 sqrtPX96,
                              uint128 liquidity,
                              uint256 amount,
                              bool add
                          ) internal pure returns (uint160) {
                              // if we're adding (subtracting), rounding down requires rounding the quotient down (up)
                              // in both cases, avoid a mulDiv for most inputs
                              if (add) {
                                  uint256 quotient =
                                      (
                                          amount <= type(uint160).max
                                              ? (amount << FixedPoint96.RESOLUTION) / liquidity
                                              : FullMath.mulDiv(amount, FixedPoint96.Q96, liquidity)
                                      );
                                  return uint256(sqrtPX96).add(quotient).toUint160();
                              } else {
                                  uint256 quotient =
                                      (
                                          amount <= type(uint160).max
                                              ? UnsafeMath.divRoundingUp(amount << FixedPoint96.RESOLUTION, liquidity)
                                              : FullMath.mulDivRoundingUp(amount, FixedPoint96.Q96, liquidity)
                                      );
                                  require(sqrtPX96 > quotient);
                                  // always fits 160 bits
                                  return uint160(sqrtPX96 - quotient);
                              }
                          }
                          /// @notice Gets the next sqrt price given an input amount of token0 or token1
                          /// @dev Throws if price or liquidity are 0, or if the next price is out of bounds
                          /// @param sqrtPX96 The starting price, i.e., before accounting for the input amount
                          /// @param liquidity The amount of usable liquidity
                          /// @param amountIn How much of token0, or token1, is being swapped in
                          /// @param zeroForOne Whether the amount in is token0 or token1
                          /// @return sqrtQX96 The price after adding the input amount to token0 or token1
                          function getNextSqrtPriceFromInput(
                              uint160 sqrtPX96,
                              uint128 liquidity,
                              uint256 amountIn,
                              bool zeroForOne
                          ) internal pure returns (uint160 sqrtQX96) {
                              require(sqrtPX96 > 0);
                              require(liquidity > 0);
                              // round to make sure that we don't pass the target price
                              return
                                  zeroForOne
                                      ? getNextSqrtPriceFromAmount0RoundingUp(sqrtPX96, liquidity, amountIn, true)
                                      : getNextSqrtPriceFromAmount1RoundingDown(sqrtPX96, liquidity, amountIn, true);
                          }
                          /// @notice Gets the next sqrt price given an output amount of token0 or token1
                          /// @dev Throws if price or liquidity are 0 or the next price is out of bounds
                          /// @param sqrtPX96 The starting price before accounting for the output amount
                          /// @param liquidity The amount of usable liquidity
                          /// @param amountOut How much of token0, or token1, is being swapped out
                          /// @param zeroForOne Whether the amount out is token0 or token1
                          /// @return sqrtQX96 The price after removing the output amount of token0 or token1
                          function getNextSqrtPriceFromOutput(
                              uint160 sqrtPX96,
                              uint128 liquidity,
                              uint256 amountOut,
                              bool zeroForOne
                          ) internal pure returns (uint160 sqrtQX96) {
                              require(sqrtPX96 > 0);
                              require(liquidity > 0);
                              // round to make sure that we pass the target price
                              return
                                  zeroForOne
                                      ? getNextSqrtPriceFromAmount1RoundingDown(sqrtPX96, liquidity, amountOut, false)
                                      : getNextSqrtPriceFromAmount0RoundingUp(sqrtPX96, liquidity, amountOut, false);
                          }
                          /// @notice Gets the amount0 delta between two prices
                          /// @dev Calculates liquidity / sqrt(lower) - liquidity / sqrt(upper),
                          /// i.e. liquidity * (sqrt(upper) - sqrt(lower)) / (sqrt(upper) * sqrt(lower))
                          /// @param sqrtRatioAX96 A sqrt price
                          /// @param sqrtRatioBX96 Another sqrt price
                          /// @param liquidity The amount of usable liquidity
                          /// @param roundUp Whether to round the amount up or down
                          /// @return amount0 Amount of token0 required to cover a position of size liquidity between the two passed prices
                          function getAmount0Delta(
                              uint160 sqrtRatioAX96,
                              uint160 sqrtRatioBX96,
                              uint128 liquidity,
                              bool roundUp
                          ) internal pure returns (uint256 amount0) {
                              if (sqrtRatioAX96 > sqrtRatioBX96) (sqrtRatioAX96, sqrtRatioBX96) = (sqrtRatioBX96, sqrtRatioAX96);
                              uint256 numerator1 = uint256(liquidity) << FixedPoint96.RESOLUTION;
                              uint256 numerator2 = sqrtRatioBX96 - sqrtRatioAX96;
                              require(sqrtRatioAX96 > 0);
                              return
                                  roundUp
                                      ? UnsafeMath.divRoundingUp(
                                          FullMath.mulDivRoundingUp(numerator1, numerator2, sqrtRatioBX96),
                                          sqrtRatioAX96
                                      )
                                      : FullMath.mulDiv(numerator1, numerator2, sqrtRatioBX96) / sqrtRatioAX96;
                          }
                          /// @notice Gets the amount1 delta between two prices
                          /// @dev Calculates liquidity * (sqrt(upper) - sqrt(lower))
                          /// @param sqrtRatioAX96 A sqrt price
                          /// @param sqrtRatioBX96 Another sqrt price
                          /// @param liquidity The amount of usable liquidity
                          /// @param roundUp Whether to round the amount up, or down
                          /// @return amount1 Amount of token1 required to cover a position of size liquidity between the two passed prices
                          function getAmount1Delta(
                              uint160 sqrtRatioAX96,
                              uint160 sqrtRatioBX96,
                              uint128 liquidity,
                              bool roundUp
                          ) internal pure returns (uint256 amount1) {
                              if (sqrtRatioAX96 > sqrtRatioBX96) (sqrtRatioAX96, sqrtRatioBX96) = (sqrtRatioBX96, sqrtRatioAX96);
                              return
                                  roundUp
                                      ? FullMath.mulDivRoundingUp(liquidity, sqrtRatioBX96 - sqrtRatioAX96, FixedPoint96.Q96)
                                      : FullMath.mulDiv(liquidity, sqrtRatioBX96 - sqrtRatioAX96, FixedPoint96.Q96);
                          }
                          /// @notice Helper that gets signed token0 delta
                          /// @param sqrtRatioAX96 A sqrt price
                          /// @param sqrtRatioBX96 Another sqrt price
                          /// @param liquidity The change in liquidity for which to compute the amount0 delta
                          /// @return amount0 Amount of token0 corresponding to the passed liquidityDelta between the two prices
                          function getAmount0Delta(
                              uint160 sqrtRatioAX96,
                              uint160 sqrtRatioBX96,
                              int128 liquidity
                          ) internal pure returns (int256 amount0) {
                              return
                                  liquidity < 0
                                      ? -getAmount0Delta(sqrtRatioAX96, sqrtRatioBX96, uint128(-liquidity), false).toInt256()
                                      : getAmount0Delta(sqrtRatioAX96, sqrtRatioBX96, uint128(liquidity), true).toInt256();
                          }
                          /// @notice Helper that gets signed token1 delta
                          /// @param sqrtRatioAX96 A sqrt price
                          /// @param sqrtRatioBX96 Another sqrt price
                          /// @param liquidity The change in liquidity for which to compute the amount1 delta
                          /// @return amount1 Amount of token1 corresponding to the passed liquidityDelta between the two prices
                          function getAmount1Delta(
                              uint160 sqrtRatioAX96,
                              uint160 sqrtRatioBX96,
                              int128 liquidity
                          ) internal pure returns (int256 amount1) {
                              return
                                  liquidity < 0
                                      ? -getAmount1Delta(sqrtRatioAX96, sqrtRatioBX96, uint128(-liquidity), false).toInt256()
                                      : getAmount1Delta(sqrtRatioAX96, sqrtRatioBX96, uint128(liquidity), true).toInt256();
                          }
                      }
                      // SPDX-License-Identifier: BUSL-1.1
                      pragma solidity >=0.5.0;
                      import './FullMath.sol';
                      import './SqrtPriceMath.sol';
                      /// @title Computes the result of a swap within ticks
                      /// @notice Contains methods for computing the result of a swap within a single tick price range, i.e., a single tick.
                      library SwapMath {
                          /// @notice Computes the result of swapping some amount in, or amount out, given the parameters of the swap
                          /// @dev The fee, plus the amount in, will never exceed the amount remaining if the swap's `amountSpecified` is positive
                          /// @param sqrtRatioCurrentX96 The current sqrt price of the pool
                          /// @param sqrtRatioTargetX96 The price that cannot be exceeded, from which the direction of the swap is inferred
                          /// @param liquidity The usable liquidity
                          /// @param amountRemaining How much input or output amount is remaining to be swapped in/out
                          /// @param feePips The fee taken from the input amount, expressed in hundredths of a bip
                          /// @return sqrtRatioNextX96 The price after swapping the amount in/out, not to exceed the price target
                          /// @return amountIn The amount to be swapped in, of either token0 or token1, based on the direction of the swap
                          /// @return amountOut The amount to be received, of either token0 or token1, based on the direction of the swap
                          /// @return feeAmount The amount of input that will be taken as a fee
                          function computeSwapStep(
                              uint160 sqrtRatioCurrentX96,
                              uint160 sqrtRatioTargetX96,
                              uint128 liquidity,
                              int256 amountRemaining,
                              uint24 feePips
                          )
                              internal
                              pure
                              returns (
                                  uint160 sqrtRatioNextX96,
                                  uint256 amountIn,
                                  uint256 amountOut,
                                  uint256 feeAmount
                              )
                          {
                              bool zeroForOne = sqrtRatioCurrentX96 >= sqrtRatioTargetX96;
                              bool exactIn = amountRemaining >= 0;
                              if (exactIn) {
                                  uint256 amountRemainingLessFee = FullMath.mulDiv(uint256(amountRemaining), 1e6 - feePips, 1e6);
                                  amountIn = zeroForOne
                                      ? SqrtPriceMath.getAmount0Delta(sqrtRatioTargetX96, sqrtRatioCurrentX96, liquidity, true)
                                      : SqrtPriceMath.getAmount1Delta(sqrtRatioCurrentX96, sqrtRatioTargetX96, liquidity, true);
                                  if (amountRemainingLessFee >= amountIn) sqrtRatioNextX96 = sqrtRatioTargetX96;
                                  else
                                      sqrtRatioNextX96 = SqrtPriceMath.getNextSqrtPriceFromInput(
                                          sqrtRatioCurrentX96,
                                          liquidity,
                                          amountRemainingLessFee,
                                          zeroForOne
                                      );
                              } else {
                                  amountOut = zeroForOne
                                      ? SqrtPriceMath.getAmount1Delta(sqrtRatioTargetX96, sqrtRatioCurrentX96, liquidity, false)
                                      : SqrtPriceMath.getAmount0Delta(sqrtRatioCurrentX96, sqrtRatioTargetX96, liquidity, false);
                                  if (uint256(-amountRemaining) >= amountOut) sqrtRatioNextX96 = sqrtRatioTargetX96;
                                  else
                                      sqrtRatioNextX96 = SqrtPriceMath.getNextSqrtPriceFromOutput(
                                          sqrtRatioCurrentX96,
                                          liquidity,
                                          uint256(-amountRemaining),
                                          zeroForOne
                                      );
                              }
                              bool max = sqrtRatioTargetX96 == sqrtRatioNextX96;
                              // get the input/output amounts
                              if (zeroForOne) {
                                  amountIn = max && exactIn
                                      ? amountIn
                                      : SqrtPriceMath.getAmount0Delta(sqrtRatioNextX96, sqrtRatioCurrentX96, liquidity, true);
                                  amountOut = max && !exactIn
                                      ? amountOut
                                      : SqrtPriceMath.getAmount1Delta(sqrtRatioNextX96, sqrtRatioCurrentX96, liquidity, false);
                              } else {
                                  amountIn = max && exactIn
                                      ? amountIn
                                      : SqrtPriceMath.getAmount1Delta(sqrtRatioCurrentX96, sqrtRatioNextX96, liquidity, true);
                                  amountOut = max && !exactIn
                                      ? amountOut
                                      : SqrtPriceMath.getAmount0Delta(sqrtRatioCurrentX96, sqrtRatioNextX96, liquidity, false);
                              }
                              // cap the output amount to not exceed the remaining output amount
                              if (!exactIn && amountOut > uint256(-amountRemaining)) {
                                  amountOut = uint256(-amountRemaining);
                              }
                              if (exactIn && sqrtRatioNextX96 != sqrtRatioTargetX96) {
                                  // we didn't reach the target, so take the remainder of the maximum input as fee
                                  feeAmount = uint256(amountRemaining) - amountIn;
                              } else {
                                  feeAmount = FullMath.mulDivRoundingUp(amountIn, feePips, 1e6 - feePips);
                              }
                          }
                      }
                      // SPDX-License-Identifier: GPL-2.0-or-later
                      pragma solidity >=0.5.0;
                      /// @title An interface for a contract that is capable of deploying Uniswap V3 Pools
                      /// @notice A contract that constructs a pool must implement this to pass arguments to the pool
                      /// @dev This is used to avoid having constructor arguments in the pool contract, which results in the init code hash
                      /// of the pool being constant allowing the CREATE2 address of the pool to be cheaply computed on-chain
                      interface IUniswapV3PoolDeployer {
                          /// @notice Get the parameters to be used in constructing the pool, set transiently during pool creation.
                          /// @dev Called by the pool constructor to fetch the parameters of the pool
                          /// Returns factory The factory address
                          /// Returns token0 The first token of the pool by address sort order
                          /// Returns token1 The second token of the pool by address sort order
                          /// Returns fee The fee collected upon every swap in the pool, denominated in hundredths of a bip
                          /// Returns tickSpacing The minimum number of ticks between initialized ticks
                          function parameters()
                              external
                              view
                              returns (
                                  address factory,
                                  address token0,
                                  address token1,
                                  uint24 fee,
                                  int24 tickSpacing
                              );
                      }
                      // SPDX-License-Identifier: GPL-2.0-or-later
                      pragma solidity >=0.5.0;
                      /// @title The interface for the Uniswap V3 Factory
                      /// @notice The Uniswap V3 Factory facilitates creation of Uniswap V3 pools and control over the protocol fees
                      interface IUniswapV3Factory {
                          /// @notice Emitted when the owner of the factory is changed
                          /// @param oldOwner The owner before the owner was changed
                          /// @param newOwner The owner after the owner was changed
                          event OwnerChanged(address indexed oldOwner, address indexed newOwner);
                          /// @notice Emitted when a pool is created
                          /// @param token0 The first token of the pool by address sort order
                          /// @param token1 The second token of the pool by address sort order
                          /// @param fee The fee collected upon every swap in the pool, denominated in hundredths of a bip
                          /// @param tickSpacing The minimum number of ticks between initialized ticks
                          /// @param pool The address of the created pool
                          event PoolCreated(
                              address indexed token0,
                              address indexed token1,
                              uint24 indexed fee,
                              int24 tickSpacing,
                              address pool
                          );
                          /// @notice Emitted when a new fee amount is enabled for pool creation via the factory
                          /// @param fee The enabled fee, denominated in hundredths of a bip
                          /// @param tickSpacing The minimum number of ticks between initialized ticks for pools created with the given fee
                          event FeeAmountEnabled(uint24 indexed fee, int24 indexed tickSpacing);
                          /// @notice Returns the current owner of the factory
                          /// @dev Can be changed by the current owner via setOwner
                          /// @return The address of the factory owner
                          function owner() external view returns (address);
                          /// @notice Returns the tick spacing for a given fee amount, if enabled, or 0 if not enabled
                          /// @dev A fee amount can never be removed, so this value should be hard coded or cached in the calling context
                          /// @param fee The enabled fee, denominated in hundredths of a bip. Returns 0 in case of unenabled fee
                          /// @return The tick spacing
                          function feeAmountTickSpacing(uint24 fee) external view returns (int24);
                          /// @notice Returns the pool address for a given pair of tokens and a fee, or address 0 if it does not exist
                          /// @dev tokenA and tokenB may be passed in either token0/token1 or token1/token0 order
                          /// @param tokenA The contract address of either token0 or token1
                          /// @param tokenB The contract address of the other token
                          /// @param fee The fee collected upon every swap in the pool, denominated in hundredths of a bip
                          /// @return pool The pool address
                          function getPool(
                              address tokenA,
                              address tokenB,
                              uint24 fee
                          ) external view returns (address pool);
                          /// @notice Creates a pool for the given two tokens and fee
                          /// @param tokenA One of the two tokens in the desired pool
                          /// @param tokenB The other of the two tokens in the desired pool
                          /// @param fee The desired fee for the pool
                          /// @dev tokenA and tokenB may be passed in either order: token0/token1 or token1/token0. tickSpacing is retrieved
                          /// from the fee. The call will revert if the pool already exists, the fee is invalid, or the token arguments
                          /// are invalid.
                          /// @return pool The address of the newly created pool
                          function createPool(
                              address tokenA,
                              address tokenB,
                              uint24 fee
                          ) external returns (address pool);
                          /// @notice Updates the owner of the factory
                          /// @dev Must be called by the current owner
                          /// @param _owner The new owner of the factory
                          function setOwner(address _owner) external;
                          /// @notice Enables a fee amount with the given tickSpacing
                          /// @dev Fee amounts may never be removed once enabled
                          /// @param fee The fee amount to enable, denominated in hundredths of a bip (i.e. 1e-6)
                          /// @param tickSpacing The spacing between ticks to be enforced for all pools created with the given fee amount
                          function enableFeeAmount(uint24 fee, int24 tickSpacing) external;
                      }
                      // SPDX-License-Identifier: GPL-2.0-or-later
                      pragma solidity >=0.5.0;
                      /// @title Minimal ERC20 interface for Uniswap
                      /// @notice Contains a subset of the full ERC20 interface that is used in Uniswap V3
                      interface IERC20Minimal {
                          /// @notice Returns the balance of a token
                          /// @param account The account for which to look up the number of tokens it has, i.e. its balance
                          /// @return The number of tokens held by the account
                          function balanceOf(address account) external view returns (uint256);
                          /// @notice Transfers the amount of token from the `msg.sender` to the recipient
                          /// @param recipient The account that will receive the amount transferred
                          /// @param amount The number of tokens to send from the sender to the recipient
                          /// @return Returns true for a successful transfer, false for an unsuccessful transfer
                          function transfer(address recipient, uint256 amount) external returns (bool);
                          /// @notice Returns the current allowance given to a spender by an owner
                          /// @param owner The account of the token owner
                          /// @param spender The account of the token spender
                          /// @return The current allowance granted by `owner` to `spender`
                          function allowance(address owner, address spender) external view returns (uint256);
                          /// @notice Sets the allowance of a spender from the `msg.sender` to the value `amount`
                          /// @param spender The account which will be allowed to spend a given amount of the owners tokens
                          /// @param amount The amount of tokens allowed to be used by `spender`
                          /// @return Returns true for a successful approval, false for unsuccessful
                          function approve(address spender, uint256 amount) external returns (bool);
                          /// @notice Transfers `amount` tokens from `sender` to `recipient` up to the allowance given to the `msg.sender`
                          /// @param sender The account from which the transfer will be initiated
                          /// @param recipient The recipient of the transfer
                          /// @param amount The amount of the transfer
                          /// @return Returns true for a successful transfer, false for unsuccessful
                          function transferFrom(
                              address sender,
                              address recipient,
                              uint256 amount
                          ) external returns (bool);
                          /// @notice Event emitted when tokens are transferred from one address to another, either via `#transfer` or `#transferFrom`.
                          /// @param from The account from which the tokens were sent, i.e. the balance decreased
                          /// @param to The account to which the tokens were sent, i.e. the balance increased
                          /// @param value The amount of tokens that were transferred
                          event Transfer(address indexed from, address indexed to, uint256 value);
                          /// @notice Event emitted when the approval amount for the spender of a given owner's tokens changes.
                          /// @param owner The account that approved spending of its tokens
                          /// @param spender The account for which the spending allowance was modified
                          /// @param value The new allowance from the owner to the spender
                          event Approval(address indexed owner, address indexed spender, uint256 value);
                      }
                      // SPDX-License-Identifier: GPL-2.0-or-later
                      pragma solidity >=0.5.0;
                      /// @title Callback for IUniswapV3PoolActions#mint
                      /// @notice Any contract that calls IUniswapV3PoolActions#mint must implement this interface
                      interface IUniswapV3MintCallback {
                          /// @notice Called to `msg.sender` after minting liquidity to a position from IUniswapV3Pool#mint.
                          /// @dev In the implementation you must pay the pool tokens owed for the minted liquidity.
                          /// The caller of this method must be checked to be a UniswapV3Pool deployed by the canonical UniswapV3Factory.
                          /// @param amount0Owed The amount of token0 due to the pool for the minted liquidity
                          /// @param amount1Owed The amount of token1 due to the pool for the minted liquidity
                          /// @param data Any data passed through by the caller via the IUniswapV3PoolActions#mint call
                          function uniswapV3MintCallback(
                              uint256 amount0Owed,
                              uint256 amount1Owed,
                              bytes calldata data
                          ) external;
                      }
                      // SPDX-License-Identifier: GPL-2.0-or-later
                      pragma solidity >=0.5.0;
                      /// @title Callback for IUniswapV3PoolActions#swap
                      /// @notice Any contract that calls IUniswapV3PoolActions#swap must implement this interface
                      interface IUniswapV3SwapCallback {
                          /// @notice Called to `msg.sender` after executing a swap via IUniswapV3Pool#swap.
                          /// @dev In the implementation you must pay the pool tokens owed for the swap.
                          /// The caller of this method must be checked to be a UniswapV3Pool deployed by the canonical UniswapV3Factory.
                          /// amount0Delta and amount1Delta can both be 0 if no tokens were swapped.
                          /// @param amount0Delta The amount of token0 that was sent (negative) or must be received (positive) by the pool by
                          /// the end of the swap. If positive, the callback must send that amount of token0 to the pool.
                          /// @param amount1Delta The amount of token1 that was sent (negative) or must be received (positive) by the pool by
                          /// the end of the swap. If positive, the callback must send that amount of token1 to the pool.
                          /// @param data Any data passed through by the caller via the IUniswapV3PoolActions#swap call
                          function uniswapV3SwapCallback(
                              int256 amount0Delta,
                              int256 amount1Delta,
                              bytes calldata data
                          ) external;
                      }
                      // SPDX-License-Identifier: GPL-2.0-or-later
                      pragma solidity >=0.5.0;
                      /// @title Callback for IUniswapV3PoolActions#flash
                      /// @notice Any contract that calls IUniswapV3PoolActions#flash must implement this interface
                      interface IUniswapV3FlashCallback {
                          /// @notice Called to `msg.sender` after transferring to the recipient from IUniswapV3Pool#flash.
                          /// @dev In the implementation you must repay the pool the tokens sent by flash plus the computed fee amounts.
                          /// The caller of this method must be checked to be a UniswapV3Pool deployed by the canonical UniswapV3Factory.
                          /// @param fee0 The fee amount in token0 due to the pool by the end of the flash
                          /// @param fee1 The fee amount in token1 due to the pool by the end of the flash
                          /// @param data Any data passed through by the caller via the IUniswapV3PoolActions#flash call
                          function uniswapV3FlashCallback(
                              uint256 fee0,
                              uint256 fee1,
                              bytes calldata data
                          ) external;
                      }
                      // SPDX-License-Identifier: GPL-2.0-or-later
                      pragma solidity >=0.5.0;
                      /// @title Pool state that never changes
                      /// @notice These parameters are fixed for a pool forever, i.e., the methods will always return the same values
                      interface IUniswapV3PoolImmutables {
                          /// @notice The contract that deployed the pool, which must adhere to the IUniswapV3Factory interface
                          /// @return The contract address
                          function factory() external view returns (address);
                          /// @notice The first of the two tokens of the pool, sorted by address
                          /// @return The token contract address
                          function token0() external view returns (address);
                          /// @notice The second of the two tokens of the pool, sorted by address
                          /// @return The token contract address
                          function token1() external view returns (address);
                          /// @notice The pool's fee in hundredths of a bip, i.e. 1e-6
                          /// @return The fee
                          function fee() external view returns (uint24);
                          /// @notice The pool tick spacing
                          /// @dev Ticks can only be used at multiples of this value, minimum of 1 and always positive
                          /// e.g.: a tickSpacing of 3 means ticks can be initialized every 3rd tick, i.e., ..., -6, -3, 0, 3, 6, ...
                          /// This value is an int24 to avoid casting even though it is always positive.
                          /// @return The tick spacing
                          function tickSpacing() external view returns (int24);
                          /// @notice The maximum amount of position liquidity that can use any tick in the range
                          /// @dev This parameter is enforced per tick to prevent liquidity from overflowing a uint128 at any point, and
                          /// also prevents out-of-range liquidity from being used to prevent adding in-range liquidity to a pool
                          /// @return The max amount of liquidity per tick
                          function maxLiquidityPerTick() external view returns (uint128);
                      }
                      // SPDX-License-Identifier: GPL-2.0-or-later
                      pragma solidity >=0.5.0;
                      /// @title Pool state that can change
                      /// @notice These methods compose the pool's state, and can change with any frequency including multiple times
                      /// per transaction
                      interface IUniswapV3PoolState {
                          /// @notice The 0th storage slot in the pool stores many values, and is exposed as a single method to save gas
                          /// when accessed externally.
                          /// @return sqrtPriceX96 The current price of the pool as a sqrt(token1/token0) Q64.96 value
                          /// tick The current tick of the pool, i.e. according to the last tick transition that was run.
                          /// This value may not always be equal to SqrtTickMath.getTickAtSqrtRatio(sqrtPriceX96) if the price is on a tick
                          /// boundary.
                          /// observationIndex The index of the last oracle observation that was written,
                          /// observationCardinality The current maximum number of observations stored in the pool,
                          /// observationCardinalityNext The next maximum number of observations, to be updated when the observation.
                          /// feeProtocol The protocol fee for both tokens of the pool.
                          /// Encoded as two 4 bit values, where the protocol fee of token1 is shifted 4 bits and the protocol fee of token0
                          /// is the lower 4 bits. Used as the denominator of a fraction of the swap fee, e.g. 4 means 1/4th of the swap fee.
                          /// unlocked Whether the pool is currently locked to reentrancy
                          function slot0()
                              external
                              view
                              returns (
                                  uint160 sqrtPriceX96,
                                  int24 tick,
                                  uint16 observationIndex,
                                  uint16 observationCardinality,
                                  uint16 observationCardinalityNext,
                                  uint8 feeProtocol,
                                  bool unlocked
                              );
                          /// @notice The fee growth as a Q128.128 fees of token0 collected per unit of liquidity for the entire life of the pool
                          /// @dev This value can overflow the uint256
                          function feeGrowthGlobal0X128() external view returns (uint256);
                          /// @notice The fee growth as a Q128.128 fees of token1 collected per unit of liquidity for the entire life of the pool
                          /// @dev This value can overflow the uint256
                          function feeGrowthGlobal1X128() external view returns (uint256);
                          /// @notice The amounts of token0 and token1 that are owed to the protocol
                          /// @dev Protocol fees will never exceed uint128 max in either token
                          function protocolFees() external view returns (uint128 token0, uint128 token1);
                          /// @notice The currently in range liquidity available to the pool
                          /// @dev This value has no relationship to the total liquidity across all ticks
                          function liquidity() external view returns (uint128);
                          /// @notice Look up information about a specific tick in the pool
                          /// @param tick The tick to look up
                          /// @return liquidityGross the total amount of position liquidity that uses the pool either as tick lower or
                          /// tick upper,
                          /// liquidityNet how much liquidity changes when the pool price crosses the tick,
                          /// feeGrowthOutside0X128 the fee growth on the other side of the tick from the current tick in token0,
                          /// feeGrowthOutside1X128 the fee growth on the other side of the tick from the current tick in token1,
                          /// tickCumulativeOutside the cumulative tick value on the other side of the tick from the current tick
                          /// secondsPerLiquidityOutsideX128 the seconds spent per liquidity on the other side of the tick from the current tick,
                          /// secondsOutside the seconds spent on the other side of the tick from the current tick,
                          /// initialized Set to true if the tick is initialized, i.e. liquidityGross is greater than 0, otherwise equal to false.
                          /// Outside values can only be used if the tick is initialized, i.e. if liquidityGross is greater than 0.
                          /// In addition, these values are only relative and must be used only in comparison to previous snapshots for
                          /// a specific position.
                          function ticks(int24 tick)
                              external
                              view
                              returns (
                                  uint128 liquidityGross,
                                  int128 liquidityNet,
                                  uint256 feeGrowthOutside0X128,
                                  uint256 feeGrowthOutside1X128,
                                  int56 tickCumulativeOutside,
                                  uint160 secondsPerLiquidityOutsideX128,
                                  uint32 secondsOutside,
                                  bool initialized
                              );
                          /// @notice Returns 256 packed tick initialized boolean values. See TickBitmap for more information
                          function tickBitmap(int16 wordPosition) external view returns (uint256);
                          /// @notice Returns the information about a position by the position's key
                          /// @param key The position's key is a hash of a preimage composed by the owner, tickLower and tickUpper
                          /// @return _liquidity The amount of liquidity in the position,
                          /// Returns feeGrowthInside0LastX128 fee growth of token0 inside the tick range as of the last mint/burn/poke,
                          /// Returns feeGrowthInside1LastX128 fee growth of token1 inside the tick range as of the last mint/burn/poke,
                          /// Returns tokensOwed0 the computed amount of token0 owed to the position as of the last mint/burn/poke,
                          /// Returns tokensOwed1 the computed amount of token1 owed to the position as of the last mint/burn/poke
                          function positions(bytes32 key)
                              external
                              view
                              returns (
                                  uint128 _liquidity,
                                  uint256 feeGrowthInside0LastX128,
                                  uint256 feeGrowthInside1LastX128,
                                  uint128 tokensOwed0,
                                  uint128 tokensOwed1
                              );
                          /// @notice Returns data about a specific observation index
                          /// @param index The element of the observations array to fetch
                          /// @dev You most likely want to use #observe() instead of this method to get an observation as of some amount of time
                          /// ago, rather than at a specific index in the array.
                          /// @return blockTimestamp The timestamp of the observation,
                          /// Returns tickCumulative the tick multiplied by seconds elapsed for the life of the pool as of the observation timestamp,
                          /// Returns secondsPerLiquidityCumulativeX128 the seconds per in range liquidity for the life of the pool as of the observation timestamp,
                          /// Returns initialized whether the observation has been initialized and the values are safe to use
                          function observations(uint256 index)
                              external
                              view
                              returns (
                                  uint32 blockTimestamp,
                                  int56 tickCumulative,
                                  uint160 secondsPerLiquidityCumulativeX128,
                                  bool initialized
                              );
                      }
                      // SPDX-License-Identifier: GPL-2.0-or-later
                      pragma solidity >=0.5.0;
                      /// @title Pool state that is not stored
                      /// @notice Contains view functions to provide information about the pool that is computed rather than stored on the
                      /// blockchain. The functions here may have variable gas costs.
                      interface IUniswapV3PoolDerivedState {
                          /// @notice Returns the cumulative tick and liquidity as of each timestamp `secondsAgo` from the current block timestamp
                          /// @dev To get a time weighted average tick or liquidity-in-range, you must call this with two values, one representing
                          /// the beginning of the period and another for the end of the period. E.g., to get the last hour time-weighted average tick,
                          /// you must call it with secondsAgos = [3600, 0].
                          /// @dev The time weighted average tick represents the geometric time weighted average price of the pool, in
                          /// log base sqrt(1.0001) of token1 / token0. The TickMath library can be used to go from a tick value to a ratio.
                          /// @param secondsAgos From how long ago each cumulative tick and liquidity value should be returned
                          /// @return tickCumulatives Cumulative tick values as of each `secondsAgos` from the current block timestamp
                          /// @return secondsPerLiquidityCumulativeX128s Cumulative seconds per liquidity-in-range value as of each `secondsAgos` from the current block
                          /// timestamp
                          function observe(uint32[] calldata secondsAgos)
                              external
                              view
                              returns (int56[] memory tickCumulatives, uint160[] memory secondsPerLiquidityCumulativeX128s);
                          /// @notice Returns a snapshot of the tick cumulative, seconds per liquidity and seconds inside a tick range
                          /// @dev Snapshots must only be compared to other snapshots, taken over a period for which a position existed.
                          /// I.e., snapshots cannot be compared if a position is not held for the entire period between when the first
                          /// snapshot is taken and the second snapshot is taken.
                          /// @param tickLower The lower tick of the range
                          /// @param tickUpper The upper tick of the range
                          /// @return tickCumulativeInside The snapshot of the tick accumulator for the range
                          /// @return secondsPerLiquidityInsideX128 The snapshot of seconds per liquidity for the range
                          /// @return secondsInside The snapshot of seconds per liquidity for the range
                          function snapshotCumulativesInside(int24 tickLower, int24 tickUpper)
                              external
                              view
                              returns (
                                  int56 tickCumulativeInside,
                                  uint160 secondsPerLiquidityInsideX128,
                                  uint32 secondsInside
                              );
                      }
                      // SPDX-License-Identifier: GPL-2.0-or-later
                      pragma solidity >=0.5.0;
                      /// @title Permissionless pool actions
                      /// @notice Contains pool methods that can be called by anyone
                      interface IUniswapV3PoolActions {
                          /// @notice Sets the initial price for the pool
                          /// @dev Price is represented as a sqrt(amountToken1/amountToken0) Q64.96 value
                          /// @param sqrtPriceX96 the initial sqrt price of the pool as a Q64.96
                          function initialize(uint160 sqrtPriceX96) external;
                          /// @notice Adds liquidity for the given recipient/tickLower/tickUpper position
                          /// @dev The caller of this method receives a callback in the form of IUniswapV3MintCallback#uniswapV3MintCallback
                          /// in which they must pay any token0 or token1 owed for the liquidity. The amount of token0/token1 due depends
                          /// on tickLower, tickUpper, the amount of liquidity, and the current price.
                          /// @param recipient The address for which the liquidity will be created
                          /// @param tickLower The lower tick of the position in which to add liquidity
                          /// @param tickUpper The upper tick of the position in which to add liquidity
                          /// @param amount The amount of liquidity to mint
                          /// @param data Any data that should be passed through to the callback
                          /// @return amount0 The amount of token0 that was paid to mint the given amount of liquidity. Matches the value in the callback
                          /// @return amount1 The amount of token1 that was paid to mint the given amount of liquidity. Matches the value in the callback
                          function mint(
                              address recipient,
                              int24 tickLower,
                              int24 tickUpper,
                              uint128 amount,
                              bytes calldata data
                          ) external returns (uint256 amount0, uint256 amount1);
                          /// @notice Collects tokens owed to a position
                          /// @dev Does not recompute fees earned, which must be done either via mint or burn of any amount of liquidity.
                          /// Collect must be called by the position owner. To withdraw only token0 or only token1, amount0Requested or
                          /// amount1Requested may be set to zero. To withdraw all tokens owed, caller may pass any value greater than the
                          /// actual tokens owed, e.g. type(uint128).max. Tokens owed may be from accumulated swap fees or burned liquidity.
                          /// @param recipient The address which should receive the fees collected
                          /// @param tickLower The lower tick of the position for which to collect fees
                          /// @param tickUpper The upper tick of the position for which to collect fees
                          /// @param amount0Requested How much token0 should be withdrawn from the fees owed
                          /// @param amount1Requested How much token1 should be withdrawn from the fees owed
                          /// @return amount0 The amount of fees collected in token0
                          /// @return amount1 The amount of fees collected in token1
                          function collect(
                              address recipient,
                              int24 tickLower,
                              int24 tickUpper,
                              uint128 amount0Requested,
                              uint128 amount1Requested
                          ) external returns (uint128 amount0, uint128 amount1);
                          /// @notice Burn liquidity from the sender and account tokens owed for the liquidity to the position
                          /// @dev Can be used to trigger a recalculation of fees owed to a position by calling with an amount of 0
                          /// @dev Fees must be collected separately via a call to #collect
                          /// @param tickLower The lower tick of the position for which to burn liquidity
                          /// @param tickUpper The upper tick of the position for which to burn liquidity
                          /// @param amount How much liquidity to burn
                          /// @return amount0 The amount of token0 sent to the recipient
                          /// @return amount1 The amount of token1 sent to the recipient
                          function burn(
                              int24 tickLower,
                              int24 tickUpper,
                              uint128 amount
                          ) external returns (uint256 amount0, uint256 amount1);
                          /// @notice Swap token0 for token1, or token1 for token0
                          /// @dev The caller of this method receives a callback in the form of IUniswapV3SwapCallback#uniswapV3SwapCallback
                          /// @param recipient The address to receive the output of the swap
                          /// @param zeroForOne The direction of the swap, true for token0 to token1, false for token1 to token0
                          /// @param amountSpecified The amount of the swap, which implicitly configures the swap as exact input (positive), or exact output (negative)
                          /// @param sqrtPriceLimitX96 The Q64.96 sqrt price limit. If zero for one, the price cannot be less than this
                          /// value after the swap. If one for zero, the price cannot be greater than this value after the swap
                          /// @param data Any data to be passed through to the callback
                          /// @return amount0 The delta of the balance of token0 of the pool, exact when negative, minimum when positive
                          /// @return amount1 The delta of the balance of token1 of the pool, exact when negative, minimum when positive
                          function swap(
                              address recipient,
                              bool zeroForOne,
                              int256 amountSpecified,
                              uint160 sqrtPriceLimitX96,
                              bytes calldata data
                          ) external returns (int256 amount0, int256 amount1);
                          /// @notice Receive token0 and/or token1 and pay it back, plus a fee, in the callback
                          /// @dev The caller of this method receives a callback in the form of IUniswapV3FlashCallback#uniswapV3FlashCallback
                          /// @dev Can be used to donate underlying tokens pro-rata to currently in-range liquidity providers by calling
                          /// with 0 amount{0,1} and sending the donation amount(s) from the callback
                          /// @param recipient The address which will receive the token0 and token1 amounts
                          /// @param amount0 The amount of token0 to send
                          /// @param amount1 The amount of token1 to send
                          /// @param data Any data to be passed through to the callback
                          function flash(
                              address recipient,
                              uint256 amount0,
                              uint256 amount1,
                              bytes calldata data
                          ) external;
                          /// @notice Increase the maximum number of price and liquidity observations that this pool will store
                          /// @dev This method is no-op if the pool already has an observationCardinalityNext greater than or equal to
                          /// the input observationCardinalityNext.
                          /// @param observationCardinalityNext The desired minimum number of observations for the pool to store
                          function increaseObservationCardinalityNext(uint16 observationCardinalityNext) external;
                      }
                      // SPDX-License-Identifier: GPL-2.0-or-later
                      pragma solidity >=0.5.0;
                      /// @title Permissioned pool actions
                      /// @notice Contains pool methods that may only be called by the factory owner
                      interface IUniswapV3PoolOwnerActions {
                          /// @notice Set the denominator of the protocol's % share of the fees
                          /// @param feeProtocol0 new protocol fee for token0 of the pool
                          /// @param feeProtocol1 new protocol fee for token1 of the pool
                          function setFeeProtocol(uint8 feeProtocol0, uint8 feeProtocol1) external;
                          /// @notice Collect the protocol fee accrued to the pool
                          /// @param recipient The address to which collected protocol fees should be sent
                          /// @param amount0Requested The maximum amount of token0 to send, can be 0 to collect fees in only token1
                          /// @param amount1Requested The maximum amount of token1 to send, can be 0 to collect fees in only token0
                          /// @return amount0 The protocol fee collected in token0
                          /// @return amount1 The protocol fee collected in token1
                          function collectProtocol(
                              address recipient,
                              uint128 amount0Requested,
                              uint128 amount1Requested
                          ) external returns (uint128 amount0, uint128 amount1);
                      }
                      // SPDX-License-Identifier: GPL-2.0-or-later
                      pragma solidity >=0.5.0;
                      /// @title Events emitted by a pool
                      /// @notice Contains all events emitted by the pool
                      interface IUniswapV3PoolEvents {
                          /// @notice Emitted exactly once by a pool when #initialize is first called on the pool
                          /// @dev Mint/Burn/Swap cannot be emitted by the pool before Initialize
                          /// @param sqrtPriceX96 The initial sqrt price of the pool, as a Q64.96
                          /// @param tick The initial tick of the pool, i.e. log base 1.0001 of the starting price of the pool
                          event Initialize(uint160 sqrtPriceX96, int24 tick);
                          /// @notice Emitted when liquidity is minted for a given position
                          /// @param sender The address that minted the liquidity
                          /// @param owner The owner of the position and recipient of any minted liquidity
                          /// @param tickLower The lower tick of the position
                          /// @param tickUpper The upper tick of the position
                          /// @param amount The amount of liquidity minted to the position range
                          /// @param amount0 How much token0 was required for the minted liquidity
                          /// @param amount1 How much token1 was required for the minted liquidity
                          event Mint(
                              address sender,
                              address indexed owner,
                              int24 indexed tickLower,
                              int24 indexed tickUpper,
                              uint128 amount,
                              uint256 amount0,
                              uint256 amount1
                          );
                          /// @notice Emitted when fees are collected by the owner of a position
                          /// @dev Collect events may be emitted with zero amount0 and amount1 when the caller chooses not to collect fees
                          /// @param owner The owner of the position for which fees are collected
                          /// @param tickLower The lower tick of the position
                          /// @param tickUpper The upper tick of the position
                          /// @param amount0 The amount of token0 fees collected
                          /// @param amount1 The amount of token1 fees collected
                          event Collect(
                              address indexed owner,
                              address recipient,
                              int24 indexed tickLower,
                              int24 indexed tickUpper,
                              uint128 amount0,
                              uint128 amount1
                          );
                          /// @notice Emitted when a position's liquidity is removed
                          /// @dev Does not withdraw any fees earned by the liquidity position, which must be withdrawn via #collect
                          /// @param owner The owner of the position for which liquidity is removed
                          /// @param tickLower The lower tick of the position
                          /// @param tickUpper The upper tick of the position
                          /// @param amount The amount of liquidity to remove
                          /// @param amount0 The amount of token0 withdrawn
                          /// @param amount1 The amount of token1 withdrawn
                          event Burn(
                              address indexed owner,
                              int24 indexed tickLower,
                              int24 indexed tickUpper,
                              uint128 amount,
                              uint256 amount0,
                              uint256 amount1
                          );
                          /// @notice Emitted by the pool for any swaps between token0 and token1
                          /// @param sender The address that initiated the swap call, and that received the callback
                          /// @param recipient The address that received the output of the swap
                          /// @param amount0 The delta of the token0 balance of the pool
                          /// @param amount1 The delta of the token1 balance of the pool
                          /// @param sqrtPriceX96 The sqrt(price) of the pool after the swap, as a Q64.96
                          /// @param liquidity The liquidity of the pool after the swap
                          /// @param tick The log base 1.0001 of price of the pool after the swap
                          event Swap(
                              address indexed sender,
                              address indexed recipient,
                              int256 amount0,
                              int256 amount1,
                              uint160 sqrtPriceX96,
                              uint128 liquidity,
                              int24 tick
                          );
                          /// @notice Emitted by the pool for any flashes of token0/token1
                          /// @param sender The address that initiated the swap call, and that received the callback
                          /// @param recipient The address that received the tokens from flash
                          /// @param amount0 The amount of token0 that was flashed
                          /// @param amount1 The amount of token1 that was flashed
                          /// @param paid0 The amount of token0 paid for the flash, which can exceed the amount0 plus the fee
                          /// @param paid1 The amount of token1 paid for the flash, which can exceed the amount1 plus the fee
                          event Flash(
                              address indexed sender,
                              address indexed recipient,
                              uint256 amount0,
                              uint256 amount1,
                              uint256 paid0,
                              uint256 paid1
                          );
                          /// @notice Emitted by the pool for increases to the number of observations that can be stored
                          /// @dev observationCardinalityNext is not the observation cardinality until an observation is written at the index
                          /// just before a mint/swap/burn.
                          /// @param observationCardinalityNextOld The previous value of the next observation cardinality
                          /// @param observationCardinalityNextNew The updated value of the next observation cardinality
                          event IncreaseObservationCardinalityNext(
                              uint16 observationCardinalityNextOld,
                              uint16 observationCardinalityNextNew
                          );
                          /// @notice Emitted when the protocol fee is changed by the pool
                          /// @param feeProtocol0Old The previous value of the token0 protocol fee
                          /// @param feeProtocol1Old The previous value of the token1 protocol fee
                          /// @param feeProtocol0New The updated value of the token0 protocol fee
                          /// @param feeProtocol1New The updated value of the token1 protocol fee
                          event SetFeeProtocol(uint8 feeProtocol0Old, uint8 feeProtocol1Old, uint8 feeProtocol0New, uint8 feeProtocol1New);
                          /// @notice Emitted when the collected protocol fees are withdrawn by the factory owner
                          /// @param sender The address that collects the protocol fees
                          /// @param recipient The address that receives the collected protocol fees
                          /// @param amount0 The amount of token0 protocol fees that is withdrawn
                          /// @param amount0 The amount of token1 protocol fees that is withdrawn
                          event CollectProtocol(address indexed sender, address indexed recipient, uint128 amount0, uint128 amount1);
                      }
                      // SPDX-License-Identifier: GPL-2.0-or-later
                      pragma solidity >=0.5.0;
                      /// @title BitMath
                      /// @dev This library provides functionality for computing bit properties of an unsigned integer
                      library BitMath {
                          /// @notice Returns the index of the most significant bit of the number,
                          ///     where the least significant bit is at index 0 and the most significant bit is at index 255
                          /// @dev The function satisfies the property:
                          ///     x >= 2**mostSignificantBit(x) and x < 2**(mostSignificantBit(x)+1)
                          /// @param x the value for which to compute the most significant bit, must be greater than 0
                          /// @return r the index of the most significant bit
                          function mostSignificantBit(uint256 x) internal pure returns (uint8 r) {
                              require(x > 0);
                              if (x >= 0x100000000000000000000000000000000) {
                                  x >>= 128;
                                  r += 128;
                              }
                              if (x >= 0x10000000000000000) {
                                  x >>= 64;
                                  r += 64;
                              }
                              if (x >= 0x100000000) {
                                  x >>= 32;
                                  r += 32;
                              }
                              if (x >= 0x10000) {
                                  x >>= 16;
                                  r += 16;
                              }
                              if (x >= 0x100) {
                                  x >>= 8;
                                  r += 8;
                              }
                              if (x >= 0x10) {
                                  x >>= 4;
                                  r += 4;
                              }
                              if (x >= 0x4) {
                                  x >>= 2;
                                  r += 2;
                              }
                              if (x >= 0x2) r += 1;
                          }
                          /// @notice Returns the index of the least significant bit of the number,
                          ///     where the least significant bit is at index 0 and the most significant bit is at index 255
                          /// @dev The function satisfies the property:
                          ///     (x & 2**leastSignificantBit(x)) != 0 and (x & (2**(leastSignificantBit(x)) - 1)) == 0)
                          /// @param x the value for which to compute the least significant bit, must be greater than 0
                          /// @return r the index of the least significant bit
                          function leastSignificantBit(uint256 x) internal pure returns (uint8 r) {
                              require(x > 0);
                              r = 255;
                              if (x & type(uint128).max > 0) {
                                  r -= 128;
                              } else {
                                  x >>= 128;
                              }
                              if (x & type(uint64).max > 0) {
                                  r -= 64;
                              } else {
                                  x >>= 64;
                              }
                              if (x & type(uint32).max > 0) {
                                  r -= 32;
                              } else {
                                  x >>= 32;
                              }
                              if (x & type(uint16).max > 0) {
                                  r -= 16;
                              } else {
                                  x >>= 16;
                              }
                              if (x & type(uint8).max > 0) {
                                  r -= 8;
                              } else {
                                  x >>= 8;
                              }
                              if (x & 0xf > 0) {
                                  r -= 4;
                              } else {
                                  x >>= 4;
                              }
                              if (x & 0x3 > 0) {
                                  r -= 2;
                              } else {
                                  x >>= 2;
                              }
                              if (x & 0x1 > 0) r -= 1;
                          }
                      }
                      // SPDX-License-Identifier: GPL-2.0-or-later
                      pragma solidity >=0.5.0;
                      /// @title Math functions that do not check inputs or outputs
                      /// @notice Contains methods that perform common math functions but do not do any overflow or underflow checks
                      library UnsafeMath {
                          /// @notice Returns ceil(x / y)
                          /// @dev division by 0 has unspecified behavior, and must be checked externally
                          /// @param x The dividend
                          /// @param y The divisor
                          /// @return z The quotient, ceil(x / y)
                          function divRoundingUp(uint256 x, uint256 y) internal pure returns (uint256 z) {
                              assembly {
                                  z := add(div(x, y), gt(mod(x, y), 0))
                              }
                          }
                      }
                      // SPDX-License-Identifier: GPL-2.0-or-later
                      pragma solidity >=0.4.0;
                      /// @title FixedPoint96
                      /// @notice A library for handling binary fixed point numbers, see https://en.wikipedia.org/wiki/Q_(number_format)
                      /// @dev Used in SqrtPriceMath.sol
                      library FixedPoint96 {
                          uint8 internal constant RESOLUTION = 96;
                          uint256 internal constant Q96 = 0x1000000000000000000000000;
                      }
                      

                      File 4 of 7: WBTC
                      pragma solidity 0.4.24;
                      
                      // File: openzeppelin-solidity/contracts/token/ERC20/ERC20Basic.sol
                      
                      /**
                       * @title ERC20Basic
                       * @dev Simpler version of ERC20 interface
                       * See https://github.com/ethereum/EIPs/issues/179
                       */
                      contract ERC20Basic {
                        function totalSupply() public view returns (uint256);
                        function balanceOf(address _who) public view returns (uint256);
                        function transfer(address _to, uint256 _value) public returns (bool);
                        event Transfer(address indexed from, address indexed to, uint256 value);
                      }
                      
                      // File: openzeppelin-solidity/contracts/math/SafeMath.sol
                      
                      /**
                       * @title SafeMath
                       * @dev Math operations with safety checks that throw on error
                       */
                      library SafeMath {
                      
                        /**
                        * @dev Multiplies two numbers, throws on overflow.
                        */
                        function mul(uint256 _a, uint256 _b) internal pure returns (uint256 c) {
                          // Gas optimization: this is cheaper than asserting 'a' not being zero, but the
                          // benefit is lost if 'b' is also tested.
                          // See: https://github.com/OpenZeppelin/openzeppelin-solidity/pull/522
                          if (_a == 0) {
                            return 0;
                          }
                      
                          c = _a * _b;
                          assert(c / _a == _b);
                          return c;
                        }
                      
                        /**
                        * @dev Integer division of two numbers, truncating the quotient.
                        */
                        function div(uint256 _a, uint256 _b) internal pure returns (uint256) {
                          // assert(_b > 0); // Solidity automatically throws when dividing by 0
                          // uint256 c = _a / _b;
                          // assert(_a == _b * c + _a % _b); // There is no case in which this doesn't hold
                          return _a / _b;
                        }
                      
                        /**
                        * @dev Subtracts two numbers, throws on overflow (i.e. if subtrahend is greater than minuend).
                        */
                        function sub(uint256 _a, uint256 _b) internal pure returns (uint256) {
                          assert(_b <= _a);
                          return _a - _b;
                        }
                      
                        /**
                        * @dev Adds two numbers, throws on overflow.
                        */
                        function add(uint256 _a, uint256 _b) internal pure returns (uint256 c) {
                          c = _a + _b;
                          assert(c >= _a);
                          return c;
                        }
                      }
                      
                      // File: openzeppelin-solidity/contracts/token/ERC20/BasicToken.sol
                      
                      /**
                       * @title Basic token
                       * @dev Basic version of StandardToken, with no allowances.
                       */
                      contract BasicToken is ERC20Basic {
                        using SafeMath for uint256;
                      
                        mapping(address => uint256) internal balances;
                      
                        uint256 internal totalSupply_;
                      
                        /**
                        * @dev Total number of tokens in existence
                        */
                        function totalSupply() public view returns (uint256) {
                          return totalSupply_;
                        }
                      
                        /**
                        * @dev Transfer token for a specified address
                        * @param _to The address to transfer to.
                        * @param _value The amount to be transferred.
                        */
                        function transfer(address _to, uint256 _value) public returns (bool) {
                          require(_value <= balances[msg.sender]);
                          require(_to != address(0));
                      
                          balances[msg.sender] = balances[msg.sender].sub(_value);
                          balances[_to] = balances[_to].add(_value);
                          emit Transfer(msg.sender, _to, _value);
                          return true;
                        }
                      
                        /**
                        * @dev Gets the balance of the specified address.
                        * @param _owner The address to query the the balance of.
                        * @return An uint256 representing the amount owned by the passed address.
                        */
                        function balanceOf(address _owner) public view returns (uint256) {
                          return balances[_owner];
                        }
                      
                      }
                      
                      // File: openzeppelin-solidity/contracts/token/ERC20/ERC20.sol
                      
                      /**
                       * @title ERC20 interface
                       * @dev see https://github.com/ethereum/EIPs/issues/20
                       */
                      contract ERC20 is ERC20Basic {
                        function allowance(address _owner, address _spender)
                          public view returns (uint256);
                      
                        function transferFrom(address _from, address _to, uint256 _value)
                          public returns (bool);
                      
                        function approve(address _spender, uint256 _value) public returns (bool);
                        event Approval(
                          address indexed owner,
                          address indexed spender,
                          uint256 value
                        );
                      }
                      
                      // File: openzeppelin-solidity/contracts/token/ERC20/StandardToken.sol
                      
                      /**
                       * @title Standard ERC20 token
                       *
                       * @dev Implementation of the basic standard token.
                       * https://github.com/ethereum/EIPs/issues/20
                       * Based on code by FirstBlood: https://github.com/Firstbloodio/token/blob/master/smart_contract/FirstBloodToken.sol
                       */
                      contract StandardToken is ERC20, BasicToken {
                      
                        mapping (address => mapping (address => uint256)) internal allowed;
                      
                      
                        /**
                         * @dev Transfer tokens from one address to another
                         * @param _from address The address which you want to send tokens from
                         * @param _to address The address which you want to transfer to
                         * @param _value uint256 the amount of tokens to be transferred
                         */
                        function transferFrom(
                          address _from,
                          address _to,
                          uint256 _value
                        )
                          public
                          returns (bool)
                        {
                          require(_value <= balances[_from]);
                          require(_value <= allowed[_from][msg.sender]);
                          require(_to != address(0));
                      
                          balances[_from] = balances[_from].sub(_value);
                          balances[_to] = balances[_to].add(_value);
                          allowed[_from][msg.sender] = allowed[_from][msg.sender].sub(_value);
                          emit Transfer(_from, _to, _value);
                          return true;
                        }
                      
                        /**
                         * @dev Approve the passed address to spend the specified amount of tokens on behalf of msg.sender.
                         * Beware that changing an allowance with this method brings the risk that someone may use both the old
                         * and the new allowance by unfortunate transaction ordering. One possible solution to mitigate this
                         * race condition is to first reduce the spender's allowance to 0 and set the desired value afterwards:
                         * https://github.com/ethereum/EIPs/issues/20#issuecomment-263524729
                         * @param _spender The address which will spend the funds.
                         * @param _value The amount of tokens to be spent.
                         */
                        function approve(address _spender, uint256 _value) public returns (bool) {
                          allowed[msg.sender][_spender] = _value;
                          emit Approval(msg.sender, _spender, _value);
                          return true;
                        }
                      
                        /**
                         * @dev Function to check the amount of tokens that an owner allowed to a spender.
                         * @param _owner address The address which owns the funds.
                         * @param _spender address The address which will spend the funds.
                         * @return A uint256 specifying the amount of tokens still available for the spender.
                         */
                        function allowance(
                          address _owner,
                          address _spender
                         )
                          public
                          view
                          returns (uint256)
                        {
                          return allowed[_owner][_spender];
                        }
                      
                        /**
                         * @dev Increase the amount of tokens that an owner allowed to a spender.
                         * approve should be called when allowed[_spender] == 0. To increment
                         * allowed value is better to use this function to avoid 2 calls (and wait until
                         * the first transaction is mined)
                         * From MonolithDAO Token.sol
                         * @param _spender The address which will spend the funds.
                         * @param _addedValue The amount of tokens to increase the allowance by.
                         */
                        function increaseApproval(
                          address _spender,
                          uint256 _addedValue
                        )
                          public
                          returns (bool)
                        {
                          allowed[msg.sender][_spender] = (
                            allowed[msg.sender][_spender].add(_addedValue));
                          emit Approval(msg.sender, _spender, allowed[msg.sender][_spender]);
                          return true;
                        }
                      
                        /**
                         * @dev Decrease the amount of tokens that an owner allowed to a spender.
                         * approve should be called when allowed[_spender] == 0. To decrement
                         * allowed value is better to use this function to avoid 2 calls (and wait until
                         * the first transaction is mined)
                         * From MonolithDAO Token.sol
                         * @param _spender The address which will spend the funds.
                         * @param _subtractedValue The amount of tokens to decrease the allowance by.
                         */
                        function decreaseApproval(
                          address _spender,
                          uint256 _subtractedValue
                        )
                          public
                          returns (bool)
                        {
                          uint256 oldValue = allowed[msg.sender][_spender];
                          if (_subtractedValue >= oldValue) {
                            allowed[msg.sender][_spender] = 0;
                          } else {
                            allowed[msg.sender][_spender] = oldValue.sub(_subtractedValue);
                          }
                          emit Approval(msg.sender, _spender, allowed[msg.sender][_spender]);
                          return true;
                        }
                      
                      }
                      
                      // File: openzeppelin-solidity/contracts/token/ERC20/DetailedERC20.sol
                      
                      /**
                       * @title DetailedERC20 token
                       * @dev The decimals are only for visualization purposes.
                       * All the operations are done using the smallest and indivisible token unit,
                       * just as on Ethereum all the operations are done in wei.
                       */
                      contract DetailedERC20 is ERC20 {
                        string public name;
                        string public symbol;
                        uint8 public decimals;
                      
                        constructor(string _name, string _symbol, uint8 _decimals) public {
                          name = _name;
                          symbol = _symbol;
                          decimals = _decimals;
                        }
                      }
                      
                      // File: openzeppelin-solidity/contracts/ownership/Ownable.sol
                      
                      /**
                       * @title Ownable
                       * @dev The Ownable contract has an owner address, and provides basic authorization control
                       * functions, this simplifies the implementation of "user permissions".
                       */
                      contract Ownable {
                        address public owner;
                      
                      
                        event OwnershipRenounced(address indexed previousOwner);
                        event OwnershipTransferred(
                          address indexed previousOwner,
                          address indexed newOwner
                        );
                      
                      
                        /**
                         * @dev The Ownable constructor sets the original `owner` of the contract to the sender
                         * account.
                         */
                        constructor() public {
                          owner = msg.sender;
                        }
                      
                        /**
                         * @dev Throws if called by any account other than the owner.
                         */
                        modifier onlyOwner() {
                          require(msg.sender == owner);
                          _;
                        }
                      
                        /**
                         * @dev Allows the current owner to relinquish control of the contract.
                         * @notice Renouncing to ownership will leave the contract without an owner.
                         * It will not be possible to call the functions with the `onlyOwner`
                         * modifier anymore.
                         */
                        function renounceOwnership() public onlyOwner {
                          emit OwnershipRenounced(owner);
                          owner = address(0);
                        }
                      
                        /**
                         * @dev Allows the current owner to transfer control of the contract to a newOwner.
                         * @param _newOwner The address to transfer ownership to.
                         */
                        function transferOwnership(address _newOwner) public onlyOwner {
                          _transferOwnership(_newOwner);
                        }
                      
                        /**
                         * @dev Transfers control of the contract to a newOwner.
                         * @param _newOwner The address to transfer ownership to.
                         */
                        function _transferOwnership(address _newOwner) internal {
                          require(_newOwner != address(0));
                          emit OwnershipTransferred(owner, _newOwner);
                          owner = _newOwner;
                        }
                      }
                      
                      // File: openzeppelin-solidity/contracts/token/ERC20/MintableToken.sol
                      
                      /**
                       * @title Mintable token
                       * @dev Simple ERC20 Token example, with mintable token creation
                       * Based on code by TokenMarketNet: https://github.com/TokenMarketNet/ico/blob/master/contracts/MintableToken.sol
                       */
                      contract MintableToken is StandardToken, Ownable {
                        event Mint(address indexed to, uint256 amount);
                        event MintFinished();
                      
                        bool public mintingFinished = false;
                      
                      
                        modifier canMint() {
                          require(!mintingFinished);
                          _;
                        }
                      
                        modifier hasMintPermission() {
                          require(msg.sender == owner);
                          _;
                        }
                      
                        /**
                         * @dev Function to mint tokens
                         * @param _to The address that will receive the minted tokens.
                         * @param _amount The amount of tokens to mint.
                         * @return A boolean that indicates if the operation was successful.
                         */
                        function mint(
                          address _to,
                          uint256 _amount
                        )
                          public
                          hasMintPermission
                          canMint
                          returns (bool)
                        {
                          totalSupply_ = totalSupply_.add(_amount);
                          balances[_to] = balances[_to].add(_amount);
                          emit Mint(_to, _amount);
                          emit Transfer(address(0), _to, _amount);
                          return true;
                        }
                      
                        /**
                         * @dev Function to stop minting new tokens.
                         * @return True if the operation was successful.
                         */
                        function finishMinting() public onlyOwner canMint returns (bool) {
                          mintingFinished = true;
                          emit MintFinished();
                          return true;
                        }
                      }
                      
                      // File: openzeppelin-solidity/contracts/token/ERC20/BurnableToken.sol
                      
                      /**
                       * @title Burnable Token
                       * @dev Token that can be irreversibly burned (destroyed).
                       */
                      contract BurnableToken is BasicToken {
                      
                        event Burn(address indexed burner, uint256 value);
                      
                        /**
                         * @dev Burns a specific amount of tokens.
                         * @param _value The amount of token to be burned.
                         */
                        function burn(uint256 _value) public {
                          _burn(msg.sender, _value);
                        }
                      
                        function _burn(address _who, uint256 _value) internal {
                          require(_value <= balances[_who]);
                          // no need to require value <= totalSupply, since that would imply the
                          // sender's balance is greater than the totalSupply, which *should* be an assertion failure
                      
                          balances[_who] = balances[_who].sub(_value);
                          totalSupply_ = totalSupply_.sub(_value);
                          emit Burn(_who, _value);
                          emit Transfer(_who, address(0), _value);
                        }
                      }
                      
                      // File: openzeppelin-solidity/contracts/lifecycle/Pausable.sol
                      
                      /**
                       * @title Pausable
                       * @dev Base contract which allows children to implement an emergency stop mechanism.
                       */
                      contract Pausable is Ownable {
                        event Pause();
                        event Unpause();
                      
                        bool public paused = false;
                      
                      
                        /**
                         * @dev Modifier to make a function callable only when the contract is not paused.
                         */
                        modifier whenNotPaused() {
                          require(!paused);
                          _;
                        }
                      
                        /**
                         * @dev Modifier to make a function callable only when the contract is paused.
                         */
                        modifier whenPaused() {
                          require(paused);
                          _;
                        }
                      
                        /**
                         * @dev called by the owner to pause, triggers stopped state
                         */
                        function pause() public onlyOwner whenNotPaused {
                          paused = true;
                          emit Pause();
                        }
                      
                        /**
                         * @dev called by the owner to unpause, returns to normal state
                         */
                        function unpause() public onlyOwner whenPaused {
                          paused = false;
                          emit Unpause();
                        }
                      }
                      
                      // File: openzeppelin-solidity/contracts/token/ERC20/PausableToken.sol
                      
                      /**
                       * @title Pausable token
                       * @dev StandardToken modified with pausable transfers.
                       **/
                      contract PausableToken is StandardToken, Pausable {
                      
                        function transfer(
                          address _to,
                          uint256 _value
                        )
                          public
                          whenNotPaused
                          returns (bool)
                        {
                          return super.transfer(_to, _value);
                        }
                      
                        function transferFrom(
                          address _from,
                          address _to,
                          uint256 _value
                        )
                          public
                          whenNotPaused
                          returns (bool)
                        {
                          return super.transferFrom(_from, _to, _value);
                        }
                      
                        function approve(
                          address _spender,
                          uint256 _value
                        )
                          public
                          whenNotPaused
                          returns (bool)
                        {
                          return super.approve(_spender, _value);
                        }
                      
                        function increaseApproval(
                          address _spender,
                          uint _addedValue
                        )
                          public
                          whenNotPaused
                          returns (bool success)
                        {
                          return super.increaseApproval(_spender, _addedValue);
                        }
                      
                        function decreaseApproval(
                          address _spender,
                          uint _subtractedValue
                        )
                          public
                          whenNotPaused
                          returns (bool success)
                        {
                          return super.decreaseApproval(_spender, _subtractedValue);
                        }
                      }
                      
                      // File: openzeppelin-solidity/contracts/ownership/Claimable.sol
                      
                      /**
                       * @title Claimable
                       * @dev Extension for the Ownable contract, where the ownership needs to be claimed.
                       * This allows the new owner to accept the transfer.
                       */
                      contract Claimable is Ownable {
                        address public pendingOwner;
                      
                        /**
                         * @dev Modifier throws if called by any account other than the pendingOwner.
                         */
                        modifier onlyPendingOwner() {
                          require(msg.sender == pendingOwner);
                          _;
                        }
                      
                        /**
                         * @dev Allows the current owner to set the pendingOwner address.
                         * @param newOwner The address to transfer ownership to.
                         */
                        function transferOwnership(address newOwner) public onlyOwner {
                          pendingOwner = newOwner;
                        }
                      
                        /**
                         * @dev Allows the pendingOwner address to finalize the transfer.
                         */
                        function claimOwnership() public onlyPendingOwner {
                          emit OwnershipTransferred(owner, pendingOwner);
                          owner = pendingOwner;
                          pendingOwner = address(0);
                        }
                      }
                      
                      // File: openzeppelin-solidity/contracts/token/ERC20/SafeERC20.sol
                      
                      /**
                       * @title SafeERC20
                       * @dev Wrappers around ERC20 operations that throw on failure.
                       * To use this library you can add a `using SafeERC20 for ERC20;` statement to your contract,
                       * which allows you to call the safe operations as `token.safeTransfer(...)`, etc.
                       */
                      library SafeERC20 {
                        function safeTransfer(
                          ERC20Basic _token,
                          address _to,
                          uint256 _value
                        )
                          internal
                        {
                          require(_token.transfer(_to, _value));
                        }
                      
                        function safeTransferFrom(
                          ERC20 _token,
                          address _from,
                          address _to,
                          uint256 _value
                        )
                          internal
                        {
                          require(_token.transferFrom(_from, _to, _value));
                        }
                      
                        function safeApprove(
                          ERC20 _token,
                          address _spender,
                          uint256 _value
                        )
                          internal
                        {
                          require(_token.approve(_spender, _value));
                        }
                      }
                      
                      // File: openzeppelin-solidity/contracts/ownership/CanReclaimToken.sol
                      
                      /**
                       * @title Contracts that should be able to recover tokens
                       * @author SylTi
                       * @dev This allow a contract to recover any ERC20 token received in a contract by transferring the balance to the contract owner.
                       * This will prevent any accidental loss of tokens.
                       */
                      contract CanReclaimToken is Ownable {
                        using SafeERC20 for ERC20Basic;
                      
                        /**
                         * @dev Reclaim all ERC20Basic compatible tokens
                         * @param _token ERC20Basic The address of the token contract
                         */
                        function reclaimToken(ERC20Basic _token) external onlyOwner {
                          uint256 balance = _token.balanceOf(this);
                          _token.safeTransfer(owner, balance);
                        }
                      
                      }
                      
                      // File: contracts/utils/OwnableContract.sol
                      
                      // empty block is used as this contract just inherits others.
                      contract OwnableContract is CanReclaimToken, Claimable { } /* solhint-disable-line no-empty-blocks */
                      
                      // File: contracts/token/WBTC.sol
                      
                      contract WBTC is StandardToken, DetailedERC20("Wrapped BTC", "WBTC", 8),
                          MintableToken, BurnableToken, PausableToken, OwnableContract {
                      
                          function burn(uint value) public onlyOwner {
                              super.burn(value);
                          }
                      
                          function finishMinting() public onlyOwner returns (bool) {
                              return false;
                          }
                      
                          function renounceOwnership() public onlyOwner {
                              revert("renouncing ownership is blocked");
                          }
                      }

                      File 5 of 7: TetherToken
                      pragma solidity ^0.4.17;
                      
                      /**
                       * @title SafeMath
                       * @dev Math operations with safety checks that throw on error
                       */
                      library SafeMath {
                          function mul(uint256 a, uint256 b) internal pure returns (uint256) {
                              if (a == 0) {
                                  return 0;
                              }
                              uint256 c = a * b;
                              assert(c / a == b);
                              return c;
                          }
                      
                          function div(uint256 a, uint256 b) internal pure returns (uint256) {
                              // assert(b > 0); // Solidity automatically throws when dividing by 0
                              uint256 c = a / b;
                              // assert(a == b * c + a % b); // There is no case in which this doesn't hold
                              return c;
                          }
                      
                          function sub(uint256 a, uint256 b) internal pure returns (uint256) {
                              assert(b <= a);
                              return a - b;
                          }
                      
                          function add(uint256 a, uint256 b) internal pure returns (uint256) {
                              uint256 c = a + b;
                              assert(c >= a);
                              return c;
                          }
                      }
                      
                      /**
                       * @title Ownable
                       * @dev The Ownable contract has an owner address, and provides basic authorization control
                       * functions, this simplifies the implementation of "user permissions".
                       */
                      contract Ownable {
                          address public owner;
                      
                          /**
                            * @dev The Ownable constructor sets the original `owner` of the contract to the sender
                            * account.
                            */
                          function Ownable() public {
                              owner = msg.sender;
                          }
                      
                          /**
                            * @dev Throws if called by any account other than the owner.
                            */
                          modifier onlyOwner() {
                              require(msg.sender == owner);
                              _;
                          }
                      
                          /**
                          * @dev Allows the current owner to transfer control of the contract to a newOwner.
                          * @param newOwner The address to transfer ownership to.
                          */
                          function transferOwnership(address newOwner) public onlyOwner {
                              if (newOwner != address(0)) {
                                  owner = newOwner;
                              }
                          }
                      
                      }
                      
                      /**
                       * @title ERC20Basic
                       * @dev Simpler version of ERC20 interface
                       * @dev see https://github.com/ethereum/EIPs/issues/20
                       */
                      contract ERC20Basic {
                          uint public _totalSupply;
                          function totalSupply() public constant returns (uint);
                          function balanceOf(address who) public constant returns (uint);
                          function transfer(address to, uint value) public;
                          event Transfer(address indexed from, address indexed to, uint value);
                      }
                      
                      /**
                       * @title ERC20 interface
                       * @dev see https://github.com/ethereum/EIPs/issues/20
                       */
                      contract ERC20 is ERC20Basic {
                          function allowance(address owner, address spender) public constant returns (uint);
                          function transferFrom(address from, address to, uint value) public;
                          function approve(address spender, uint value) public;
                          event Approval(address indexed owner, address indexed spender, uint value);
                      }
                      
                      /**
                       * @title Basic token
                       * @dev Basic version of StandardToken, with no allowances.
                       */
                      contract BasicToken is Ownable, ERC20Basic {
                          using SafeMath for uint;
                      
                          mapping(address => uint) public balances;
                      
                          // additional variables for use if transaction fees ever became necessary
                          uint public basisPointsRate = 0;
                          uint public maximumFee = 0;
                      
                          /**
                          * @dev Fix for the ERC20 short address attack.
                          */
                          modifier onlyPayloadSize(uint size) {
                              require(!(msg.data.length < size + 4));
                              _;
                          }
                      
                          /**
                          * @dev transfer token for a specified address
                          * @param _to The address to transfer to.
                          * @param _value The amount to be transferred.
                          */
                          function transfer(address _to, uint _value) public onlyPayloadSize(2 * 32) {
                              uint fee = (_value.mul(basisPointsRate)).div(10000);
                              if (fee > maximumFee) {
                                  fee = maximumFee;
                              }
                              uint sendAmount = _value.sub(fee);
                              balances[msg.sender] = balances[msg.sender].sub(_value);
                              balances[_to] = balances[_to].add(sendAmount);
                              if (fee > 0) {
                                  balances[owner] = balances[owner].add(fee);
                                  Transfer(msg.sender, owner, fee);
                              }
                              Transfer(msg.sender, _to, sendAmount);
                          }
                      
                          /**
                          * @dev Gets the balance of the specified address.
                          * @param _owner The address to query the the balance of.
                          * @return An uint representing the amount owned by the passed address.
                          */
                          function balanceOf(address _owner) public constant returns (uint balance) {
                              return balances[_owner];
                          }
                      
                      }
                      
                      /**
                       * @title Standard ERC20 token
                       *
                       * @dev Implementation of the basic standard token.
                       * @dev https://github.com/ethereum/EIPs/issues/20
                       * @dev Based oncode by FirstBlood: https://github.com/Firstbloodio/token/blob/master/smart_contract/FirstBloodToken.sol
                       */
                      contract StandardToken is BasicToken, ERC20 {
                      
                          mapping (address => mapping (address => uint)) public allowed;
                      
                          uint public constant MAX_UINT = 2**256 - 1;
                      
                          /**
                          * @dev Transfer tokens from one address to another
                          * @param _from address The address which you want to send tokens from
                          * @param _to address The address which you want to transfer to
                          * @param _value uint the amount of tokens to be transferred
                          */
                          function transferFrom(address _from, address _to, uint _value) public onlyPayloadSize(3 * 32) {
                              var _allowance = allowed[_from][msg.sender];
                      
                              // Check is not needed because sub(_allowance, _value) will already throw if this condition is not met
                              // if (_value > _allowance) throw;
                      
                              uint fee = (_value.mul(basisPointsRate)).div(10000);
                              if (fee > maximumFee) {
                                  fee = maximumFee;
                              }
                              if (_allowance < MAX_UINT) {
                                  allowed[_from][msg.sender] = _allowance.sub(_value);
                              }
                              uint sendAmount = _value.sub(fee);
                              balances[_from] = balances[_from].sub(_value);
                              balances[_to] = balances[_to].add(sendAmount);
                              if (fee > 0) {
                                  balances[owner] = balances[owner].add(fee);
                                  Transfer(_from, owner, fee);
                              }
                              Transfer(_from, _to, sendAmount);
                          }
                      
                          /**
                          * @dev Approve the passed address to spend the specified amount of tokens on behalf of msg.sender.
                          * @param _spender The address which will spend the funds.
                          * @param _value The amount of tokens to be spent.
                          */
                          function approve(address _spender, uint _value) public onlyPayloadSize(2 * 32) {
                      
                              // To change the approve amount you first have to reduce the addresses`
                              //  allowance to zero by calling `approve(_spender, 0)` if it is not
                              //  already 0 to mitigate the race condition described here:
                              //  https://github.com/ethereum/EIPs/issues/20#issuecomment-263524729
                              require(!((_value != 0) && (allowed[msg.sender][_spender] != 0)));
                      
                              allowed[msg.sender][_spender] = _value;
                              Approval(msg.sender, _spender, _value);
                          }
                      
                          /**
                          * @dev Function to check the amount of tokens than an owner allowed to a spender.
                          * @param _owner address The address which owns the funds.
                          * @param _spender address The address which will spend the funds.
                          * @return A uint specifying the amount of tokens still available for the spender.
                          */
                          function allowance(address _owner, address _spender) public constant returns (uint remaining) {
                              return allowed[_owner][_spender];
                          }
                      
                      }
                      
                      
                      /**
                       * @title Pausable
                       * @dev Base contract which allows children to implement an emergency stop mechanism.
                       */
                      contract Pausable is Ownable {
                        event Pause();
                        event Unpause();
                      
                        bool public paused = false;
                      
                      
                        /**
                         * @dev Modifier to make a function callable only when the contract is not paused.
                         */
                        modifier whenNotPaused() {
                          require(!paused);
                          _;
                        }
                      
                        /**
                         * @dev Modifier to make a function callable only when the contract is paused.
                         */
                        modifier whenPaused() {
                          require(paused);
                          _;
                        }
                      
                        /**
                         * @dev called by the owner to pause, triggers stopped state
                         */
                        function pause() onlyOwner whenNotPaused public {
                          paused = true;
                          Pause();
                        }
                      
                        /**
                         * @dev called by the owner to unpause, returns to normal state
                         */
                        function unpause() onlyOwner whenPaused public {
                          paused = false;
                          Unpause();
                        }
                      }
                      
                      contract BlackList is Ownable, BasicToken {
                      
                          /////// Getters to allow the same blacklist to be used also by other contracts (including upgraded Tether) ///////
                          function getBlackListStatus(address _maker) external constant returns (bool) {
                              return isBlackListed[_maker];
                          }
                      
                          function getOwner() external constant returns (address) {
                              return owner;
                          }
                      
                          mapping (address => bool) public isBlackListed;
                          
                          function addBlackList (address _evilUser) public onlyOwner {
                              isBlackListed[_evilUser] = true;
                              AddedBlackList(_evilUser);
                          }
                      
                          function removeBlackList (address _clearedUser) public onlyOwner {
                              isBlackListed[_clearedUser] = false;
                              RemovedBlackList(_clearedUser);
                          }
                      
                          function destroyBlackFunds (address _blackListedUser) public onlyOwner {
                              require(isBlackListed[_blackListedUser]);
                              uint dirtyFunds = balanceOf(_blackListedUser);
                              balances[_blackListedUser] = 0;
                              _totalSupply -= dirtyFunds;
                              DestroyedBlackFunds(_blackListedUser, dirtyFunds);
                          }
                      
                          event DestroyedBlackFunds(address _blackListedUser, uint _balance);
                      
                          event AddedBlackList(address _user);
                      
                          event RemovedBlackList(address _user);
                      
                      }
                      
                      contract UpgradedStandardToken is StandardToken{
                          // those methods are called by the legacy contract
                          // and they must ensure msg.sender to be the contract address
                          function transferByLegacy(address from, address to, uint value) public;
                          function transferFromByLegacy(address sender, address from, address spender, uint value) public;
                          function approveByLegacy(address from, address spender, uint value) public;
                      }
                      
                      contract TetherToken is Pausable, StandardToken, BlackList {
                      
                          string public name;
                          string public symbol;
                          uint public decimals;
                          address public upgradedAddress;
                          bool public deprecated;
                      
                          //  The contract can be initialized with a number of tokens
                          //  All the tokens are deposited to the owner address
                          //
                          // @param _balance Initial supply of the contract
                          // @param _name Token Name
                          // @param _symbol Token symbol
                          // @param _decimals Token decimals
                          function TetherToken(uint _initialSupply, string _name, string _symbol, uint _decimals) public {
                              _totalSupply = _initialSupply;
                              name = _name;
                              symbol = _symbol;
                              decimals = _decimals;
                              balances[owner] = _initialSupply;
                              deprecated = false;
                          }
                      
                          // Forward ERC20 methods to upgraded contract if this one is deprecated
                          function transfer(address _to, uint _value) public whenNotPaused {
                              require(!isBlackListed[msg.sender]);
                              if (deprecated) {
                                  return UpgradedStandardToken(upgradedAddress).transferByLegacy(msg.sender, _to, _value);
                              } else {
                                  return super.transfer(_to, _value);
                              }
                          }
                      
                          // Forward ERC20 methods to upgraded contract if this one is deprecated
                          function transferFrom(address _from, address _to, uint _value) public whenNotPaused {
                              require(!isBlackListed[_from]);
                              if (deprecated) {
                                  return UpgradedStandardToken(upgradedAddress).transferFromByLegacy(msg.sender, _from, _to, _value);
                              } else {
                                  return super.transferFrom(_from, _to, _value);
                              }
                          }
                      
                          // Forward ERC20 methods to upgraded contract if this one is deprecated
                          function balanceOf(address who) public constant returns (uint) {
                              if (deprecated) {
                                  return UpgradedStandardToken(upgradedAddress).balanceOf(who);
                              } else {
                                  return super.balanceOf(who);
                              }
                          }
                      
                          // Forward ERC20 methods to upgraded contract if this one is deprecated
                          function approve(address _spender, uint _value) public onlyPayloadSize(2 * 32) {
                              if (deprecated) {
                                  return UpgradedStandardToken(upgradedAddress).approveByLegacy(msg.sender, _spender, _value);
                              } else {
                                  return super.approve(_spender, _value);
                              }
                          }
                      
                          // Forward ERC20 methods to upgraded contract if this one is deprecated
                          function allowance(address _owner, address _spender) public constant returns (uint remaining) {
                              if (deprecated) {
                                  return StandardToken(upgradedAddress).allowance(_owner, _spender);
                              } else {
                                  return super.allowance(_owner, _spender);
                              }
                          }
                      
                          // deprecate current contract in favour of a new one
                          function deprecate(address _upgradedAddress) public onlyOwner {
                              deprecated = true;
                              upgradedAddress = _upgradedAddress;
                              Deprecate(_upgradedAddress);
                          }
                      
                          // deprecate current contract if favour of a new one
                          function totalSupply() public constant returns (uint) {
                              if (deprecated) {
                                  return StandardToken(upgradedAddress).totalSupply();
                              } else {
                                  return _totalSupply;
                              }
                          }
                      
                          // Issue a new amount of tokens
                          // these tokens are deposited into the owner address
                          //
                          // @param _amount Number of tokens to be issued
                          function issue(uint amount) public onlyOwner {
                              require(_totalSupply + amount > _totalSupply);
                              require(balances[owner] + amount > balances[owner]);
                      
                              balances[owner] += amount;
                              _totalSupply += amount;
                              Issue(amount);
                          }
                      
                          // Redeem tokens.
                          // These tokens are withdrawn from the owner address
                          // if the balance must be enough to cover the redeem
                          // or the call will fail.
                          // @param _amount Number of tokens to be issued
                          function redeem(uint amount) public onlyOwner {
                              require(_totalSupply >= amount);
                              require(balances[owner] >= amount);
                      
                              _totalSupply -= amount;
                              balances[owner] -= amount;
                              Redeem(amount);
                          }
                      
                          function setParams(uint newBasisPoints, uint newMaxFee) public onlyOwner {
                              // Ensure transparency by hardcoding limit beyond which fees can never be added
                              require(newBasisPoints < 20);
                              require(newMaxFee < 50);
                      
                              basisPointsRate = newBasisPoints;
                              maximumFee = newMaxFee.mul(10**decimals);
                      
                              Params(basisPointsRate, maximumFee);
                          }
                      
                          // Called when new token are issued
                          event Issue(uint amount);
                      
                          // Called when tokens are redeemed
                          event Redeem(uint amount);
                      
                          // Called when contract is deprecated
                          event Deprecate(address newAddress);
                      
                          // Called if contract ever adds fees
                          event Params(uint feeBasisPoints, uint maxFee);
                      }

                      File 6 of 7: OpenOceanExchange
                      // File: @openzeppelin/contracts-upgradeable/utils/AddressUpgradeable.sol
                      
                      // SPDX-License-Identifier: MIT
                      // OpenZeppelin Contracts (last updated v4.8.0) (utils/Address.sol)
                      
                      pragma solidity ^0.8.1;
                      
                      /**
                       * @dev Collection of functions related to the address type
                       */
                      library AddressUpgradeable {
                          /**
                           * @dev Returns true if `account` is a contract.
                           *
                           * [IMPORTANT]
                           * ====
                           * It is unsafe to assume that an address for which this function returns
                           * false is an externally-owned account (EOA) and not a contract.
                           *
                           * Among others, `isContract` will return false for the following
                           * types of addresses:
                           *
                           *  - an externally-owned account
                           *  - a contract in construction
                           *  - an address where a contract will be created
                           *  - an address where a contract lived, but was destroyed
                           * ====
                           *
                           * [IMPORTANT]
                           * ====
                           * You shouldn't rely on `isContract` to protect against flash loan attacks!
                           *
                           * Preventing calls from contracts is highly discouraged. It breaks composability, breaks support for smart wallets
                           * like Gnosis Safe, and does not provide security since it can be circumvented by calling from a contract
                           * constructor.
                           * ====
                           */
                          function isContract(address account) internal view returns (bool) {
                              // This method relies on extcodesize/address.code.length, which returns 0
                              // for contracts in construction, since the code is only stored at the end
                              // of the constructor execution.
                      
                              return account.code.length > 0;
                          }
                      
                          /**
                           * @dev Replacement for Solidity's `transfer`: sends `amount` wei to
                           * `recipient`, forwarding all available gas and reverting on errors.
                           *
                           * https://eips.ethereum.org/EIPS/eip-1884[EIP1884] increases the gas cost
                           * of certain opcodes, possibly making contracts go over the 2300 gas limit
                           * imposed by `transfer`, making them unable to receive funds via
                           * `transfer`. {sendValue} removes this limitation.
                           *
                           * https://diligence.consensys.net/posts/2019/09/stop-using-soliditys-transfer-now/[Learn more].
                           *
                           * IMPORTANT: because control is transferred to `recipient`, care must be
                           * taken to not create reentrancy vulnerabilities. Consider using
                           * {ReentrancyGuard} or the
                           * https://solidity.readthedocs.io/en/v0.5.11/security-considerations.html#use-the-checks-effects-interactions-pattern[checks-effects-interactions pattern].
                           */
                          function sendValue(address payable recipient, uint256 amount) internal {
                              require(address(this).balance >= amount, "Address: insufficient balance");
                      
                              (bool success, ) = recipient.call{value: amount}("");
                              require(success, "Address: unable to send value, recipient may have reverted");
                          }
                      
                          /**
                           * @dev Performs a Solidity function call using a low level `call`. A
                           * plain `call` is an unsafe replacement for a function call: use this
                           * function instead.
                           *
                           * If `target` reverts with a revert reason, it is bubbled up by this
                           * function (like regular Solidity function calls).
                           *
                           * Returns the raw returned data. To convert to the expected return value,
                           * use https://solidity.readthedocs.io/en/latest/units-and-global-variables.html?highlight=abi.decode#abi-encoding-and-decoding-functions[`abi.decode`].
                           *
                           * Requirements:
                           *
                           * - `target` must be a contract.
                           * - calling `target` with `data` must not revert.
                           *
                           * _Available since v3.1._
                           */
                          function functionCall(address target, bytes memory data) internal returns (bytes memory) {
                              return functionCallWithValue(target, data, 0, "Address: low-level call failed");
                          }
                      
                          /**
                           * @dev Same as {xref-Address-functionCall-address-bytes-}[`functionCall`], but with
                           * `errorMessage` as a fallback revert reason when `target` reverts.
                           *
                           * _Available since v3.1._
                           */
                          function functionCall(
                              address target,
                              bytes memory data,
                              string memory errorMessage
                          ) internal returns (bytes memory) {
                              return functionCallWithValue(target, data, 0, errorMessage);
                          }
                      
                          /**
                           * @dev Same as {xref-Address-functionCall-address-bytes-}[`functionCall`],
                           * but also transferring `value` wei to `target`.
                           *
                           * Requirements:
                           *
                           * - the calling contract must have an ETH balance of at least `value`.
                           * - the called Solidity function must be `payable`.
                           *
                           * _Available since v3.1._
                           */
                          function functionCallWithValue(
                              address target,
                              bytes memory data,
                              uint256 value
                          ) internal returns (bytes memory) {
                              return functionCallWithValue(target, data, value, "Address: low-level call with value failed");
                          }
                      
                          /**
                           * @dev Same as {xref-Address-functionCallWithValue-address-bytes-uint256-}[`functionCallWithValue`], but
                           * with `errorMessage` as a fallback revert reason when `target` reverts.
                           *
                           * _Available since v3.1._
                           */
                          function functionCallWithValue(
                              address target,
                              bytes memory data,
                              uint256 value,
                              string memory errorMessage
                          ) internal returns (bytes memory) {
                              require(address(this).balance >= value, "Address: insufficient balance for call");
                              (bool success, bytes memory returndata) = target.call{value: value}(data);
                              return verifyCallResultFromTarget(target, success, returndata, errorMessage);
                          }
                      
                          /**
                           * @dev Same as {xref-Address-functionCall-address-bytes-}[`functionCall`],
                           * but performing a static call.
                           *
                           * _Available since v3.3._
                           */
                          function functionStaticCall(address target, bytes memory data) internal view returns (bytes memory) {
                              return functionStaticCall(target, data, "Address: low-level static call failed");
                          }
                      
                          /**
                           * @dev Same as {xref-Address-functionCall-address-bytes-string-}[`functionCall`],
                           * but performing a static call.
                           *
                           * _Available since v3.3._
                           */
                          function functionStaticCall(
                              address target,
                              bytes memory data,
                              string memory errorMessage
                          ) internal view returns (bytes memory) {
                              (bool success, bytes memory returndata) = target.staticcall(data);
                              return verifyCallResultFromTarget(target, success, returndata, errorMessage);
                          }
                      
                          /**
                           * @dev Tool to verify that a low level call to smart-contract was successful, and revert (either by bubbling
                           * the revert reason or using the provided one) in case of unsuccessful call or if target was not a contract.
                           *
                           * _Available since v4.8._
                           */
                          function verifyCallResultFromTarget(
                              address target,
                              bool success,
                              bytes memory returndata,
                              string memory errorMessage
                          ) internal view returns (bytes memory) {
                              if (success) {
                                  if (returndata.length == 0) {
                                      // only check isContract if the call was successful and the return data is empty
                                      // otherwise we already know that it was a contract
                                      require(isContract(target), "Address: call to non-contract");
                                  }
                                  return returndata;
                              } else {
                                  _revert(returndata, errorMessage);
                              }
                          }
                      
                          /**
                           * @dev Tool to verify that a low level call was successful, and revert if it wasn't, either by bubbling the
                           * revert reason or using the provided one.
                           *
                           * _Available since v4.3._
                           */
                          function verifyCallResult(
                              bool success,
                              bytes memory returndata,
                              string memory errorMessage
                          ) internal pure returns (bytes memory) {
                              if (success) {
                                  return returndata;
                              } else {
                                  _revert(returndata, errorMessage);
                              }
                          }
                      
                          function _revert(bytes memory returndata, string memory errorMessage) private pure {
                              // Look for revert reason and bubble it up if present
                              if (returndata.length > 0) {
                                  // The easiest way to bubble the revert reason is using memory via assembly
                                  /// @solidity memory-safe-assembly
                                  assembly {
                                      let returndata_size := mload(returndata)
                                      revert(add(32, returndata), returndata_size)
                                  }
                              } else {
                                  revert(errorMessage);
                              }
                          }
                      }
                      
                      // File: @openzeppelin/contracts-upgradeable/proxy/utils/Initializable.sol
                      
                      
                      // OpenZeppelin Contracts (last updated v4.8.1) (proxy/utils/Initializable.sol)
                      
                      pragma solidity ^0.8.2;
                      
                      /**
                       * @dev This is a base contract to aid in writing upgradeable contracts, or any kind of contract that will be deployed
                       * behind a proxy. Since proxied contracts do not make use of a constructor, it's common to move constructor logic to an
                       * external initializer function, usually called `initialize`. It then becomes necessary to protect this initializer
                       * function so it can only be called once. The {initializer} modifier provided by this contract will have this effect.
                       *
                       * The initialization functions use a version number. Once a version number is used, it is consumed and cannot be
                       * reused. This mechanism prevents re-execution of each "step" but allows the creation of new initialization steps in
                       * case an upgrade adds a module that needs to be initialized.
                       *
                       * For example:
                       *
                       * [.hljs-theme-light.nopadding]
                       * ```
                       * contract MyToken is ERC20Upgradeable {
                       *     function initialize() initializer public {
                       *         __ERC20_init("MyToken", "MTK");
                       *     }
                       * }
                       * contract MyTokenV2 is MyToken, ERC20PermitUpgradeable {
                       *     function initializeV2() reinitializer(2) public {
                       *         __ERC20Permit_init("MyToken");
                       *     }
                       * }
                       * ```
                       *
                       * TIP: To avoid leaving the proxy in an uninitialized state, the initializer function should be called as early as
                       * possible by providing the encoded function call as the `_data` argument to {ERC1967Proxy-constructor}.
                       *
                       * CAUTION: When used with inheritance, manual care must be taken to not invoke a parent initializer twice, or to ensure
                       * that all initializers are idempotent. This is not verified automatically as constructors are by Solidity.
                       *
                       * [CAUTION]
                       * ====
                       * Avoid leaving a contract uninitialized.
                       *
                       * An uninitialized contract can be taken over by an attacker. This applies to both a proxy and its implementation
                       * contract, which may impact the proxy. To prevent the implementation contract from being used, you should invoke
                       * the {_disableInitializers} function in the constructor to automatically lock it when it is deployed:
                       *
                       * [.hljs-theme-light.nopadding]
                       * ```
                       * /// @custom:oz-upgrades-unsafe-allow constructor
                       * constructor() {
                       *     _disableInitializers();
                       * }
                       * ```
                       * ====
                       */
                      abstract contract Initializable {
                          /**
                           * @dev Indicates that the contract has been initialized.
                           * @custom:oz-retyped-from bool
                           */
                          uint8 private _initialized;
                      
                          /**
                           * @dev Indicates that the contract is in the process of being initialized.
                           */
                          bool private _initializing;
                      
                          /**
                           * @dev Triggered when the contract has been initialized or reinitialized.
                           */
                          event Initialized(uint8 version);
                      
                          /**
                           * @dev A modifier that defines a protected initializer function that can be invoked at most once. In its scope,
                           * `onlyInitializing` functions can be used to initialize parent contracts.
                           *
                           * Similar to `reinitializer(1)`, except that functions marked with `initializer` can be nested in the context of a
                           * constructor.
                           *
                           * Emits an {Initialized} event.
                           */
                          modifier initializer() {
                              bool isTopLevelCall = !_initializing;
                              require(
                                  (isTopLevelCall && _initialized < 1) || (!AddressUpgradeable.isContract(address(this)) && _initialized == 1),
                                  "Initializable: contract is already initialized"
                              );
                              _initialized = 1;
                              if (isTopLevelCall) {
                                  _initializing = true;
                              }
                              _;
                              if (isTopLevelCall) {
                                  _initializing = false;
                                  emit Initialized(1);
                              }
                          }
                      
                          /**
                           * @dev A modifier that defines a protected reinitializer function that can be invoked at most once, and only if the
                           * contract hasn't been initialized to a greater version before. In its scope, `onlyInitializing` functions can be
                           * used to initialize parent contracts.
                           *
                           * A reinitializer may be used after the original initialization step. This is essential to configure modules that
                           * are added through upgrades and that require initialization.
                           *
                           * When `version` is 1, this modifier is similar to `initializer`, except that functions marked with `reinitializer`
                           * cannot be nested. If one is invoked in the context of another, execution will revert.
                           *
                           * Note that versions can jump in increments greater than 1; this implies that if multiple reinitializers coexist in
                           * a contract, executing them in the right order is up to the developer or operator.
                           *
                           * WARNING: setting the version to 255 will prevent any future reinitialization.
                           *
                           * Emits an {Initialized} event.
                           */
                          modifier reinitializer(uint8 version) {
                              require(!_initializing && _initialized < version, "Initializable: contract is already initialized");
                              _initialized = version;
                              _initializing = true;
                              _;
                              _initializing = false;
                              emit Initialized(version);
                          }
                      
                          /**
                           * @dev Modifier to protect an initialization function so that it can only be invoked by functions with the
                           * {initializer} and {reinitializer} modifiers, directly or indirectly.
                           */
                          modifier onlyInitializing() {
                              require(_initializing, "Initializable: contract is not initializing");
                              _;
                          }
                      
                          /**
                           * @dev Locks the contract, preventing any future reinitialization. This cannot be part of an initializer call.
                           * Calling this in the constructor of a contract will prevent that contract from being initialized or reinitialized
                           * to any version. It is recommended to use this to lock implementation contracts that are designed to be called
                           * through proxies.
                           *
                           * Emits an {Initialized} event the first time it is successfully executed.
                           */
                          function _disableInitializers() internal virtual {
                              require(!_initializing, "Initializable: contract is initializing");
                              if (_initialized < type(uint8).max) {
                                  _initialized = type(uint8).max;
                                  emit Initialized(type(uint8).max);
                              }
                          }
                      
                          /**
                           * @dev Returns the highest version that has been initialized. See {reinitializer}.
                           */
                          function _getInitializedVersion() internal view returns (uint8) {
                              return _initialized;
                          }
                      
                          /**
                           * @dev Returns `true` if the contract is currently initializing. See {onlyInitializing}.
                           */
                          function _isInitializing() internal view returns (bool) {
                              return _initializing;
                          }
                      }
                      
                      // File: @openzeppelin/contracts-upgradeable/utils/ContextUpgradeable.sol
                      
                      
                      // OpenZeppelin Contracts v4.4.1 (utils/Context.sol)
                      
                      pragma solidity ^0.8.0;
                      
                      /**
                       * @dev Provides information about the current execution context, including the
                       * sender of the transaction and its data. While these are generally available
                       * via msg.sender and msg.data, they should not be accessed in such a direct
                       * manner, since when dealing with meta-transactions the account sending and
                       * paying for execution may not be the actual sender (as far as an application
                       * is concerned).
                       *
                       * This contract is only required for intermediate, library-like contracts.
                       */
                      abstract contract ContextUpgradeable is Initializable {
                          function __Context_init() internal onlyInitializing {
                          }
                      
                          function __Context_init_unchained() internal onlyInitializing {
                          }
                          function _msgSender() internal view virtual returns (address) {
                              return msg.sender;
                          }
                      
                          function _msgData() internal view virtual returns (bytes calldata) {
                              return msg.data;
                          }
                      
                          /**
                           * @dev This empty reserved space is put in place to allow future versions to add new
                           * variables without shifting down storage in the inheritance chain.
                           * See https://docs.openzeppelin.com/contracts/4.x/upgradeable#storage_gaps
                           */
                          uint256[50] private __gap;
                      }
                      
                      // File: @openzeppelin/contracts-upgradeable/access/OwnableUpgradeable.sol
                      
                      
                      // OpenZeppelin Contracts (last updated v4.7.0) (access/Ownable.sol)
                      
                      pragma solidity ^0.8.0;
                      
                      
                      /**
                       * @dev Contract module which provides a basic access control mechanism, where
                       * there is an account (an owner) that can be granted exclusive access to
                       * specific functions.
                       *
                       * By default, the owner account will be the one that deploys the contract. This
                       * can later be changed with {transferOwnership}.
                       *
                       * This module is used through inheritance. It will make available the modifier
                       * `onlyOwner`, which can be applied to your functions to restrict their use to
                       * the owner.
                       */
                      abstract contract OwnableUpgradeable is Initializable, ContextUpgradeable {
                          address private _owner;
                      
                          event OwnershipTransferred(address indexed previousOwner, address indexed newOwner);
                      
                          /**
                           * @dev Initializes the contract setting the deployer as the initial owner.
                           */
                          function __Ownable_init() internal onlyInitializing {
                              __Ownable_init_unchained();
                          }
                      
                          function __Ownable_init_unchained() internal onlyInitializing {
                              _transferOwnership(_msgSender());
                          }
                      
                          /**
                           * @dev Throws if called by any account other than the owner.
                           */
                          modifier onlyOwner() {
                              _checkOwner();
                              _;
                          }
                      
                          /**
                           * @dev Returns the address of the current owner.
                           */
                          function owner() public view virtual returns (address) {
                              return _owner;
                          }
                      
                          /**
                           * @dev Throws if the sender is not the owner.
                           */
                          function _checkOwner() internal view virtual {
                              require(owner() == _msgSender(), "Ownable: caller is not the owner");
                          }
                      
                          /**
                           * @dev Leaves the contract without owner. It will not be possible to call
                           * `onlyOwner` functions anymore. Can only be called by the current owner.
                           *
                           * NOTE: Renouncing ownership will leave the contract without an owner,
                           * thereby removing any functionality that is only available to the owner.
                           */
                          function renounceOwnership() public virtual onlyOwner {
                              _transferOwnership(address(0));
                          }
                      
                          /**
                           * @dev Transfers ownership of the contract to a new account (`newOwner`).
                           * Can only be called by the current owner.
                           */
                          function transferOwnership(address newOwner) public virtual onlyOwner {
                              require(newOwner != address(0), "Ownable: new owner is the zero address");
                              _transferOwnership(newOwner);
                          }
                      
                          /**
                           * @dev Transfers ownership of the contract to a new account (`newOwner`).
                           * Internal function without access restriction.
                           */
                          function _transferOwnership(address newOwner) internal virtual {
                              address oldOwner = _owner;
                              _owner = newOwner;
                              emit OwnershipTransferred(oldOwner, newOwner);
                          }
                      
                          /**
                           * @dev This empty reserved space is put in place to allow future versions to add new
                           * variables without shifting down storage in the inheritance chain.
                           * See https://docs.openzeppelin.com/contracts/4.x/upgradeable#storage_gaps
                           */
                          uint256[49] private __gap;
                      }
                      
                      // File: @openzeppelin/contracts/token/ERC20/IERC20.sol
                      
                      
                      // OpenZeppelin Contracts (last updated v4.6.0) (token/ERC20/IERC20.sol)
                      
                      pragma solidity ^0.8.0;
                      
                      /**
                       * @dev Interface of the ERC20 standard as defined in the EIP.
                       */
                      interface IERC20 {
                          /**
                           * @dev Emitted when `value` tokens are moved from one account (`from`) to
                           * another (`to`).
                           *
                           * Note that `value` may be zero.
                           */
                          event Transfer(address indexed from, address indexed to, uint256 value);
                      
                          /**
                           * @dev Emitted when the allowance of a `spender` for an `owner` is set by
                           * a call to {approve}. `value` is the new allowance.
                           */
                          event Approval(address indexed owner, address indexed spender, uint256 value);
                      
                          /**
                           * @dev Returns the amount of tokens in existence.
                           */
                          function totalSupply() external view returns (uint256);
                      
                          /**
                           * @dev Returns the amount of tokens owned by `account`.
                           */
                          function balanceOf(address account) external view returns (uint256);
                      
                          /**
                           * @dev Moves `amount` tokens from the caller's account to `to`.
                           *
                           * Returns a boolean value indicating whether the operation succeeded.
                           *
                           * Emits a {Transfer} event.
                           */
                          function transfer(address to, uint256 amount) external returns (bool);
                      
                          /**
                           * @dev Returns the remaining number of tokens that `spender` will be
                           * allowed to spend on behalf of `owner` through {transferFrom}. This is
                           * zero by default.
                           *
                           * This value changes when {approve} or {transferFrom} are called.
                           */
                          function allowance(address owner, address spender) external view returns (uint256);
                      
                          /**
                           * @dev Sets `amount` as the allowance of `spender` over the caller's tokens.
                           *
                           * Returns a boolean value indicating whether the operation succeeded.
                           *
                           * IMPORTANT: Beware that changing an allowance with this method brings the risk
                           * that someone may use both the old and the new allowance by unfortunate
                           * transaction ordering. One possible solution to mitigate this race
                           * condition is to first reduce the spender's allowance to 0 and set the
                           * desired value afterwards:
                           * https://github.com/ethereum/EIPs/issues/20#issuecomment-263524729
                           *
                           * Emits an {Approval} event.
                           */
                          function approve(address spender, uint256 amount) external returns (bool);
                      
                          /**
                           * @dev Moves `amount` tokens from `from` to `to` using the
                           * allowance mechanism. `amount` is then deducted from the caller's
                           * allowance.
                           *
                           * Returns a boolean value indicating whether the operation succeeded.
                           *
                           * Emits a {Transfer} event.
                           */
                          function transferFrom(
                              address from,
                              address to,
                              uint256 amount
                          ) external returns (bool);
                      }
                      
                      // File: @openzeppelin/contracts/token/ERC20/extensions/draft-IERC20Permit.sol
                      
                      
                      // OpenZeppelin Contracts v4.4.1 (token/ERC20/extensions/draft-IERC20Permit.sol)
                      
                      pragma solidity ^0.8.0;
                      
                      /**
                       * @dev Interface of the ERC20 Permit extension allowing approvals to be made via signatures, as defined in
                       * https://eips.ethereum.org/EIPS/eip-2612[EIP-2612].
                       *
                       * Adds the {permit} method, which can be used to change an account's ERC20 allowance (see {IERC20-allowance}) by
                       * presenting a message signed by the account. By not relying on {IERC20-approve}, the token holder account doesn't
                       * need to send a transaction, and thus is not required to hold Ether at all.
                       */
                      interface IERC20Permit {
                          /**
                           * @dev Sets `value` as the allowance of `spender` over ``owner``'s tokens,
                           * given ``owner``'s signed approval.
                           *
                           * IMPORTANT: The same issues {IERC20-approve} has related to transaction
                           * ordering also apply here.
                           *
                           * Emits an {Approval} event.
                           *
                           * Requirements:
                           *
                           * - `spender` cannot be the zero address.
                           * - `deadline` must be a timestamp in the future.
                           * - `v`, `r` and `s` must be a valid `secp256k1` signature from `owner`
                           * over the EIP712-formatted function arguments.
                           * - the signature must use ``owner``'s current nonce (see {nonces}).
                           *
                           * For more information on the signature format, see the
                           * https://eips.ethereum.org/EIPS/eip-2612#specification[relevant EIP
                           * section].
                           */
                          function permit(
                              address owner,
                              address spender,
                              uint256 value,
                              uint256 deadline,
                              uint8 v,
                              bytes32 r,
                              bytes32 s
                          ) external;
                      
                          /**
                           * @dev Returns the current nonce for `owner`. This value must be
                           * included whenever a signature is generated for {permit}.
                           *
                           * Every successful call to {permit} increases ``owner``'s nonce by one. This
                           * prevents a signature from being used multiple times.
                           */
                          function nonces(address owner) external view returns (uint256);
                      
                          /**
                           * @dev Returns the domain separator used in the encoding of the signature for {permit}, as defined by {EIP712}.
                           */
                          // solhint-disable-next-line func-name-mixedcase
                          function DOMAIN_SEPARATOR() external view returns (bytes32);
                      }
                      
                      // File: @openzeppelin/contracts/utils/Address.sol
                      
                      
                      // OpenZeppelin Contracts (last updated v4.8.0) (utils/Address.sol)
                      
                      pragma solidity ^0.8.1;
                      
                      /**
                       * @dev Collection of functions related to the address type
                       */
                      library Address {
                          /**
                           * @dev Returns true if `account` is a contract.
                           *
                           * [IMPORTANT]
                           * ====
                           * It is unsafe to assume that an address for which this function returns
                           * false is an externally-owned account (EOA) and not a contract.
                           *
                           * Among others, `isContract` will return false for the following
                           * types of addresses:
                           *
                           *  - an externally-owned account
                           *  - a contract in construction
                           *  - an address where a contract will be created
                           *  - an address where a contract lived, but was destroyed
                           * ====
                           *
                           * [IMPORTANT]
                           * ====
                           * You shouldn't rely on `isContract` to protect against flash loan attacks!
                           *
                           * Preventing calls from contracts is highly discouraged. It breaks composability, breaks support for smart wallets
                           * like Gnosis Safe, and does not provide security since it can be circumvented by calling from a contract
                           * constructor.
                           * ====
                           */
                          function isContract(address account) internal view returns (bool) {
                              // This method relies on extcodesize/address.code.length, which returns 0
                              // for contracts in construction, since the code is only stored at the end
                              // of the constructor execution.
                      
                              return account.code.length > 0;
                          }
                      
                          /**
                           * @dev Replacement for Solidity's `transfer`: sends `amount` wei to
                           * `recipient`, forwarding all available gas and reverting on errors.
                           *
                           * https://eips.ethereum.org/EIPS/eip-1884[EIP1884] increases the gas cost
                           * of certain opcodes, possibly making contracts go over the 2300 gas limit
                           * imposed by `transfer`, making them unable to receive funds via
                           * `transfer`. {sendValue} removes this limitation.
                           *
                           * https://diligence.consensys.net/posts/2019/09/stop-using-soliditys-transfer-now/[Learn more].
                           *
                           * IMPORTANT: because control is transferred to `recipient`, care must be
                           * taken to not create reentrancy vulnerabilities. Consider using
                           * {ReentrancyGuard} or the
                           * https://solidity.readthedocs.io/en/v0.5.11/security-considerations.html#use-the-checks-effects-interactions-pattern[checks-effects-interactions pattern].
                           */
                          function sendValue(address payable recipient, uint256 amount) internal {
                              require(address(this).balance >= amount, "Address: insufficient balance");
                      
                              (bool success, ) = recipient.call{value: amount}("");
                              require(success, "Address: unable to send value, recipient may have reverted");
                          }
                      
                          /**
                           * @dev Performs a Solidity function call using a low level `call`. A
                           * plain `call` is an unsafe replacement for a function call: use this
                           * function instead.
                           *
                           * If `target` reverts with a revert reason, it is bubbled up by this
                           * function (like regular Solidity function calls).
                           *
                           * Returns the raw returned data. To convert to the expected return value,
                           * use https://solidity.readthedocs.io/en/latest/units-and-global-variables.html?highlight=abi.decode#abi-encoding-and-decoding-functions[`abi.decode`].
                           *
                           * Requirements:
                           *
                           * - `target` must be a contract.
                           * - calling `target` with `data` must not revert.
                           *
                           * _Available since v3.1._
                           */
                          function functionCall(address target, bytes memory data) internal returns (bytes memory) {
                              return functionCallWithValue(target, data, 0, "Address: low-level call failed");
                          }
                      
                          /**
                           * @dev Same as {xref-Address-functionCall-address-bytes-}[`functionCall`], but with
                           * `errorMessage` as a fallback revert reason when `target` reverts.
                           *
                           * _Available since v3.1._
                           */
                          function functionCall(
                              address target,
                              bytes memory data,
                              string memory errorMessage
                          ) internal returns (bytes memory) {
                              return functionCallWithValue(target, data, 0, errorMessage);
                          }
                      
                          /**
                           * @dev Same as {xref-Address-functionCall-address-bytes-}[`functionCall`],
                           * but also transferring `value` wei to `target`.
                           *
                           * Requirements:
                           *
                           * - the calling contract must have an ETH balance of at least `value`.
                           * - the called Solidity function must be `payable`.
                           *
                           * _Available since v3.1._
                           */
                          function functionCallWithValue(
                              address target,
                              bytes memory data,
                              uint256 value
                          ) internal returns (bytes memory) {
                              return functionCallWithValue(target, data, value, "Address: low-level call with value failed");
                          }
                      
                          /**
                           * @dev Same as {xref-Address-functionCallWithValue-address-bytes-uint256-}[`functionCallWithValue`], but
                           * with `errorMessage` as a fallback revert reason when `target` reverts.
                           *
                           * _Available since v3.1._
                           */
                          function functionCallWithValue(
                              address target,
                              bytes memory data,
                              uint256 value,
                              string memory errorMessage
                          ) internal returns (bytes memory) {
                              require(address(this).balance >= value, "Address: insufficient balance for call");
                              (bool success, bytes memory returndata) = target.call{value: value}(data);
                              return verifyCallResultFromTarget(target, success, returndata, errorMessage);
                          }
                      
                          /**
                           * @dev Same as {xref-Address-functionCall-address-bytes-}[`functionCall`],
                           * but performing a static call.
                           *
                           * _Available since v3.3._
                           */
                          function functionStaticCall(address target, bytes memory data) internal view returns (bytes memory) {
                              return functionStaticCall(target, data, "Address: low-level static call failed");
                          }
                      
                          /**
                           * @dev Same as {xref-Address-functionCall-address-bytes-string-}[`functionCall`],
                           * but performing a static call.
                           *
                           * _Available since v3.3._
                           */
                          function functionStaticCall(
                              address target,
                              bytes memory data,
                              string memory errorMessage
                          ) internal view returns (bytes memory) {
                              (bool success, bytes memory returndata) = target.staticcall(data);
                              return verifyCallResultFromTarget(target, success, returndata, errorMessage);
                          }
                      
                          /**
                           * @dev Same as {xref-Address-functionCall-address-bytes-}[`functionCall`],
                           * but performing a delegate call.
                           *
                           * _Available since v3.4._
                           */
                          function functionDelegateCall(address target, bytes memory data) internal returns (bytes memory) {
                              return functionDelegateCall(target, data, "Address: low-level delegate call failed");
                          }
                      
                          /**
                           * @dev Same as {xref-Address-functionCall-address-bytes-string-}[`functionCall`],
                           * but performing a delegate call.
                           *
                           * _Available since v3.4._
                           */
                          function functionDelegateCall(
                              address target,
                              bytes memory data,
                              string memory errorMessage
                          ) internal returns (bytes memory) {
                              (bool success, bytes memory returndata) = target.delegatecall(data);
                              return verifyCallResultFromTarget(target, success, returndata, errorMessage);
                          }
                      
                          /**
                           * @dev Tool to verify that a low level call to smart-contract was successful, and revert (either by bubbling
                           * the revert reason or using the provided one) in case of unsuccessful call or if target was not a contract.
                           *
                           * _Available since v4.8._
                           */
                          function verifyCallResultFromTarget(
                              address target,
                              bool success,
                              bytes memory returndata,
                              string memory errorMessage
                          ) internal view returns (bytes memory) {
                              if (success) {
                                  if (returndata.length == 0) {
                                      // only check isContract if the call was successful and the return data is empty
                                      // otherwise we already know that it was a contract
                                      require(isContract(target), "Address: call to non-contract");
                                  }
                                  return returndata;
                              } else {
                                  _revert(returndata, errorMessage);
                              }
                          }
                      
                          /**
                           * @dev Tool to verify that a low level call was successful, and revert if it wasn't, either by bubbling the
                           * revert reason or using the provided one.
                           *
                           * _Available since v4.3._
                           */
                          function verifyCallResult(
                              bool success,
                              bytes memory returndata,
                              string memory errorMessage
                          ) internal pure returns (bytes memory) {
                              if (success) {
                                  return returndata;
                              } else {
                                  _revert(returndata, errorMessage);
                              }
                          }
                      
                          function _revert(bytes memory returndata, string memory errorMessage) private pure {
                              // Look for revert reason and bubble it up if present
                              if (returndata.length > 0) {
                                  // The easiest way to bubble the revert reason is using memory via assembly
                                  /// @solidity memory-safe-assembly
                                  assembly {
                                      let returndata_size := mload(returndata)
                                      revert(add(32, returndata), returndata_size)
                                  }
                              } else {
                                  revert(errorMessage);
                              }
                          }
                      }
                      
                      // File: @openzeppelin/contracts/token/ERC20/utils/SafeERC20.sol
                      
                      
                      // OpenZeppelin Contracts (last updated v4.8.0) (token/ERC20/utils/SafeERC20.sol)
                      
                      pragma solidity ^0.8.0;
                      
                      
                      
                      /**
                       * @title SafeERC20
                       * @dev Wrappers around ERC20 operations that throw on failure (when the token
                       * contract returns false). Tokens that return no value (and instead revert or
                       * throw on failure) are also supported, non-reverting calls are assumed to be
                       * successful.
                       * To use this library you can add a `using SafeERC20 for IERC20;` statement to your contract,
                       * which allows you to call the safe operations as `token.safeTransfer(...)`, etc.
                       */
                      library SafeERC20 {
                          using Address for address;
                      
                          function safeTransfer(
                              IERC20 token,
                              address to,
                              uint256 value
                          ) internal {
                              _callOptionalReturn(token, abi.encodeWithSelector(token.transfer.selector, to, value));
                          }
                      
                          function safeTransferFrom(
                              IERC20 token,
                              address from,
                              address to,
                              uint256 value
                          ) internal {
                              _callOptionalReturn(token, abi.encodeWithSelector(token.transferFrom.selector, from, to, value));
                          }
                      
                          /**
                           * @dev Deprecated. This function has issues similar to the ones found in
                           * {IERC20-approve}, and its usage is discouraged.
                           *
                           * Whenever possible, use {safeIncreaseAllowance} and
                           * {safeDecreaseAllowance} instead.
                           */
                          function safeApprove(
                              IERC20 token,
                              address spender,
                              uint256 value
                          ) internal {
                              // safeApprove should only be called when setting an initial allowance,
                              // or when resetting it to zero. To increase and decrease it, use
                              // 'safeIncreaseAllowance' and 'safeDecreaseAllowance'
                              require(
                                  (value == 0) || (token.allowance(address(this), spender) == 0),
                                  "SafeERC20: approve from non-zero to non-zero allowance"
                              );
                              _callOptionalReturn(token, abi.encodeWithSelector(token.approve.selector, spender, value));
                          }
                      
                          function safeIncreaseAllowance(
                              IERC20 token,
                              address spender,
                              uint256 value
                          ) internal {
                              uint256 newAllowance = token.allowance(address(this), spender) + value;
                              _callOptionalReturn(token, abi.encodeWithSelector(token.approve.selector, spender, newAllowance));
                          }
                      
                          function safeDecreaseAllowance(
                              IERC20 token,
                              address spender,
                              uint256 value
                          ) internal {
                              unchecked {
                                  uint256 oldAllowance = token.allowance(address(this), spender);
                                  require(oldAllowance >= value, "SafeERC20: decreased allowance below zero");
                                  uint256 newAllowance = oldAllowance - value;
                                  _callOptionalReturn(token, abi.encodeWithSelector(token.approve.selector, spender, newAllowance));
                              }
                          }
                      
                          function safePermit(
                              IERC20Permit token,
                              address owner,
                              address spender,
                              uint256 value,
                              uint256 deadline,
                              uint8 v,
                              bytes32 r,
                              bytes32 s
                          ) internal {
                              uint256 nonceBefore = token.nonces(owner);
                              token.permit(owner, spender, value, deadline, v, r, s);
                              uint256 nonceAfter = token.nonces(owner);
                              require(nonceAfter == nonceBefore + 1, "SafeERC20: permit did not succeed");
                          }
                      
                          /**
                           * @dev Imitates a Solidity high-level call (i.e. a regular function call to a contract), relaxing the requirement
                           * on the return value: the return value is optional (but if data is returned, it must not be false).
                           * @param token The token targeted by the call.
                           * @param data The call data (encoded using abi.encode or one of its variants).
                           */
                          function _callOptionalReturn(IERC20 token, bytes memory data) private {
                              // We need to perform a low level call here, to bypass Solidity's return data size checking mechanism, since
                              // we're implementing it ourselves. We use {Address-functionCall} to perform this call, which verifies that
                              // the target address contains contract code and also asserts for success in the low-level call.
                      
                              bytes memory returndata = address(token).functionCall(data, "SafeERC20: low-level call failed");
                              if (returndata.length > 0) {
                                  // Return data is optional
                                  require(abi.decode(returndata, (bool)), "SafeERC20: ERC20 operation did not succeed");
                              }
                          }
                      }
                      
                      // File: @openzeppelin/contracts-upgradeable/security/PausableUpgradeable.sol
                      
                      
                      // OpenZeppelin Contracts (last updated v4.7.0) (security/Pausable.sol)
                      
                      pragma solidity ^0.8.0;
                      
                      
                      /**
                       * @dev Contract module which allows children to implement an emergency stop
                       * mechanism that can be triggered by an authorized account.
                       *
                       * This module is used through inheritance. It will make available the
                       * modifiers `whenNotPaused` and `whenPaused`, which can be applied to
                       * the functions of your contract. Note that they will not be pausable by
                       * simply including this module, only once the modifiers are put in place.
                       */
                      abstract contract PausableUpgradeable is Initializable, ContextUpgradeable {
                          /**
                           * @dev Emitted when the pause is triggered by `account`.
                           */
                          event Paused(address account);
                      
                          /**
                           * @dev Emitted when the pause is lifted by `account`.
                           */
                          event Unpaused(address account);
                      
                          bool private _paused;
                      
                          /**
                           * @dev Initializes the contract in unpaused state.
                           */
                          function __Pausable_init() internal onlyInitializing {
                              __Pausable_init_unchained();
                          }
                      
                          function __Pausable_init_unchained() internal onlyInitializing {
                              _paused = false;
                          }
                      
                          /**
                           * @dev Modifier to make a function callable only when the contract is not paused.
                           *
                           * Requirements:
                           *
                           * - The contract must not be paused.
                           */
                          modifier whenNotPaused() {
                              _requireNotPaused();
                              _;
                          }
                      
                          /**
                           * @dev Modifier to make a function callable only when the contract is paused.
                           *
                           * Requirements:
                           *
                           * - The contract must be paused.
                           */
                          modifier whenPaused() {
                              _requirePaused();
                              _;
                          }
                      
                          /**
                           * @dev Returns true if the contract is paused, and false otherwise.
                           */
                          function paused() public view virtual returns (bool) {
                              return _paused;
                          }
                      
                          /**
                           * @dev Throws if the contract is paused.
                           */
                          function _requireNotPaused() internal view virtual {
                              require(!paused(), "Pausable: paused");
                          }
                      
                          /**
                           * @dev Throws if the contract is not paused.
                           */
                          function _requirePaused() internal view virtual {
                              require(paused(), "Pausable: not paused");
                          }
                      
                          /**
                           * @dev Triggers stopped state.
                           *
                           * Requirements:
                           *
                           * - The contract must not be paused.
                           */
                          function _pause() internal virtual whenNotPaused {
                              _paused = true;
                              emit Paused(_msgSender());
                          }
                      
                          /**
                           * @dev Returns to normal state.
                           *
                           * Requirements:
                           *
                           * - The contract must be paused.
                           */
                          function _unpause() internal virtual whenPaused {
                              _paused = false;
                              emit Unpaused(_msgSender());
                          }
                      
                          /**
                           * @dev This empty reserved space is put in place to allow future versions to add new
                           * variables without shifting down storage in the inheritance chain.
                           * See https://docs.openzeppelin.com/contracts/4.x/upgradeable#storage_gaps
                           */
                          uint256[49] private __gap;
                      }
                      
                      // File: contracts/interfaces/IOpenOceanCaller.sol
                      
                      
                      pragma solidity ^0.8.0;
                      
                      
                      interface IOpenOceanCaller {
                          struct CallDescription {
                              uint256 target;
                              uint256 gasLimit;
                              uint256 value;
                              bytes data;
                          }
                      
                          function makeCall(CallDescription memory desc) external;
                      
                          function makeCalls(CallDescription[] memory desc) external payable;
                      }
                      
                      // File: contracts/libraries/RevertReasonParser.sol
                      
                      
                      pragma solidity ^0.8.0;
                      
                      library RevertReasonParser {
                          function parse(bytes memory data, string memory prefix) internal pure returns (string memory) {
                              // https://solidity.readthedocs.io/en/latest/control-structures.html#revert
                              // We assume that revert reason is abi-encoded as Error(string)
                      
                              // 68 = 4-byte selector 0x08c379a0 + 32 bytes offset + 32 bytes length
                              if (data.length >= 68 && data[0] == "\x08" && data[1] == "\xc3" && data[2] == "\x79" && data[3] == "\xa0") {
                                  string memory reason;
                                  // solhint-disable no-inline-assembly
                                  assembly {
                                      // 68 = 32 bytes data length + 4-byte selector + 32 bytes offset
                                      reason := add(data, 68)
                                  }
                                  /*
                                      revert reason is padded up to 32 bytes with ABI encoder: Error(string)
                                      also sometimes there is extra 32 bytes of zeros padded in the end:
                                      https://github.com/ethereum/solidity/issues/10170
                                      because of that we can't check for equality and instead check
                                      that string length + extra 68 bytes is less than overall data length
                                  */
                                  require(data.length >= 68 + bytes(reason).length, "Invalid revert reason");
                                  return string(abi.encodePacked(prefix, "Error(", reason, ")"));
                              }
                              // 36 = 4-byte selector 0x4e487b71 + 32 bytes integer
                              else if (data.length == 36 && data[0] == "\x4e" && data[1] == "\x48" && data[2] == "\x7b" && data[3] == "\x71") {
                                  uint256 code;
                                  // solhint-disable no-inline-assembly
                                  assembly {
                                      // 36 = 32 bytes data length + 4-byte selector
                                      code := mload(add(data, 36))
                                  }
                                  return string(abi.encodePacked(prefix, "Panic(", _toHex(code), ")"));
                              }
                      
                              return string(abi.encodePacked(prefix, "Unknown()"));
                          }
                      
                          function _toHex(uint256 value) private pure returns (string memory) {
                              return _toHex(abi.encodePacked(value));
                          }
                      
                          function _toHex(bytes memory data) private pure returns (string memory) {
                              bytes memory alphabet = "0123456789abcdef";
                              bytes memory str = new bytes(2 + data.length * 2);
                              str[0] = "0";
                              str[1] = "x";
                              for (uint256 i = 0; i < data.length; i++) {
                                  str[2 * i + 2] = alphabet[uint8(data[i] >> 4)];
                                  str[2 * i + 3] = alphabet[uint8(data[i] & 0x0f)];
                              }
                              return string(str);
                          }
                      }
                      
                      // File: @openzeppelin/contracts/utils/math/SafeMath.sol
                      
                      
                      // OpenZeppelin Contracts (last updated v4.6.0) (utils/math/SafeMath.sol)
                      
                      pragma solidity ^0.8.0;
                      
                      // CAUTION
                      // This version of SafeMath should only be used with Solidity 0.8 or later,
                      // because it relies on the compiler's built in overflow checks.
                      
                      /**
                       * @dev Wrappers over Solidity's arithmetic operations.
                       *
                       * NOTE: `SafeMath` is generally not needed starting with Solidity 0.8, since the compiler
                       * now has built in overflow checking.
                       */
                      library SafeMath {
                          /**
                           * @dev Returns the addition of two unsigned integers, with an overflow flag.
                           *
                           * _Available since v3.4._
                           */
                          function tryAdd(uint256 a, uint256 b) internal pure returns (bool, uint256) {
                              unchecked {
                                  uint256 c = a + b;
                                  if (c < a) return (false, 0);
                                  return (true, c);
                              }
                          }
                      
                          /**
                           * @dev Returns the subtraction of two unsigned integers, with an overflow flag.
                           *
                           * _Available since v3.4._
                           */
                          function trySub(uint256 a, uint256 b) internal pure returns (bool, uint256) {
                              unchecked {
                                  if (b > a) return (false, 0);
                                  return (true, a - b);
                              }
                          }
                      
                          /**
                           * @dev Returns the multiplication of two unsigned integers, with an overflow flag.
                           *
                           * _Available since v3.4._
                           */
                          function tryMul(uint256 a, uint256 b) internal pure returns (bool, uint256) {
                              unchecked {
                                  // Gas optimization: this is cheaper than requiring 'a' not being zero, but the
                                  // benefit is lost if 'b' is also tested.
                                  // See: https://github.com/OpenZeppelin/openzeppelin-contracts/pull/522
                                  if (a == 0) return (true, 0);
                                  uint256 c = a * b;
                                  if (c / a != b) return (false, 0);
                                  return (true, c);
                              }
                          }
                      
                          /**
                           * @dev Returns the division of two unsigned integers, with a division by zero flag.
                           *
                           * _Available since v3.4._
                           */
                          function tryDiv(uint256 a, uint256 b) internal pure returns (bool, uint256) {
                              unchecked {
                                  if (b == 0) return (false, 0);
                                  return (true, a / b);
                              }
                          }
                      
                          /**
                           * @dev Returns the remainder of dividing two unsigned integers, with a division by zero flag.
                           *
                           * _Available since v3.4._
                           */
                          function tryMod(uint256 a, uint256 b) internal pure returns (bool, uint256) {
                              unchecked {
                                  if (b == 0) return (false, 0);
                                  return (true, a % b);
                              }
                          }
                      
                          /**
                           * @dev Returns the addition of two unsigned integers, reverting on
                           * overflow.
                           *
                           * Counterpart to Solidity's `+` operator.
                           *
                           * Requirements:
                           *
                           * - Addition cannot overflow.
                           */
                          function add(uint256 a, uint256 b) internal pure returns (uint256) {
                              return a + b;
                          }
                      
                          /**
                           * @dev Returns the subtraction of two unsigned integers, reverting on
                           * overflow (when the result is negative).
                           *
                           * Counterpart to Solidity's `-` operator.
                           *
                           * Requirements:
                           *
                           * - Subtraction cannot overflow.
                           */
                          function sub(uint256 a, uint256 b) internal pure returns (uint256) {
                              return a - b;
                          }
                      
                          /**
                           * @dev Returns the multiplication of two unsigned integers, reverting on
                           * overflow.
                           *
                           * Counterpart to Solidity's `*` operator.
                           *
                           * Requirements:
                           *
                           * - Multiplication cannot overflow.
                           */
                          function mul(uint256 a, uint256 b) internal pure returns (uint256) {
                              return a * b;
                          }
                      
                          /**
                           * @dev Returns the integer division of two unsigned integers, reverting on
                           * division by zero. The result is rounded towards zero.
                           *
                           * Counterpart to Solidity's `/` operator.
                           *
                           * Requirements:
                           *
                           * - The divisor cannot be zero.
                           */
                          function div(uint256 a, uint256 b) internal pure returns (uint256) {
                              return a / b;
                          }
                      
                          /**
                           * @dev Returns the remainder of dividing two unsigned integers. (unsigned integer modulo),
                           * reverting when dividing by zero.
                           *
                           * Counterpart to Solidity's `%` operator. This function uses a `revert`
                           * opcode (which leaves remaining gas untouched) while Solidity uses an
                           * invalid opcode to revert (consuming all remaining gas).
                           *
                           * Requirements:
                           *
                           * - The divisor cannot be zero.
                           */
                          function mod(uint256 a, uint256 b) internal pure returns (uint256) {
                              return a % b;
                          }
                      
                          /**
                           * @dev Returns the subtraction of two unsigned integers, reverting with custom message on
                           * overflow (when the result is negative).
                           *
                           * CAUTION: This function is deprecated because it requires allocating memory for the error
                           * message unnecessarily. For custom revert reasons use {trySub}.
                           *
                           * Counterpart to Solidity's `-` operator.
                           *
                           * Requirements:
                           *
                           * - Subtraction cannot overflow.
                           */
                          function sub(
                              uint256 a,
                              uint256 b,
                              string memory errorMessage
                          ) internal pure returns (uint256) {
                              unchecked {
                                  require(b <= a, errorMessage);
                                  return a - b;
                              }
                          }
                      
                          /**
                           * @dev Returns the integer division of two unsigned integers, reverting with custom message on
                           * division by zero. The result is rounded towards zero.
                           *
                           * Counterpart to Solidity's `/` operator. Note: this function uses a
                           * `revert` opcode (which leaves remaining gas untouched) while Solidity
                           * uses an invalid opcode to revert (consuming all remaining gas).
                           *
                           * Requirements:
                           *
                           * - The divisor cannot be zero.
                           */
                          function div(
                              uint256 a,
                              uint256 b,
                              string memory errorMessage
                          ) internal pure returns (uint256) {
                              unchecked {
                                  require(b > 0, errorMessage);
                                  return a / b;
                              }
                          }
                      
                          /**
                           * @dev Returns the remainder of dividing two unsigned integers. (unsigned integer modulo),
                           * reverting with custom message when dividing by zero.
                           *
                           * CAUTION: This function is deprecated because it requires allocating memory for the error
                           * message unnecessarily. For custom revert reasons use {tryMod}.
                           *
                           * Counterpart to Solidity's `%` operator. This function uses a `revert`
                           * opcode (which leaves remaining gas untouched) while Solidity uses an
                           * invalid opcode to revert (consuming all remaining gas).
                           *
                           * Requirements:
                           *
                           * - The divisor cannot be zero.
                           */
                          function mod(
                              uint256 a,
                              uint256 b,
                              string memory errorMessage
                          ) internal pure returns (uint256) {
                              unchecked {
                                  require(b > 0, errorMessage);
                                  return a % b;
                              }
                          }
                      }
                      
                      // File: contracts/libraries/UniversalERC20.sol
                      
                      
                      pragma solidity ^0.8.0;
                      
                      
                      
                      library UniversalERC20 {
                          using SafeMath for uint256;
                          using SafeERC20 for IERC20;
                      
                          IERC20 internal constant ZERO_ADDRESS = IERC20(0x0000000000000000000000000000000000000000);
                          IERC20 internal constant ETH_ADDRESS = IERC20(0xEeeeeEeeeEeEeeEeEeEeeEEEeeeeEeeeeeeeEEeE);
                          IERC20 internal constant MATIC_ADDRESS = IERC20(0x0000000000000000000000000000000000001010);
                      
                          function universalTransfer(
                              IERC20 token,
                              address payable to,
                              uint256 amount
                          ) internal {
                              if (amount > 0) {
                                  if (isETH(token)) {
                                      (bool result, ) = to.call{value: amount}("");
                                      require(result, "Failed to transfer ETH");
                                  } else {
                                      token.safeTransfer(to, amount);
                                  }
                              }
                          }
                      
                          function universalApprove(
                              IERC20 token,
                              address to,
                              uint256 amount
                          ) internal {
                              require(!isETH(token), "Approve called on ETH");
                      
                              if (amount == 0) {
                                  token.safeApprove(to, 0);
                              } else {
                                  uint256 allowance = token.allowance(address(this), to);
                                  if (allowance < amount) {
                                      if (allowance > 0) {
                                          token.safeApprove(to, 0);
                                      }
                                      token.safeApprove(to, amount);
                                  }
                              }
                          }
                      
                          function universalBalanceOf(IERC20 token, address account) internal view returns (uint256) {
                              if (isETH(token)) {
                                  return account.balance;
                              } else {
                                  return token.balanceOf(account);
                              }
                          }
                      
                          function isETH(IERC20 token) internal pure returns (bool) {
                              return
                                  address(token) == address(ETH_ADDRESS) ||
                                  address(token) == address(MATIC_ADDRESS) ||
                                  address(token) == address(ZERO_ADDRESS);
                          }
                      }
                      
                      // File: contracts/libraries/Permitable.sol
                      
                      
                      pragma solidity ^0.8.0;
                      
                      /// @title Interface for DAI-style permits
                      interface IDaiLikePermit {
                          function permit(
                              address holder,
                              address spender,
                              uint256 nonce,
                              uint256 expiry,
                              bool allowed,
                              uint8 v,
                              bytes32 r,
                              bytes32 s
                          ) external;
                      }
                      
                      /// @title SignatureTransfer
                      /// @notice Handles ERC20 token transfers through signature based actions
                      /// @dev Requires user's token approval on the Permit2 contract
                      interface IPermit2 {
                          /// @notice The token and amount details for a transfer signed in the permit transfer signature
                          struct TokenPermissions {
                              // ERC20 token address
                              address token;
                              // the maximum amount that can be spent
                              uint256 amount;
                          }
                      
                          /// @notice The signed permit message for a single token transfer
                          struct PermitTransferFrom {
                              TokenPermissions permitted;
                              // a unique value for every token owner's signature to prevent signature replays
                              uint256 nonce;
                              // deadline on the permit signature
                              uint256 deadline;
                          }
                      
                          /// @notice Specifies the recipient address and amount for batched transfers.
                          /// @dev Recipients and amounts correspond to the index of the signed token permissions array.
                          /// @dev Reverts if the requested amount is greater than the permitted signed amount.
                          struct SignatureTransferDetails {
                              // recipient address
                              address to;
                              // spender requested amount
                              uint256 requestedAmount;
                          }
                      
                          /// @notice A map from token owner address and a caller specified word index to a bitmap. Used to set bits in the bitmap to prevent against signature replay protection
                          /// @dev Uses unordered nonces so that permit messages do not need to be spent in a certain order
                          /// @dev The mapping is indexed first by the token owner, then by an index specified in the nonce
                          /// @dev It returns a uint256 bitmap
                          /// @dev The index, or wordPosition is capped at type(uint248).max
                          function nonceBitmap(address, uint256) external view returns (uint256);
                      
                          /// @notice Transfers a token using a signed permit message
                          /// @dev Reverts if the requested amount is greater than the permitted signed amount
                          /// @param permit The permit data signed over by the owner
                          /// @param owner The owner of the tokens to transfer
                          /// @param transferDetails The spender's requested transfer details for the permitted token
                          /// @param signature The signature to verify
                          function permitTransferFrom(
                              PermitTransferFrom memory permit,
                              SignatureTransferDetails calldata transferDetails,
                              address owner,
                              bytes calldata signature
                          ) external;
                      
                          /// @notice Returns the domain separator for the current chain.
                          /// @dev Uses cached version if chainid and address are unchanged from construction.
                          function DOMAIN_SEPARATOR() external view returns (bytes32);
                      }
                      
                      /// @title Base contract with common permit handling logics
                      contract Permitable {
                          address public permit2;
                      
                          function permit2DomainSeperator() external view returns (bytes32) {
                              return IPermit2(permit2).DOMAIN_SEPARATOR();
                          }
                      
                          function _permit(address token, bytes calldata permit, bool claim) internal returns (bool) {
                              if (permit.length > 0) {
                                  if (permit.length == 32 * 7 || permit.length == 32 * 8) {
                                      _permit(token, permit);
                                      return false;
                                  } else if (claim) {
                                      _permit2(permit);
                                      return true;
                                  }
                              }
                              return false;
                          }
                      
                          function _isPermit2(bytes calldata permit) internal pure returns (bool) {
                              return permit.length == 32 * 11 || permit.length == 32 * 12;
                          }
                      
                          function _permit(address token, bytes calldata permit) private returns (bool success, bytes memory result) {
                              if (permit.length == 32 * 7) {
                                  // solhint-disable-next-line avoid-low-level-calls
                                  (success, result) = token.call(abi.encodePacked(IERC20Permit.permit.selector, permit));
                              } else if (permit.length == 32 * 8) {
                                  // solhint-disable-next-line avoid-low-level-calls
                                  (success, result) = token.call(abi.encodePacked(IDaiLikePermit.permit.selector, permit));
                              }
                              if (!success) {
                                  revert(RevertReasonParser.parse(result, "Permit failed: "));
                              }
                          }
                      
                          function _permit2(bytes calldata permit) internal returns (bool success, bytes memory result) {
                              // solhint-disable-next-line avoid-low-level-calls
                              (success, result) = permit2.call(abi.encodePacked(IPermit2.permitTransferFrom.selector, permit)); // TODO support batch permit
                              if (!success) {
                                  revert(RevertReasonParser.parse(result, "Permit2 failed: "));
                              }
                          }
                      
                          /// @notice Finds the next valid nonce for a user, starting from 0.
                          /// @param owner The owner of the nonces
                          /// @return nonce The first valid nonce starting from 0
                          function permit2NextNonce(address owner) external view returns (uint256 nonce) {
                              nonce = _permit2NextNonce(owner, 0, 0);
                          }
                      
                          /// @notice Finds the next valid nonce for a user, after from a given nonce.
                          /// @dev This can be helpful if you're signing multiple nonces in a row and need the next nonce to sign but the start one is still valid.
                          /// @param owner The owner of the nonces
                          /// @param start The nonce to start from
                          /// @return nonce The first valid nonce after the given nonce
                          function permit2NextNonceAfter(address owner, uint256 start) external view returns (uint256 nonce) {
                              uint248 word = uint248(start >> 8);
                              uint8 pos = uint8(start);
                              if (pos == type(uint8).max) {
                                  // If the position is 255, we need to move to the next word
                                  word++;
                                  pos = 0;
                              } else {
                                  // Otherwise, we just move to the next position
                                  pos++;
                              }
                              nonce = _permit2NextNonce(owner, word, pos);
                          }
                      
                          /// @notice Finds the next valid nonce for a user, starting from a given word and position.
                          /// @param owner The owner of the nonces
                          /// @param word Word to start looking from
                          /// @param pos Position inside the word to start looking from
                          function _permit2NextNonce(address owner, uint248 word, uint8 pos) internal view returns (uint256 nonce) {
                              while (true) {
                                  uint256 bitmap = IPermit2(permit2).nonceBitmap(owner, word);
                      
                                  // Check if the bitmap is completely full
                                  if (bitmap == type(uint256).max) {
                                      // If so, move to the next word
                                      ++word;
                                      pos = 0;
                                      continue;
                                  }
                                  if (pos != 0) {
                                      // If the position is not 0, we need to shift the bitmap to ignore the bits before position
                                      bitmap = bitmap >> pos;
                                  }
                                  // Find the first zero bit in the bitmap
                                  while (bitmap & 1 == 1) {
                                      bitmap = bitmap >> 1;
                                      ++pos;
                                  }
                      
                                  return _permit2NonceFromWordAndPos(word, pos);
                              }
                          }
                      
                          /// @notice Constructs a nonce from a word and a position inside the word
                          /// @param word The word containing the nonce
                          /// @param pos The position of the nonce inside the word
                          /// @return nonce The nonce constructed from the word and position
                          function _permit2NonceFromWordAndPos(uint248 word, uint8 pos) internal pure returns (uint256 nonce) {
                              // The last 248 bits of the word are the nonce bits
                              nonce = uint256(word) << 8;
                              // The first 8 bits of the word are the position inside the word
                              nonce |= pos;
                          }
                      }
                      
                      // File: contracts/libraries/EthRejector.sol
                      
                      
                      pragma solidity ^0.8.0;
                      
                      abstract contract EthRejector {
                          receive() external payable {
                              // require(msg.sender != tx.origin, "ETH deposit rejected");
                          }
                      }
                      
                      // File: contracts/UniswapV2Exchange.sol
                      
                      
                      
                      pragma solidity ^0.8.0;
                      
                      
                      contract UniswapV2Exchange is EthRejector, Permitable {
                          uint256 private constant TRANSFER_FROM_CALL_SELECTOR_32 = 0x23b872dd00000000000000000000000000000000000000000000000000000000;
                          uint256 private constant WETH_DEPOSIT_CALL_SELECTOR_32 = 0xd0e30db000000000000000000000000000000000000000000000000000000000;
                          uint256 private constant WETH_WITHDRAW_CALL_SELECTOR_32 = 0x2e1a7d4d00000000000000000000000000000000000000000000000000000000;
                          uint256 private constant ERC20_TRANSFER_CALL_SELECTOR_32 = 0xa9059cbb00000000000000000000000000000000000000000000000000000000;
                          uint256 private constant ADDRESS_MASK = 0x000000000000000000000000ffffffffffffffffffffffffffffffffffffffff;
                          uint256 private constant REVERSE_MASK = 0x8000000000000000000000000000000000000000000000000000000000000000;
                          uint256 private constant WETH_MASK = 0x4000000000000000000000000000000000000000000000000000000000000000;
                          uint256 private constant NUMERATOR_MASK = 0x0000000000000000ffffffff0000000000000000000000000000000000000000;
                          uint256 private constant WETH = 0x000000000000000000000000C02aaA39b223FE8D0A0e5C4F27eAD9083C756Cc2;
                          uint256 private constant UNISWAP_PAIR_RESERVES_CALL_SELECTOR_32 =
                              0x0902f1ac00000000000000000000000000000000000000000000000000000000;
                          uint256 private constant UNISWAP_PAIR_SWAP_CALL_SELECTOR_32 =
                              0x022c0d9f00000000000000000000000000000000000000000000000000000000;
                          uint256 private constant DENOMINATOR = 1000000000;
                          uint256 private constant NUMERATOR_OFFSET = 160;
                      
                          function callUniswapToWithPermit(
                              IERC20 srcToken,
                              uint256 amount,
                              uint256 minReturn,
                              bytes32[] calldata pools,
                              bytes calldata permit,
                              address payable recipient
                          ) external returns (uint256 returnAmount) {
                              bool claimed = _permit(address(srcToken), permit, true);
                              return _callUniswap(srcToken, amount, minReturn, pools, recipient, claimed);
                          }
                      
                          function callUniswapWithPermit(
                              IERC20 srcToken,
                              uint256 amount,
                              uint256 minReturn,
                              bytes32[] calldata pools,
                              bytes calldata permit
                          ) external returns (uint256 returnAmount) {
                              bool claimed = _permit(address(srcToken), permit, true);
                              return _callUniswap(srcToken, amount, minReturn, pools, payable(msg.sender), claimed);
                          }
                      
                          function callUniswapTo(
                              IERC20 srcToken,
                              uint256 amount,
                              uint256 minReturn,
                              bytes32[] calldata pools,
                              address payable recipient
                          ) external payable returns (uint256 returnAmount) {
                              return _callUniswap(srcToken, amount, minReturn, pools, recipient, false);
                          }
                      
                          function callUniswap(
                              IERC20 srcToken,
                              uint256 amount,
                              uint256 minReturn,
                              bytes32[] calldata pools
                          ) external payable returns (uint256 returnAmount) {
                              return _callUniswap(srcToken, amount, minReturn, pools, payable(msg.sender), false);
                          }
                      
                          function _callUniswap(
                              IERC20 srcToken,
                              uint256 amount,
                              uint256 minReturn,
                              bytes32[] calldata /* pools */,
                              address payable recipient,
                              bool claimed
                          ) internal returns (uint256 returnAmount) {
                              assembly {
                                  // solhint-disable-line no-inline-assembly
                                  function reRevert() {
                                      returndatacopy(0, 0, returndatasize())
                                      revert(0, returndatasize())
                                  }
                      
                                  function revertWithReason(m, len) {
                                      mstore(0, 0x08c379a000000000000000000000000000000000000000000000000000000000)
                                      mstore(0x20, 0x0000002000000000000000000000000000000000000000000000000000000000)
                                      mstore(0x40, m)
                                      revert(0, len)
                                  }
                      
                                  function swap(emptyPtr, swapAmount, pair, reversed, numerator, dst) -> ret {
                                      mstore(emptyPtr, UNISWAP_PAIR_RESERVES_CALL_SELECTOR_32)
                                      if iszero(staticcall(gas(), pair, emptyPtr, 0x4, emptyPtr, 0x40)) {
                                          reRevert()
                                      }
                      
                                      let reserve0 := mload(emptyPtr)
                                      let reserve1 := mload(add(emptyPtr, 0x20))
                                      if reversed {
                                          let tmp := reserve0
                                          reserve0 := reserve1
                                          reserve1 := tmp
                                      }
                                      ret := mul(swapAmount, numerator)
                                      ret := div(mul(ret, reserve1), add(ret, mul(reserve0, DENOMINATOR)))
                      
                                      mstore(emptyPtr, UNISWAP_PAIR_SWAP_CALL_SELECTOR_32)
                                      switch reversed
                                      case 0 {
                                          mstore(add(emptyPtr, 0x04), 0)
                                          mstore(add(emptyPtr, 0x24), ret)
                                      }
                                      default {
                                          mstore(add(emptyPtr, 0x04), ret)
                                          mstore(add(emptyPtr, 0x24), 0)
                                      }
                                      mstore(add(emptyPtr, 0x44), dst)
                                      mstore(add(emptyPtr, 0x64), 0x80)
                                      mstore(add(emptyPtr, 0x84), 0)
                                      if iszero(call(gas(), pair, 0, emptyPtr, 0xa4, 0, 0)) {
                                          reRevert()
                                      }
                                  }
                      
                                  function callSwap(emptyPtr, token, srcAmount, swapCaller, receiver, min, claim) -> ret {
                                      let poolsOffset := add(calldataload(0x64), 0x4)
                                      let poolsEndOffset := calldataload(poolsOffset)
                                      poolsOffset := add(poolsOffset, 0x20)
                                      poolsEndOffset := add(poolsOffset, mul(0x20, poolsEndOffset))
                                      let rawPair := calldataload(poolsOffset)
                                      switch token
                                      case 0 {
                                          if iszero(eq(srcAmount, callvalue())) {
                                              revertWithReason(0x00000011696e76616c6964206d73672e76616c75650000000000000000000000, 0x55) // "invalid msg.value"
                                          }
                      
                                          mstore(emptyPtr, WETH_DEPOSIT_CALL_SELECTOR_32)
                                          if iszero(call(gas(), WETH, srcAmount, emptyPtr, 0x4, 0, 0)) {
                                              reRevert()
                                          }
                      
                                          mstore(emptyPtr, ERC20_TRANSFER_CALL_SELECTOR_32)
                                          mstore(add(emptyPtr, 0x4), and(rawPair, ADDRESS_MASK))
                                          mstore(add(emptyPtr, 0x24), srcAmount)
                                          if iszero(call(gas(), WETH, 0, emptyPtr, 0x44, 0, 0)) {
                                              reRevert()
                                          }
                                      }
                                      default {
                                          if callvalue() {
                                              revertWithReason(0x00000011696e76616c6964206d73672e76616c75650000000000000000000000, 0x55) // "invalid msg.value"
                                          }
                      
                                          if claim {
                                              mstore(emptyPtr, TRANSFER_FROM_CALL_SELECTOR_32)
                                              mstore(add(emptyPtr, 0x4), swapCaller)
                                              mstore(add(emptyPtr, 0x24), and(rawPair, ADDRESS_MASK))
                                              mstore(add(emptyPtr, 0x44), srcAmount)
                                              if iszero(call(gas(), token, 0, emptyPtr, 0x64, 0, 0)) {
                                                  reRevert()
                                              }
                                          }
                                      }
                      
                                      ret := srcAmount
                      
                                      for {
                                          let i := add(poolsOffset, 0x20)
                                      } lt(i, poolsEndOffset) {
                                          i := add(i, 0x20)
                                      } {
                                          let nextRawPair := calldataload(i)
                      
                                          ret := swap(
                                              emptyPtr,
                                              ret,
                                              and(rawPair, ADDRESS_MASK),
                                              and(rawPair, REVERSE_MASK),
                                              shr(NUMERATOR_OFFSET, and(rawPair, NUMERATOR_MASK)),
                                              and(nextRawPair, ADDRESS_MASK)
                                          )
                      
                                          rawPair := nextRawPair
                                      }
                      
                                      ret := swap(
                                          emptyPtr,
                                          ret,
                                          and(rawPair, ADDRESS_MASK),
                                          and(rawPair, REVERSE_MASK),
                                          shr(NUMERATOR_OFFSET, and(rawPair, NUMERATOR_MASK)),
                                          address()
                                      )
                      
                                      if lt(ret, min) {
                                          revertWithReason(0x000000164d696e2072657475726e206e6f742072656163686564000000000000, 0x5a) // "Min return not reached"
                                      }
                      
                                      mstore(emptyPtr, 0xd21220a700000000000000000000000000000000000000000000000000000000)
                                      if and(rawPair, REVERSE_MASK) {
                                          mstore(emptyPtr, 0x0dfe168100000000000000000000000000000000000000000000000000000000)
                                      }
                                      if iszero(staticcall(gas(), and(rawPair, ADDRESS_MASK), emptyPtr, 0x4, emptyPtr, 0x40)) {
                                          reRevert()
                                      }
                                      let dstToken := mload(emptyPtr)
                      
                                      let finalAmount := div(
                                          mul(calldataload(0x44), 0x2710),
                                          sub(
                                              10000,
                                              shr(
                                                  232,
                                                  and(
                                                      calldataload(add(add(calldataload(0x64), 0x4), 0x20)),
                                                      0x00ffff0000000000000000000000000000000000000000000000000000000000
                                                  )
                                              )
                                          )
                                      )
                                      switch gt(ret, finalAmount)
                                      case 1 {
                                          switch and(rawPair, WETH_MASK)
                                          case 0 {
                                              mstore(emptyPtr, ERC20_TRANSFER_CALL_SELECTOR_32)
                                              mstore(add(emptyPtr, 0x4), receiver)
                                              mstore(add(emptyPtr, 0x24), finalAmount)
                                              if iszero(call(gas(), dstToken, 0, emptyPtr, 0x44, 0, 0)) {
                                                  reRevert()
                                              }
                      
                                              mstore(add(emptyPtr, 0x4), 0x922164BBBd36Acf9E854AcBbF32faCC949fCAEef)
                                              mstore(add(emptyPtr, 0x24), sub(ret, finalAmount))
                                              if iszero(call(gas(), dstToken, 0, emptyPtr, 0x44, 0, 0)) {
                                                  reRevert()
                                              }
                                          }
                                          default {
                                              mstore(emptyPtr, WETH_WITHDRAW_CALL_SELECTOR_32)
                                              mstore(add(emptyPtr, 0x04), ret)
                                              if iszero(call(gas(), WETH, 0, emptyPtr, 0x24, 0, 0)) {
                                                  reRevert()
                                              }
                      
                                              if iszero(call(gas(), receiver, finalAmount, 0, 0, 0, 0)) {
                                                  reRevert()
                                              }
                      
                                              if iszero(call(gas(), 0x922164BBBd36Acf9E854AcBbF32faCC949fCAEef, sub(ret, finalAmount), 0, 0, 0, 0)) {
                                                  reRevert()
                                              }
                                          }
                                      }
                                      default {
                                          switch and(rawPair, WETH_MASK)
                                          case 0 {
                                              mstore(emptyPtr, ERC20_TRANSFER_CALL_SELECTOR_32)
                                              mstore(add(emptyPtr, 0x4), receiver)
                                              mstore(add(emptyPtr, 0x24), ret)
                                              if iszero(call(gas(), dstToken, 0, emptyPtr, 0x44, 0, 0)) {
                                                  reRevert()
                                              }
                                          }
                                          default {
                                              mstore(emptyPtr, WETH_WITHDRAW_CALL_SELECTOR_32)
                                              mstore(add(emptyPtr, 0x04), ret)
                                              if iszero(call(gas(), WETH, 0, emptyPtr, 0x24, 0, 0)) {
                                                  reRevert()
                                              }
                      
                                              if iszero(call(gas(), receiver, ret, 0, 0, 0, 0)) {
                                                  reRevert()
                                              }
                                          }
                                      }
                                  }
                      
                                  let emptyPtr := mload(0x40)
                                  mstore(0x40, add(emptyPtr, 0xc0))
                                  returnAmount := callSwap(emptyPtr, srcToken, amount, caller(), recipient, minReturn, eq(claimed, 0))
                              }
                          }
                      }
                      
                      // File: @openzeppelin/contracts/utils/math/SafeCast.sol
                      
                      
                      // OpenZeppelin Contracts (last updated v4.8.0) (utils/math/SafeCast.sol)
                      // This file was procedurally generated from scripts/generate/templates/SafeCast.js.
                      
                      pragma solidity ^0.8.0;
                      
                      /**
                       * @dev Wrappers over Solidity's uintXX/intXX casting operators with added overflow
                       * checks.
                       *
                       * Downcasting from uint256/int256 in Solidity does not revert on overflow. This can
                       * easily result in undesired exploitation or bugs, since developers usually
                       * assume that overflows raise errors. `SafeCast` restores this intuition by
                       * reverting the transaction when such an operation overflows.
                       *
                       * Using this library instead of the unchecked operations eliminates an entire
                       * class of bugs, so it's recommended to use it always.
                       *
                       * Can be combined with {SafeMath} and {SignedSafeMath} to extend it to smaller types, by performing
                       * all math on `uint256` and `int256` and then downcasting.
                       */
                      library SafeCast {
                          /**
                           * @dev Returns the downcasted uint248 from uint256, reverting on
                           * overflow (when the input is greater than largest uint248).
                           *
                           * Counterpart to Solidity's `uint248` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 248 bits
                           *
                           * _Available since v4.7._
                           */
                          function toUint248(uint256 value) internal pure returns (uint248) {
                              require(value <= type(uint248).max, "SafeCast: value doesn't fit in 248 bits");
                              return uint248(value);
                          }
                      
                          /**
                           * @dev Returns the downcasted uint240 from uint256, reverting on
                           * overflow (when the input is greater than largest uint240).
                           *
                           * Counterpart to Solidity's `uint240` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 240 bits
                           *
                           * _Available since v4.7._
                           */
                          function toUint240(uint256 value) internal pure returns (uint240) {
                              require(value <= type(uint240).max, "SafeCast: value doesn't fit in 240 bits");
                              return uint240(value);
                          }
                      
                          /**
                           * @dev Returns the downcasted uint232 from uint256, reverting on
                           * overflow (when the input is greater than largest uint232).
                           *
                           * Counterpart to Solidity's `uint232` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 232 bits
                           *
                           * _Available since v4.7._
                           */
                          function toUint232(uint256 value) internal pure returns (uint232) {
                              require(value <= type(uint232).max, "SafeCast: value doesn't fit in 232 bits");
                              return uint232(value);
                          }
                      
                          /**
                           * @dev Returns the downcasted uint224 from uint256, reverting on
                           * overflow (when the input is greater than largest uint224).
                           *
                           * Counterpart to Solidity's `uint224` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 224 bits
                           *
                           * _Available since v4.2._
                           */
                          function toUint224(uint256 value) internal pure returns (uint224) {
                              require(value <= type(uint224).max, "SafeCast: value doesn't fit in 224 bits");
                              return uint224(value);
                          }
                      
                          /**
                           * @dev Returns the downcasted uint216 from uint256, reverting on
                           * overflow (when the input is greater than largest uint216).
                           *
                           * Counterpart to Solidity's `uint216` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 216 bits
                           *
                           * _Available since v4.7._
                           */
                          function toUint216(uint256 value) internal pure returns (uint216) {
                              require(value <= type(uint216).max, "SafeCast: value doesn't fit in 216 bits");
                              return uint216(value);
                          }
                      
                          /**
                           * @dev Returns the downcasted uint208 from uint256, reverting on
                           * overflow (when the input is greater than largest uint208).
                           *
                           * Counterpart to Solidity's `uint208` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 208 bits
                           *
                           * _Available since v4.7._
                           */
                          function toUint208(uint256 value) internal pure returns (uint208) {
                              require(value <= type(uint208).max, "SafeCast: value doesn't fit in 208 bits");
                              return uint208(value);
                          }
                      
                          /**
                           * @dev Returns the downcasted uint200 from uint256, reverting on
                           * overflow (when the input is greater than largest uint200).
                           *
                           * Counterpart to Solidity's `uint200` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 200 bits
                           *
                           * _Available since v4.7._
                           */
                          function toUint200(uint256 value) internal pure returns (uint200) {
                              require(value <= type(uint200).max, "SafeCast: value doesn't fit in 200 bits");
                              return uint200(value);
                          }
                      
                          /**
                           * @dev Returns the downcasted uint192 from uint256, reverting on
                           * overflow (when the input is greater than largest uint192).
                           *
                           * Counterpart to Solidity's `uint192` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 192 bits
                           *
                           * _Available since v4.7._
                           */
                          function toUint192(uint256 value) internal pure returns (uint192) {
                              require(value <= type(uint192).max, "SafeCast: value doesn't fit in 192 bits");
                              return uint192(value);
                          }
                      
                          /**
                           * @dev Returns the downcasted uint184 from uint256, reverting on
                           * overflow (when the input is greater than largest uint184).
                           *
                           * Counterpart to Solidity's `uint184` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 184 bits
                           *
                           * _Available since v4.7._
                           */
                          function toUint184(uint256 value) internal pure returns (uint184) {
                              require(value <= type(uint184).max, "SafeCast: value doesn't fit in 184 bits");
                              return uint184(value);
                          }
                      
                          /**
                           * @dev Returns the downcasted uint176 from uint256, reverting on
                           * overflow (when the input is greater than largest uint176).
                           *
                           * Counterpart to Solidity's `uint176` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 176 bits
                           *
                           * _Available since v4.7._
                           */
                          function toUint176(uint256 value) internal pure returns (uint176) {
                              require(value <= type(uint176).max, "SafeCast: value doesn't fit in 176 bits");
                              return uint176(value);
                          }
                      
                          /**
                           * @dev Returns the downcasted uint168 from uint256, reverting on
                           * overflow (when the input is greater than largest uint168).
                           *
                           * Counterpart to Solidity's `uint168` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 168 bits
                           *
                           * _Available since v4.7._
                           */
                          function toUint168(uint256 value) internal pure returns (uint168) {
                              require(value <= type(uint168).max, "SafeCast: value doesn't fit in 168 bits");
                              return uint168(value);
                          }
                      
                          /**
                           * @dev Returns the downcasted uint160 from uint256, reverting on
                           * overflow (when the input is greater than largest uint160).
                           *
                           * Counterpart to Solidity's `uint160` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 160 bits
                           *
                           * _Available since v4.7._
                           */
                          function toUint160(uint256 value) internal pure returns (uint160) {
                              require(value <= type(uint160).max, "SafeCast: value doesn't fit in 160 bits");
                              return uint160(value);
                          }
                      
                          /**
                           * @dev Returns the downcasted uint152 from uint256, reverting on
                           * overflow (when the input is greater than largest uint152).
                           *
                           * Counterpart to Solidity's `uint152` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 152 bits
                           *
                           * _Available since v4.7._
                           */
                          function toUint152(uint256 value) internal pure returns (uint152) {
                              require(value <= type(uint152).max, "SafeCast: value doesn't fit in 152 bits");
                              return uint152(value);
                          }
                      
                          /**
                           * @dev Returns the downcasted uint144 from uint256, reverting on
                           * overflow (when the input is greater than largest uint144).
                           *
                           * Counterpart to Solidity's `uint144` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 144 bits
                           *
                           * _Available since v4.7._
                           */
                          function toUint144(uint256 value) internal pure returns (uint144) {
                              require(value <= type(uint144).max, "SafeCast: value doesn't fit in 144 bits");
                              return uint144(value);
                          }
                      
                          /**
                           * @dev Returns the downcasted uint136 from uint256, reverting on
                           * overflow (when the input is greater than largest uint136).
                           *
                           * Counterpart to Solidity's `uint136` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 136 bits
                           *
                           * _Available since v4.7._
                           */
                          function toUint136(uint256 value) internal pure returns (uint136) {
                              require(value <= type(uint136).max, "SafeCast: value doesn't fit in 136 bits");
                              return uint136(value);
                          }
                      
                          /**
                           * @dev Returns the downcasted uint128 from uint256, reverting on
                           * overflow (when the input is greater than largest uint128).
                           *
                           * Counterpart to Solidity's `uint128` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 128 bits
                           *
                           * _Available since v2.5._
                           */
                          function toUint128(uint256 value) internal pure returns (uint128) {
                              require(value <= type(uint128).max, "SafeCast: value doesn't fit in 128 bits");
                              return uint128(value);
                          }
                      
                          /**
                           * @dev Returns the downcasted uint120 from uint256, reverting on
                           * overflow (when the input is greater than largest uint120).
                           *
                           * Counterpart to Solidity's `uint120` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 120 bits
                           *
                           * _Available since v4.7._
                           */
                          function toUint120(uint256 value) internal pure returns (uint120) {
                              require(value <= type(uint120).max, "SafeCast: value doesn't fit in 120 bits");
                              return uint120(value);
                          }
                      
                          /**
                           * @dev Returns the downcasted uint112 from uint256, reverting on
                           * overflow (when the input is greater than largest uint112).
                           *
                           * Counterpart to Solidity's `uint112` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 112 bits
                           *
                           * _Available since v4.7._
                           */
                          function toUint112(uint256 value) internal pure returns (uint112) {
                              require(value <= type(uint112).max, "SafeCast: value doesn't fit in 112 bits");
                              return uint112(value);
                          }
                      
                          /**
                           * @dev Returns the downcasted uint104 from uint256, reverting on
                           * overflow (when the input is greater than largest uint104).
                           *
                           * Counterpart to Solidity's `uint104` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 104 bits
                           *
                           * _Available since v4.7._
                           */
                          function toUint104(uint256 value) internal pure returns (uint104) {
                              require(value <= type(uint104).max, "SafeCast: value doesn't fit in 104 bits");
                              return uint104(value);
                          }
                      
                          /**
                           * @dev Returns the downcasted uint96 from uint256, reverting on
                           * overflow (when the input is greater than largest uint96).
                           *
                           * Counterpart to Solidity's `uint96` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 96 bits
                           *
                           * _Available since v4.2._
                           */
                          function toUint96(uint256 value) internal pure returns (uint96) {
                              require(value <= type(uint96).max, "SafeCast: value doesn't fit in 96 bits");
                              return uint96(value);
                          }
                      
                          /**
                           * @dev Returns the downcasted uint88 from uint256, reverting on
                           * overflow (when the input is greater than largest uint88).
                           *
                           * Counterpart to Solidity's `uint88` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 88 bits
                           *
                           * _Available since v4.7._
                           */
                          function toUint88(uint256 value) internal pure returns (uint88) {
                              require(value <= type(uint88).max, "SafeCast: value doesn't fit in 88 bits");
                              return uint88(value);
                          }
                      
                          /**
                           * @dev Returns the downcasted uint80 from uint256, reverting on
                           * overflow (when the input is greater than largest uint80).
                           *
                           * Counterpart to Solidity's `uint80` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 80 bits
                           *
                           * _Available since v4.7._
                           */
                          function toUint80(uint256 value) internal pure returns (uint80) {
                              require(value <= type(uint80).max, "SafeCast: value doesn't fit in 80 bits");
                              return uint80(value);
                          }
                      
                          /**
                           * @dev Returns the downcasted uint72 from uint256, reverting on
                           * overflow (when the input is greater than largest uint72).
                           *
                           * Counterpart to Solidity's `uint72` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 72 bits
                           *
                           * _Available since v4.7._
                           */
                          function toUint72(uint256 value) internal pure returns (uint72) {
                              require(value <= type(uint72).max, "SafeCast: value doesn't fit in 72 bits");
                              return uint72(value);
                          }
                      
                          /**
                           * @dev Returns the downcasted uint64 from uint256, reverting on
                           * overflow (when the input is greater than largest uint64).
                           *
                           * Counterpart to Solidity's `uint64` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 64 bits
                           *
                           * _Available since v2.5._
                           */
                          function toUint64(uint256 value) internal pure returns (uint64) {
                              require(value <= type(uint64).max, "SafeCast: value doesn't fit in 64 bits");
                              return uint64(value);
                          }
                      
                          /**
                           * @dev Returns the downcasted uint56 from uint256, reverting on
                           * overflow (when the input is greater than largest uint56).
                           *
                           * Counterpart to Solidity's `uint56` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 56 bits
                           *
                           * _Available since v4.7._
                           */
                          function toUint56(uint256 value) internal pure returns (uint56) {
                              require(value <= type(uint56).max, "SafeCast: value doesn't fit in 56 bits");
                              return uint56(value);
                          }
                      
                          /**
                           * @dev Returns the downcasted uint48 from uint256, reverting on
                           * overflow (when the input is greater than largest uint48).
                           *
                           * Counterpart to Solidity's `uint48` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 48 bits
                           *
                           * _Available since v4.7._
                           */
                          function toUint48(uint256 value) internal pure returns (uint48) {
                              require(value <= type(uint48).max, "SafeCast: value doesn't fit in 48 bits");
                              return uint48(value);
                          }
                      
                          /**
                           * @dev Returns the downcasted uint40 from uint256, reverting on
                           * overflow (when the input is greater than largest uint40).
                           *
                           * Counterpart to Solidity's `uint40` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 40 bits
                           *
                           * _Available since v4.7._
                           */
                          function toUint40(uint256 value) internal pure returns (uint40) {
                              require(value <= type(uint40).max, "SafeCast: value doesn't fit in 40 bits");
                              return uint40(value);
                          }
                      
                          /**
                           * @dev Returns the downcasted uint32 from uint256, reverting on
                           * overflow (when the input is greater than largest uint32).
                           *
                           * Counterpart to Solidity's `uint32` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 32 bits
                           *
                           * _Available since v2.5._
                           */
                          function toUint32(uint256 value) internal pure returns (uint32) {
                              require(value <= type(uint32).max, "SafeCast: value doesn't fit in 32 bits");
                              return uint32(value);
                          }
                      
                          /**
                           * @dev Returns the downcasted uint24 from uint256, reverting on
                           * overflow (when the input is greater than largest uint24).
                           *
                           * Counterpart to Solidity's `uint24` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 24 bits
                           *
                           * _Available since v4.7._
                           */
                          function toUint24(uint256 value) internal pure returns (uint24) {
                              require(value <= type(uint24).max, "SafeCast: value doesn't fit in 24 bits");
                              return uint24(value);
                          }
                      
                          /**
                           * @dev Returns the downcasted uint16 from uint256, reverting on
                           * overflow (when the input is greater than largest uint16).
                           *
                           * Counterpart to Solidity's `uint16` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 16 bits
                           *
                           * _Available since v2.5._
                           */
                          function toUint16(uint256 value) internal pure returns (uint16) {
                              require(value <= type(uint16).max, "SafeCast: value doesn't fit in 16 bits");
                              return uint16(value);
                          }
                      
                          /**
                           * @dev Returns the downcasted uint8 from uint256, reverting on
                           * overflow (when the input is greater than largest uint8).
                           *
                           * Counterpart to Solidity's `uint8` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 8 bits
                           *
                           * _Available since v2.5._
                           */
                          function toUint8(uint256 value) internal pure returns (uint8) {
                              require(value <= type(uint8).max, "SafeCast: value doesn't fit in 8 bits");
                              return uint8(value);
                          }
                      
                          /**
                           * @dev Converts a signed int256 into an unsigned uint256.
                           *
                           * Requirements:
                           *
                           * - input must be greater than or equal to 0.
                           *
                           * _Available since v3.0._
                           */
                          function toUint256(int256 value) internal pure returns (uint256) {
                              require(value >= 0, "SafeCast: value must be positive");
                              return uint256(value);
                          }
                      
                          /**
                           * @dev Returns the downcasted int248 from int256, reverting on
                           * overflow (when the input is less than smallest int248 or
                           * greater than largest int248).
                           *
                           * Counterpart to Solidity's `int248` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 248 bits
                           *
                           * _Available since v4.7._
                           */
                          function toInt248(int256 value) internal pure returns (int248 downcasted) {
                              downcasted = int248(value);
                              require(downcasted == value, "SafeCast: value doesn't fit in 248 bits");
                          }
                      
                          /**
                           * @dev Returns the downcasted int240 from int256, reverting on
                           * overflow (when the input is less than smallest int240 or
                           * greater than largest int240).
                           *
                           * Counterpart to Solidity's `int240` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 240 bits
                           *
                           * _Available since v4.7._
                           */
                          function toInt240(int256 value) internal pure returns (int240 downcasted) {
                              downcasted = int240(value);
                              require(downcasted == value, "SafeCast: value doesn't fit in 240 bits");
                          }
                      
                          /**
                           * @dev Returns the downcasted int232 from int256, reverting on
                           * overflow (when the input is less than smallest int232 or
                           * greater than largest int232).
                           *
                           * Counterpart to Solidity's `int232` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 232 bits
                           *
                           * _Available since v4.7._
                           */
                          function toInt232(int256 value) internal pure returns (int232 downcasted) {
                              downcasted = int232(value);
                              require(downcasted == value, "SafeCast: value doesn't fit in 232 bits");
                          }
                      
                          /**
                           * @dev Returns the downcasted int224 from int256, reverting on
                           * overflow (when the input is less than smallest int224 or
                           * greater than largest int224).
                           *
                           * Counterpart to Solidity's `int224` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 224 bits
                           *
                           * _Available since v4.7._
                           */
                          function toInt224(int256 value) internal pure returns (int224 downcasted) {
                              downcasted = int224(value);
                              require(downcasted == value, "SafeCast: value doesn't fit in 224 bits");
                          }
                      
                          /**
                           * @dev Returns the downcasted int216 from int256, reverting on
                           * overflow (when the input is less than smallest int216 or
                           * greater than largest int216).
                           *
                           * Counterpart to Solidity's `int216` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 216 bits
                           *
                           * _Available since v4.7._
                           */
                          function toInt216(int256 value) internal pure returns (int216 downcasted) {
                              downcasted = int216(value);
                              require(downcasted == value, "SafeCast: value doesn't fit in 216 bits");
                          }
                      
                          /**
                           * @dev Returns the downcasted int208 from int256, reverting on
                           * overflow (when the input is less than smallest int208 or
                           * greater than largest int208).
                           *
                           * Counterpart to Solidity's `int208` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 208 bits
                           *
                           * _Available since v4.7._
                           */
                          function toInt208(int256 value) internal pure returns (int208 downcasted) {
                              downcasted = int208(value);
                              require(downcasted == value, "SafeCast: value doesn't fit in 208 bits");
                          }
                      
                          /**
                           * @dev Returns the downcasted int200 from int256, reverting on
                           * overflow (when the input is less than smallest int200 or
                           * greater than largest int200).
                           *
                           * Counterpart to Solidity's `int200` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 200 bits
                           *
                           * _Available since v4.7._
                           */
                          function toInt200(int256 value) internal pure returns (int200 downcasted) {
                              downcasted = int200(value);
                              require(downcasted == value, "SafeCast: value doesn't fit in 200 bits");
                          }
                      
                          /**
                           * @dev Returns the downcasted int192 from int256, reverting on
                           * overflow (when the input is less than smallest int192 or
                           * greater than largest int192).
                           *
                           * Counterpart to Solidity's `int192` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 192 bits
                           *
                           * _Available since v4.7._
                           */
                          function toInt192(int256 value) internal pure returns (int192 downcasted) {
                              downcasted = int192(value);
                              require(downcasted == value, "SafeCast: value doesn't fit in 192 bits");
                          }
                      
                          /**
                           * @dev Returns the downcasted int184 from int256, reverting on
                           * overflow (when the input is less than smallest int184 or
                           * greater than largest int184).
                           *
                           * Counterpart to Solidity's `int184` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 184 bits
                           *
                           * _Available since v4.7._
                           */
                          function toInt184(int256 value) internal pure returns (int184 downcasted) {
                              downcasted = int184(value);
                              require(downcasted == value, "SafeCast: value doesn't fit in 184 bits");
                          }
                      
                          /**
                           * @dev Returns the downcasted int176 from int256, reverting on
                           * overflow (when the input is less than smallest int176 or
                           * greater than largest int176).
                           *
                           * Counterpart to Solidity's `int176` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 176 bits
                           *
                           * _Available since v4.7._
                           */
                          function toInt176(int256 value) internal pure returns (int176 downcasted) {
                              downcasted = int176(value);
                              require(downcasted == value, "SafeCast: value doesn't fit in 176 bits");
                          }
                      
                          /**
                           * @dev Returns the downcasted int168 from int256, reverting on
                           * overflow (when the input is less than smallest int168 or
                           * greater than largest int168).
                           *
                           * Counterpart to Solidity's `int168` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 168 bits
                           *
                           * _Available since v4.7._
                           */
                          function toInt168(int256 value) internal pure returns (int168 downcasted) {
                              downcasted = int168(value);
                              require(downcasted == value, "SafeCast: value doesn't fit in 168 bits");
                          }
                      
                          /**
                           * @dev Returns the downcasted int160 from int256, reverting on
                           * overflow (when the input is less than smallest int160 or
                           * greater than largest int160).
                           *
                           * Counterpart to Solidity's `int160` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 160 bits
                           *
                           * _Available since v4.7._
                           */
                          function toInt160(int256 value) internal pure returns (int160 downcasted) {
                              downcasted = int160(value);
                              require(downcasted == value, "SafeCast: value doesn't fit in 160 bits");
                          }
                      
                          /**
                           * @dev Returns the downcasted int152 from int256, reverting on
                           * overflow (when the input is less than smallest int152 or
                           * greater than largest int152).
                           *
                           * Counterpart to Solidity's `int152` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 152 bits
                           *
                           * _Available since v4.7._
                           */
                          function toInt152(int256 value) internal pure returns (int152 downcasted) {
                              downcasted = int152(value);
                              require(downcasted == value, "SafeCast: value doesn't fit in 152 bits");
                          }
                      
                          /**
                           * @dev Returns the downcasted int144 from int256, reverting on
                           * overflow (when the input is less than smallest int144 or
                           * greater than largest int144).
                           *
                           * Counterpart to Solidity's `int144` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 144 bits
                           *
                           * _Available since v4.7._
                           */
                          function toInt144(int256 value) internal pure returns (int144 downcasted) {
                              downcasted = int144(value);
                              require(downcasted == value, "SafeCast: value doesn't fit in 144 bits");
                          }
                      
                          /**
                           * @dev Returns the downcasted int136 from int256, reverting on
                           * overflow (when the input is less than smallest int136 or
                           * greater than largest int136).
                           *
                           * Counterpart to Solidity's `int136` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 136 bits
                           *
                           * _Available since v4.7._
                           */
                          function toInt136(int256 value) internal pure returns (int136 downcasted) {
                              downcasted = int136(value);
                              require(downcasted == value, "SafeCast: value doesn't fit in 136 bits");
                          }
                      
                          /**
                           * @dev Returns the downcasted int128 from int256, reverting on
                           * overflow (when the input is less than smallest int128 or
                           * greater than largest int128).
                           *
                           * Counterpart to Solidity's `int128` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 128 bits
                           *
                           * _Available since v3.1._
                           */
                          function toInt128(int256 value) internal pure returns (int128 downcasted) {
                              downcasted = int128(value);
                              require(downcasted == value, "SafeCast: value doesn't fit in 128 bits");
                          }
                      
                          /**
                           * @dev Returns the downcasted int120 from int256, reverting on
                           * overflow (when the input is less than smallest int120 or
                           * greater than largest int120).
                           *
                           * Counterpart to Solidity's `int120` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 120 bits
                           *
                           * _Available since v4.7._
                           */
                          function toInt120(int256 value) internal pure returns (int120 downcasted) {
                              downcasted = int120(value);
                              require(downcasted == value, "SafeCast: value doesn't fit in 120 bits");
                          }
                      
                          /**
                           * @dev Returns the downcasted int112 from int256, reverting on
                           * overflow (when the input is less than smallest int112 or
                           * greater than largest int112).
                           *
                           * Counterpart to Solidity's `int112` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 112 bits
                           *
                           * _Available since v4.7._
                           */
                          function toInt112(int256 value) internal pure returns (int112 downcasted) {
                              downcasted = int112(value);
                              require(downcasted == value, "SafeCast: value doesn't fit in 112 bits");
                          }
                      
                          /**
                           * @dev Returns the downcasted int104 from int256, reverting on
                           * overflow (when the input is less than smallest int104 or
                           * greater than largest int104).
                           *
                           * Counterpart to Solidity's `int104` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 104 bits
                           *
                           * _Available since v4.7._
                           */
                          function toInt104(int256 value) internal pure returns (int104 downcasted) {
                              downcasted = int104(value);
                              require(downcasted == value, "SafeCast: value doesn't fit in 104 bits");
                          }
                      
                          /**
                           * @dev Returns the downcasted int96 from int256, reverting on
                           * overflow (when the input is less than smallest int96 or
                           * greater than largest int96).
                           *
                           * Counterpart to Solidity's `int96` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 96 bits
                           *
                           * _Available since v4.7._
                           */
                          function toInt96(int256 value) internal pure returns (int96 downcasted) {
                              downcasted = int96(value);
                              require(downcasted == value, "SafeCast: value doesn't fit in 96 bits");
                          }
                      
                          /**
                           * @dev Returns the downcasted int88 from int256, reverting on
                           * overflow (when the input is less than smallest int88 or
                           * greater than largest int88).
                           *
                           * Counterpart to Solidity's `int88` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 88 bits
                           *
                           * _Available since v4.7._
                           */
                          function toInt88(int256 value) internal pure returns (int88 downcasted) {
                              downcasted = int88(value);
                              require(downcasted == value, "SafeCast: value doesn't fit in 88 bits");
                          }
                      
                          /**
                           * @dev Returns the downcasted int80 from int256, reverting on
                           * overflow (when the input is less than smallest int80 or
                           * greater than largest int80).
                           *
                           * Counterpart to Solidity's `int80` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 80 bits
                           *
                           * _Available since v4.7._
                           */
                          function toInt80(int256 value) internal pure returns (int80 downcasted) {
                              downcasted = int80(value);
                              require(downcasted == value, "SafeCast: value doesn't fit in 80 bits");
                          }
                      
                          /**
                           * @dev Returns the downcasted int72 from int256, reverting on
                           * overflow (when the input is less than smallest int72 or
                           * greater than largest int72).
                           *
                           * Counterpart to Solidity's `int72` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 72 bits
                           *
                           * _Available since v4.7._
                           */
                          function toInt72(int256 value) internal pure returns (int72 downcasted) {
                              downcasted = int72(value);
                              require(downcasted == value, "SafeCast: value doesn't fit in 72 bits");
                          }
                      
                          /**
                           * @dev Returns the downcasted int64 from int256, reverting on
                           * overflow (when the input is less than smallest int64 or
                           * greater than largest int64).
                           *
                           * Counterpart to Solidity's `int64` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 64 bits
                           *
                           * _Available since v3.1._
                           */
                          function toInt64(int256 value) internal pure returns (int64 downcasted) {
                              downcasted = int64(value);
                              require(downcasted == value, "SafeCast: value doesn't fit in 64 bits");
                          }
                      
                          /**
                           * @dev Returns the downcasted int56 from int256, reverting on
                           * overflow (when the input is less than smallest int56 or
                           * greater than largest int56).
                           *
                           * Counterpart to Solidity's `int56` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 56 bits
                           *
                           * _Available since v4.7._
                           */
                          function toInt56(int256 value) internal pure returns (int56 downcasted) {
                              downcasted = int56(value);
                              require(downcasted == value, "SafeCast: value doesn't fit in 56 bits");
                          }
                      
                          /**
                           * @dev Returns the downcasted int48 from int256, reverting on
                           * overflow (when the input is less than smallest int48 or
                           * greater than largest int48).
                           *
                           * Counterpart to Solidity's `int48` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 48 bits
                           *
                           * _Available since v4.7._
                           */
                          function toInt48(int256 value) internal pure returns (int48 downcasted) {
                              downcasted = int48(value);
                              require(downcasted == value, "SafeCast: value doesn't fit in 48 bits");
                          }
                      
                          /**
                           * @dev Returns the downcasted int40 from int256, reverting on
                           * overflow (when the input is less than smallest int40 or
                           * greater than largest int40).
                           *
                           * Counterpart to Solidity's `int40` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 40 bits
                           *
                           * _Available since v4.7._
                           */
                          function toInt40(int256 value) internal pure returns (int40 downcasted) {
                              downcasted = int40(value);
                              require(downcasted == value, "SafeCast: value doesn't fit in 40 bits");
                          }
                      
                          /**
                           * @dev Returns the downcasted int32 from int256, reverting on
                           * overflow (when the input is less than smallest int32 or
                           * greater than largest int32).
                           *
                           * Counterpart to Solidity's `int32` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 32 bits
                           *
                           * _Available since v3.1._
                           */
                          function toInt32(int256 value) internal pure returns (int32 downcasted) {
                              downcasted = int32(value);
                              require(downcasted == value, "SafeCast: value doesn't fit in 32 bits");
                          }
                      
                          /**
                           * @dev Returns the downcasted int24 from int256, reverting on
                           * overflow (when the input is less than smallest int24 or
                           * greater than largest int24).
                           *
                           * Counterpart to Solidity's `int24` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 24 bits
                           *
                           * _Available since v4.7._
                           */
                          function toInt24(int256 value) internal pure returns (int24 downcasted) {
                              downcasted = int24(value);
                              require(downcasted == value, "SafeCast: value doesn't fit in 24 bits");
                          }
                      
                          /**
                           * @dev Returns the downcasted int16 from int256, reverting on
                           * overflow (when the input is less than smallest int16 or
                           * greater than largest int16).
                           *
                           * Counterpart to Solidity's `int16` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 16 bits
                           *
                           * _Available since v3.1._
                           */
                          function toInt16(int256 value) internal pure returns (int16 downcasted) {
                              downcasted = int16(value);
                              require(downcasted == value, "SafeCast: value doesn't fit in 16 bits");
                          }
                      
                          /**
                           * @dev Returns the downcasted int8 from int256, reverting on
                           * overflow (when the input is less than smallest int8 or
                           * greater than largest int8).
                           *
                           * Counterpart to Solidity's `int8` operator.
                           *
                           * Requirements:
                           *
                           * - input must fit into 8 bits
                           *
                           * _Available since v3.1._
                           */
                          function toInt8(int256 value) internal pure returns (int8 downcasted) {
                              downcasted = int8(value);
                              require(downcasted == value, "SafeCast: value doesn't fit in 8 bits");
                          }
                      
                          /**
                           * @dev Converts an unsigned uint256 into a signed int256.
                           *
                           * Requirements:
                           *
                           * - input must be less than or equal to maxInt256.
                           *
                           * _Available since v3.0._
                           */
                          function toInt256(uint256 value) internal pure returns (int256) {
                              // Note: Unsafe cast below is okay because `type(int256).max` is guaranteed to be positive
                              require(value <= uint256(type(int256).max), "SafeCast: value doesn't fit in an int256");
                              return int256(value);
                          }
                      }
                      
                      // File: contracts/interfaces/IUniswapV3.sol
                      
                      
                      pragma solidity ^0.8.0;
                      pragma experimental ABIEncoderV2;
                      
                      interface IUniswapV3Pool {
                          /// @notice Swap token0 for token1, or token1 for token0
                          /// @dev The caller of this method receives a callback in the form of IUniswapV3SwapCallback#uniswapV3SwapCallback
                          /// @param recipient The address to receive the output of the swap
                          /// @param zeroForOne The direction of the swap, true for token0 to token1, false for token1 to token0
                          /// @param amountSpecified The amount of the swap, which implicitly configures the swap as exact input (positive), or exact output (negative)
                          /// @param sqrtPriceLimitX96 The Q64.96 sqrt price limit. If zero for one, the price cannot be less than this
                          /// value after the swap. If one for zero, the price cannot be greater than this value after the swap
                          /// @param data Any data to be passed through to the callback
                          /// @return amount0 The delta of the balance of token0 of the pool, exact when negative, minimum when positive
                          /// @return amount1 The delta of the balance of token1 of the pool, exact when negative, minimum when positive
                          function swap(
                              address recipient,
                              bool zeroForOne,
                              int256 amountSpecified,
                              uint160 sqrtPriceLimitX96,
                              bytes calldata data
                          ) external returns (int256 amount0, int256 amount1);
                      
                          /// @notice The first of the two tokens of the pool, sorted by address
                          /// @return The token contract address
                          function token0() external view returns (address);
                      
                          /// @notice The second of the two tokens of the pool, sorted by address
                          /// @return The token contract address
                          function token1() external view returns (address);
                      
                          /// @notice The pool's fee in hundredths of a bip, i.e. 1e-6
                          /// @return The fee
                          function fee() external view returns (uint24);
                      }
                      
                      /// @title Callback for IUniswapV3PoolActions#swap
                      /// @notice Any contract that calls IUniswapV3PoolActions#swap must implement this interface
                      interface IUniswapV3SwapCallback {
                          /// @notice Called to `msg.sender` after executing a swap via IUniswapV3Pool#swap.
                          /// @dev In the implementation you must pay the pool tokens owed for the swap.
                          /// The caller of this method must be checked to be a UniswapV3Pool deployed by the canonical UniswapV3Factory.
                          /// amount0Delta and amount1Delta can both be 0 if no tokens were swapped.
                          /// @param amount0Delta The amount of token0 that was sent (negative) or must be received (positive) by the pool by
                          /// the end of the swap. If positive, the callback must send that amount of token0 to the pool.
                          /// @param amount1Delta The amount of token1 that was sent (negative) or must be received (positive) by the pool by
                          /// the end of the swap. If positive, the callback must send that amount of token1 to the pool.
                          /// @param data Any data passed through by the caller via the IUniswapV3PoolActions#swap call
                          function uniswapV3SwapCallback(int256 amount0Delta, int256 amount1Delta, bytes calldata data) external;
                      }
                      
                      /// @title Callback for IAlgebraPoolActions#swap
                      /// @notice Any contract that calls IAlgebraPoolActions#swap must implement this interface
                      /// @dev Credit to Uniswap Labs under GPL-2.0-or-later license:
                      /// https://github.com/Uniswap/v3-core/tree/main/contracts/interfaces
                      interface IAlgebraSwapCallback {
                          /// @notice Called to `msg.sender` after executing a swap via IAlgebraPool#swap.
                          /// @dev In the implementation you must pay the pool tokens owed for the swap.
                          /// The caller of this method must be checked to be a AlgebraPool deployed by the canonical AlgebraFactory.
                          /// amount0Delta and amount1Delta can both be 0 if no tokens were swapped.
                          /// @param amount0Delta The amount of token0 that was sent (negative) or must be received (positive) by the pool by
                          /// the end of the swap. If positive, the callback must send that amount of token0 to the pool.
                          /// @param amount1Delta The amount of token1 that was sent (negative) or must be received (positive) by the pool by
                          /// the end of the swap. If positive, the callback must send that amount of token1 to the pool.
                          /// @param data Any data passed through by the caller via the IAlgebraPoolActions#swap call
                          function algebraSwapCallback(int256 amount0Delta, int256 amount1Delta, bytes calldata data) external;
                      }
                      
                      /// @title Callback for IPancakeV3PoolActions#swap
                      /// @notice Any contract that calls IPancakeV3PoolActions#swap must implement this interface
                      interface IPancakeV3SwapCallback {
                          /// @notice Called to `msg.sender` after executing a swap via IPancakeV3Pool#swap.
                          /// @dev In the implementation you must pay the pool tokens owed for the swap.
                          /// The caller of this method must be checked to be a PancakeV3Pool deployed by the canonical PancakeV3Factory.
                          /// amount0Delta and amount1Delta can both be 0 if no tokens were swapped.
                          /// @param amount0Delta The amount of token0 that was sent (negative) or must be received (positive) by the pool by
                          /// the end of the swap. If positive, the callback must send that amount of token0 to the pool.
                          /// @param amount1Delta The amount of token1 that was sent (negative) or must be received (positive) by the pool by
                          /// the end of the swap. If positive, the callback must send that amount of token1 to the pool.
                          /// @param data Any data passed through by the caller via the IPancakeV3PoolActions#swap call
                          function pancakeV3SwapCallback(int256 amount0Delta, int256 amount1Delta, bytes calldata data) external;
                      }
                      
                      /// @title Callback for IRamsesV2PoolActions#swap
                      /// @notice Any contract that calls IRamsesV2PoolActions#swap must implement this interface
                      interface IRamsesV2SwapCallback {
                          /// @notice Called to `msg.sender` after executing a swap via IRamsesV2Pool#swap.
                          /// @dev In the implementation you must pay the pool tokens owed for the swap.
                          /// The caller of this method must be checked to be a RamsesV2Pool deployed by the canonical RamsesV2Factory.
                          /// amount0Delta and amount1Delta can both be 0 if no tokens were swapped.
                          /// @param amount0Delta The amount of token0 that was sent (negative) or must be received (positive) by the pool by
                          /// the end of the swap. If positive, the callback must send that amount of token0 to the pool.
                          /// @param amount1Delta The amount of token1 that was sent (negative) or must be received (positive) by the pool by
                          /// the end of the swap. If positive, the callback must send that amount of token1 to the pool.
                          /// @param data Any data passed through by the caller via the IRamsesV2PoolActions#swap call
                          function ramsesV2SwapCallback(int256 amount0Delta, int256 amount1Delta, bytes calldata data) external;
                      }
                      
                      /// @title Callback for IAgniPoolActions#swap
                      /// @notice Any contract that calls IAgniPoolActions#swap must implement this interface
                      interface IAgniSwapCallback {
                          /// @notice Called to `msg.sender` after executing a swap via IAgniPool#swap.
                          /// @dev In the implementation you must pay the pool tokens owed for the swap.
                          /// The caller of this method must be checked to be a AgniPool deployed by the canonical AgniFactory.
                          /// amount0Delta and amount1Delta can both be 0 if no tokens were swapped.
                          /// @param amount0Delta The amount of token0 that was sent (negative) or must be received (positive) by the pool by
                          /// the end of the swap. If positive, the callback must send that amount of token0 to the pool.
                          /// @param amount1Delta The amount of token1 that was sent (negative) or must be received (positive) by the pool by
                          /// the end of the swap. If positive, the callback must send that amount of token1 to the pool.
                          /// @param data Any data passed through by the caller via the IAgniPoolActions#swap call
                          function agniSwapCallback(int256 amount0Delta, int256 amount1Delta, bytes calldata data) external;
                      }
                      
                      /// @title Callback for IFusionXV3PoolActions#swap
                      /// @notice Any contract that calls IFusionXV3PoolActions#swap must implement this interface
                      interface IFusionXV3SwapCallback {
                          /// @notice Called to `msg.sender` after executing a swap via IFusionXV3Pool#swap.
                          /// @dev In the implementation you must pay the pool tokens owed for the swap.
                          /// The caller of this method must be checked to be a FusionXV3Pool deployed by the canonical FusionXV3Factory.
                          /// amount0Delta and amount1Delta can both be 0 if no tokens were swapped.
                          /// @param amount0Delta The amount of token0 that was sent (negative) or must be received (positive) by the pool by
                          /// the end of the swap. If positive, the callback must send that amount of token0 to the pool.
                          /// @param amount1Delta The amount of token1 that was sent (negative) or must be received (positive) by the pool by
                          /// the end of the swap. If positive, the callback must send that amount of token1 to the pool.
                          /// @param data Any data passed through by the caller via the IFusionXV3PoolActions#swap call
                          function fusionXV3SwapCallback(int256 amount0Delta, int256 amount1Delta, bytes calldata data) external;
                      }
                      
                      /// @title Callback for ISupV3PoolActions#swap
                      /// @notice Any contract that calls ISupV3PoolActions#swap must implement this interface
                      interface ISupV3SwapCallback {
                          /// @notice Called to `msg.sender` after executing a swap via ISupV3Pool#swap.
                          /// @dev In the implementation you must pay the pool tokens owed for the swap.
                          /// The caller of this method must be checked to be a SUPV3Pool deployed by the canonical SupV3Factory.
                          /// amount0Delta and amount1Delta can both be 0 if no tokens were swapped.
                          /// @param amount0Delta The amount of token0 that was sent (negative) or must be received (positive) by the pool by
                          /// the end of the swap. If positive, the callback must send that amount of token0 to the pool.
                          /// @param amount1Delta The amount of token1 that was sent (negative) or must be received (positive) by the pool by
                          /// the end of the swap. If positive, the callback must send that amount of token1 to the pool.
                          /// @param data Any data passed through by the caller via the ISupV3PoolActions#swap call
                          function supV3SwapCallback(int256 amount0Delta, int256 amount1Delta, bytes calldata data) external;
                      }
                      /// @title Callback for IZebraV3PoolActions#swap
                      /// @notice Any contract that calls IZebraV3PoolActions#swap must implement this interface
                      interface IZebraV3SwapCallback {
                          /// @notice Called to `msg.sender` after executing a swap via IZebraV3Pool#swap.
                          /// @dev In the implementation you must pay the pool tokens owed for the swap.
                          /// The caller of this method must be checked to be a ZebraV3Pool deployed by the canonical ZebraV3Factory.
                          /// amount0Delta and amount1Delta can both be 0 if no tokens were swapped.
                          /// @param amount0Delta The amount of token0 that was sent (negative) or must be received (positive) by the pool by
                          /// the end of the swap. If positive, the callback must send that amount of token0 to the pool.
                          /// @param amount1Delta The amount of token1 that was sent (negative) or must be received (positive) by the pool by
                          /// the end of the swap. If positive, the callback must send that amount of token1 to the pool.
                          /// @param data Any data passed through by the caller via the IZebraV3PoolActions#swap call
                          function zebraV3SwapCallback(int256 amount0Delta, int256 amount1Delta, bytes calldata data) external;
                      }
                      /// @title Callback for IKellerPoolActions#swap
                      /// @notice Any contract that calls IKellerPoolActions#swap must implement this interface
                      interface IKellerSwapCallback {
                          /// @notice Called to `msg.sender` after executing a swap via IKellerPool#swap.
                          /// @dev In the implementation you must pay the pool tokens owed for the swap.
                          /// The caller of this method must be checked to be a KellerPool deployed by the canonical KellerFactory.
                          /// amount0Delta and amount1Delta can both be 0 if no tokens were swapped.
                          /// @param amount0Delta The amount of token0 that was sent (negative) or must be received (positive) by the pool by
                          /// the end of the swap. If positive, the callback must send that amount of token0 to the pool.
                          /// @param amount1Delta The amount of token1 that was sent (negative) or must be received (positive) by the pool by
                          /// the end of the swap. If positive, the callback must send that amount of token1 to the pool.
                          /// @param data Any data passed through by the caller via the IKellerPoolActions#swap call
                          function KellerSwapCallback(int256 amount0Delta, int256 amount1Delta, bytes calldata data) external;
                      }
                      
                      // File: contracts/interfaces/IWETH.sol
                      
                      
                      pragma solidity ^0.8.0;
                      
                      /// @title Interface for WETH tokens
                      interface IWETH is IERC20 {
                          function deposit() external payable;
                      
                          function withdraw(uint256 amount) external;
                      }
                      
                      // File: contracts/UniswapV3Exchange.sol
                      
                      
                      pragma solidity ^0.8.0;
                      
                      
                      
                      
                      
                      
                      contract UniswapV3Exchange is EthRejector, Permitable, IUniswapV3SwapCallback {
                          using Address for address payable;
                          using SafeERC20 for IERC20;
                          using SafeMath for uint256;
                      
                          uint256 private constant _ONE_FOR_ZERO_MASK = 1 << 255;
                          uint256 private constant _WETH_WRAP_MASK = 1 << 254;
                          uint256 private constant _WETH_UNWRAP_MASK = 1 << 253;
                          bytes32 private constant _POOL_INIT_CODE_HASH = 0xe34f199b19b2b4f47f68442619d555527d244f78a3297ea89325f843f87b8b54;
                          bytes32 private constant _FF_FACTORY = 0xff1F98431c8aD98523631AE4a59f267346ea31F9840000000000000000000000;
                          bytes32 private constant _SELECTORS = 0x0dfe1681d21220a7ddca3f430000000000000000000000000000000000000000;
                          uint256 private constant _ADDRESS_MASK = 0x000000000000000000000000ffffffffffffffffffffffffffffffffffffffff;
                          /// @dev The minimum value that can be returned from #getSqrtRatioAtTick. Equivalent to getSqrtRatioAtTick(MIN_TICK)
                          uint160 private constant _MIN_SQRT_RATIO = 4295128739 + 1;
                          /// @dev The maximum value that can be returned from #getSqrtRatioAtTick. Equivalent to getSqrtRatioAtTick(MAX_TICK)
                          uint160 private constant _MAX_SQRT_RATIO = 1461446703485210103287273052203988822378723970342 - 1;
                          /// @dev Change for different chains
                          address private constant _WETH = 0xC02aaA39b223FE8D0A0e5C4F27eAD9083C756Cc2;
                      
                          /// @notice Same as `uniswapV3SwapTo` but calls permit first,
                          /// allowing to approve token spending and make a swap in one transaction.
                          /// @param recipient Address that will receive swap funds
                          /// @param amount Amount of source tokens to swap
                          /// @param minReturn Minimal allowed returnAmount to make transaction commit
                          /// @param pools Pools chain used for swaps. Pools src and dst tokens should match to make swap happen
                          /// @param permit Should contain valid permit that can be used in `IERC20Permit.permit` calls.
                          /// @param srcToken Source token
                          /// See tests for examples
                          function uniswapV3SwapToWithPermit(
                              address payable recipient,
                              uint256 amount,
                              uint256 minReturn,
                              uint256[] calldata pools,
                              bytes calldata permit,
                              IERC20 srcToken
                          ) external returns (uint256 returnAmount) {
                              _permit(address(srcToken), permit, false);
                              return _uniswapV3Swap(recipient, amount, minReturn, pools, permit);
                          }
                      
                          /// @notice Performs swap using Uniswap V3 exchange. Wraps and unwraps ETH if required.
                          /// Sending non-zero `msg.value` for anything but ETH swaps is prohibited
                          /// @param recipient Address that will receive swap funds
                          /// @param amount Amount of source tokens to swap
                          /// @param minReturn Minimal allowed returnAmount to make transaction commit
                          /// @param pools Pools chain used for swaps. Pools src and dst tokens should match to make swap happen
                          function uniswapV3SwapTo(
                              address payable recipient,
                              uint256 amount,
                              uint256 minReturn,
                              uint256[] calldata pools
                          ) external payable returns (uint256 returnAmount) {
                              return _uniswapV3Swap(recipient, amount, minReturn, pools, new bytes(0));
                          }
                      
                          function _uniswapV3Swap(
                              address payable recipient,
                              uint256 amount,
                              uint256 minReturn,
                              uint256[] calldata pools,
                              bytes memory permit
                          ) internal returns (uint256 returnAmount) {
                              uint256 len = pools.length;
                              address dstToken;
                              require(len > 0, "UniswapV3: empty pools");
                              uint256 lastIndex = len - 1;
                              returnAmount = amount;
                              bool wrapWeth = pools[0] & _WETH_WRAP_MASK > 0;
                              bool unwrapWeth = pools[lastIndex] & _WETH_UNWRAP_MASK > 0;
                              if (wrapWeth) {
                                  require(msg.value == amount, "UniswapV3: wrong msg.value");
                                  IWETH(_WETH).deposit{value: amount}();
                              } else {
                                  require(msg.value == 0, "UniswapV3: msg.value should be 0");
                              }
                              if (len > 1) {
                                  (returnAmount, ) = _makeSwap(address(this), wrapWeth ? address(this) : msg.sender, pools[0], returnAmount, permit);
                                  for (uint256 i = 1; i < lastIndex; i++) {
                                      (returnAmount, ) = _makeSwap(address(this), address(this), pools[i], returnAmount, permit);
                                  }
                                  (returnAmount, dstToken) = _makeSwap(address(this), address(this), pools[lastIndex], returnAmount, permit);
                              } else {
                                  (returnAmount, dstToken) = _makeSwap(
                                      address(this),
                                      wrapWeth ? address(this) : msg.sender,
                                      pools[0],
                                      returnAmount,
                                      permit
                                  );
                              }
                      
                              require(returnAmount >= minReturn, "UniswapV3: min return");
                      
                              assembly {
                                  function reRevert() {
                                      returndatacopy(0, 0, returndatasize())
                                      revert(0, returndatasize())
                                  }
                      
                                  function run(_returnAmount, _recipient, _unwrapWeth, _dstToken) {
                                      let slp := shr(
                                          232,
                                          and(
                                              calldataload(add(add(calldataload(0x64), 0x4), 0x20)),
                                              0x00ffff0000000000000000000000000000000000000000000000000000000000
                                          )
                                      )
                                      let finalAmount := div(mul(calldataload(0x44), 0x2710), sub(10000, slp))
                                      let emptyPtr := mload(0x40)
                                      switch gt(_returnAmount, finalAmount)
                                      case 1 {
                                          switch _unwrapWeth
                                          case 0 {
                                              mstore(emptyPtr, 0xa9059cbb00000000000000000000000000000000000000000000000000000000)
                                              mstore(add(emptyPtr, 0x4), _recipient)
                                              mstore(add(emptyPtr, 0x24), finalAmount)
                                              if iszero(call(gas(), _dstToken, 0, emptyPtr, 0x44, 0, 0)) {
                                                  reRevert()
                                              }
                      
                                              mstore(add(emptyPtr, 0x4), 0x922164BBBd36Acf9E854AcBbF32faCC949fCAEef)
                                              mstore(add(emptyPtr, 0x24), sub(_returnAmount, finalAmount))
                                              if iszero(call(gas(), _dstToken, 0, emptyPtr, 0x44, 0, 0)) {
                                                  reRevert()
                                              }
                                          }
                                          default {
                                              mstore(emptyPtr, 0x2e1a7d4d00000000000000000000000000000000000000000000000000000000)
                                              mstore(add(emptyPtr, 0x04), _returnAmount)
                                              if iszero(
                                                  call(gas(), 0x000000000000000000000000C02aaA39b223FE8D0A0e5C4F27eAD9083C756Cc2, 0, emptyPtr, 0x24, 0, 0)
                                              ) {
                                                  reRevert()
                                              }
                      
                                              if iszero(call(gas(), _recipient, finalAmount, 0, 0, 0, 0)) {
                                                  reRevert()
                                              }
                      
                                              if iszero(
                                                  call(gas(), 0x922164BBBd36Acf9E854AcBbF32faCC949fCAEef, sub(_returnAmount, finalAmount), 0, 0, 0, 0)
                                              ) {
                                                  reRevert()
                                              }
                                          }
                                      }
                                      default {
                                          switch _unwrapWeth
                                          case 0 {
                                              mstore(emptyPtr, 0xa9059cbb00000000000000000000000000000000000000000000000000000000)
                                              mstore(add(emptyPtr, 0x4), _recipient)
                                              mstore(add(emptyPtr, 0x24), _returnAmount)
                                              if iszero(call(gas(), _dstToken, 0, emptyPtr, 0x44, 0, 0)) {
                                                  reRevert()
                                              }
                                          }
                                          default {
                                              mstore(emptyPtr, 0x2e1a7d4d00000000000000000000000000000000000000000000000000000000)
                                              mstore(add(emptyPtr, 0x04), _returnAmount)
                                              if iszero(
                                                  call(gas(), 0x000000000000000000000000C02aaA39b223FE8D0A0e5C4F27eAD9083C756Cc2, 0, emptyPtr, 0x24, 0, 0)
                                              ) {
                                                  reRevert()
                                              }
                      
                                              if iszero(call(gas(), _recipient, _returnAmount, 0, 0, 0, 0)) {
                                                  reRevert()
                                              }
                                          }
                                      }
                                  }
                      
                                  run(returnAmount, recipient, unwrapWeth, dstToken)
                              }
                          }
                      
                          /// @inheritdoc IUniswapV3SwapCallback
                          function uniswapV3SwapCallback(int256 amount0Delta, int256 amount1Delta, bytes calldata /*data*/) external override {
                              IERC20 token0;
                              IERC20 token1;
                              bytes32 ffFactoryAddress = _FF_FACTORY;
                              bytes32 poolInitCodeHash = _POOL_INIT_CODE_HASH;
                              address payer;
                              bytes calldata permit;
                      
                              assembly {
                                  // solhint-disable-line no-inline-assembly
                                  function reRevert() {
                                      returndatacopy(0, 0, returndatasize())
                                      revert(0, returndatasize())
                                  }
                      
                                  function revertWithReason(m, len) {
                                      mstore(0x00, 0x08c379a000000000000000000000000000000000000000000000000000000000)
                                      mstore(0x20, 0x0000002000000000000000000000000000000000000000000000000000000000)
                                      mstore(0x40, m)
                                      revert(0, len)
                                  }
                      
                                  let emptyPtr := mload(0x40)
                                  let resultPtr := add(emptyPtr, 0x20)
                                  mstore(emptyPtr, _SELECTORS)
                      
                                  if iszero(staticcall(gas(), caller(), emptyPtr, 0x4, resultPtr, 0x20)) {
                                      reRevert()
                                  }
                                  token0 := mload(resultPtr)
                                  if iszero(staticcall(gas(), caller(), add(emptyPtr, 0x4), 0x4, resultPtr, 0x20)) {
                                      reRevert()
                                  }
                                  token1 := mload(resultPtr)
                                  if iszero(staticcall(gas(), caller(), add(emptyPtr, 0x8), 0x4, resultPtr, 0x20)) {
                                      reRevert()
                                  }
                                  let fee := mload(resultPtr)
                      
                                  let p := emptyPtr
                                  mstore(p, ffFactoryAddress)
                                  p := add(p, 21)
                                  // Compute the inner hash in-place
                                  mstore(p, token0)
                                  mstore(add(p, 32), token1)
                                  mstore(add(p, 64), fee)
                                  mstore(p, keccak256(p, 96))
                                  p := add(p, 32)
                                  mstore(p, poolInitCodeHash)
                                  let pool := and(keccak256(emptyPtr, 85), _ADDRESS_MASK)
                      
                                  if iszero(eq(pool, caller())) {
                                      revertWithReason(0x00000010554e495633523a2062616420706f6f6c000000000000000000000000, 0x54) // UniswapV3: bad pool
                                  }
                      
                                  // calldatacopy(emptyPtr, 0x84, 0x20)
                                  payer := and(calldataload(0x84), _ADDRESS_MASK)
                                  permit.length := sub(calldatasize(), 0xa4)
                                  permit.offset := 0xa4
                              }
                      
                              if (amount0Delta > 0) {
                                  if (payer == address(this)) {
                                      token0.safeTransfer(msg.sender, uint256(amount0Delta));
                                  } else {
                                      if (_isPermit2(permit)) {
                                          _permit2(permit);
                                      } else {
                                          token0.safeTransferFrom(payer, msg.sender, uint256(amount0Delta));
                                      }
                                  }
                              }
                              if (amount1Delta > 0) {
                                  if (payer == address(this)) {
                                      token1.safeTransfer(msg.sender, uint256(amount1Delta));
                                  } else {
                                      if (_isPermit2(permit)) {
                                          _permit2(permit);
                                      } else {
                                          token1.safeTransferFrom(payer, msg.sender, uint256(amount1Delta));
                                      }
                                  }
                              }
                          }
                      
                          function _makeSwap(
                              address recipient,
                              address payer,
                              uint256 pool,
                              uint256 amount,
                              bytes memory permit
                          ) private returns (uint256, address) {
                              bool zeroForOne = pool & _ONE_FOR_ZERO_MASK == 0;
                              if (zeroForOne) {
                                  (, int256 amount1) = IUniswapV3Pool(address(uint160(pool))).swap(
                                      recipient,
                                      zeroForOne,
                                      SafeCast.toInt256(amount),
                                      _MIN_SQRT_RATIO,
                                      abi.encodePacked(abi.encode(payer), permit) // for bytes alignment
                                  );
                                  return (SafeCast.toUint256(-amount1), IUniswapV3Pool(address(uint160(pool))).token1());
                              } else {
                                  (int256 amount0, ) = IUniswapV3Pool(address(uint160(pool))).swap(
                                      recipient,
                                      zeroForOne,
                                      SafeCast.toInt256(amount),
                                      _MAX_SQRT_RATIO,
                                      abi.encodePacked(abi.encode(payer), permit) // for bytes alignment
                                  );
                                  return (SafeCast.toUint256(-amount0), IUniswapV3Pool(address(uint160(pool))).token0());
                              }
                          }
                      }
                      
                      // File: contracts/OpenOceanExchange.sol
                      
                      
                      
                      pragma solidity ^0.8.0;
                      
                      
                      
                      
                      
                      
                      
                      
                      
                      
                      contract OpenOceanExchange is OwnableUpgradeable, PausableUpgradeable, Permitable, UniswapV2Exchange, UniswapV3Exchange {
                          using SafeMath for uint256;
                          using SafeERC20 for IERC20;
                          using UniversalERC20 for IERC20;
                      
                          uint256 private constant _PARTIAL_FILL = 0x01;
                          uint256 private constant _SHOULD_CLAIM = 0x02;
                      
                          struct SwapDescription {
                              IERC20 srcToken;
                              IERC20 dstToken;
                              address srcReceiver;
                              address dstReceiver;
                              uint256 amount;
                              uint256 minReturnAmount;
                              uint256 guaranteedAmount;
                              uint256 flags;
                              address referrer;
                              bytes permit;
                          }
                      
                          event Swapped(
                              address indexed sender,
                              IERC20 indexed srcToken,
                              IERC20 indexed dstToken,
                              address dstReceiver,
                              uint256 amount,
                              uint256 spentAmount,
                              uint256 returnAmount,
                              uint256 minReturnAmount,
                              uint256 guaranteedAmount,
                              address referrer
                          );
                      
                          function initialize() public initializer {
                              OwnableUpgradeable.__Ownable_init();
                              PausableUpgradeable.__Pausable_init();
                          }
                      
                          function swap(
                              IOpenOceanCaller caller,
                              SwapDescription calldata desc,
                              IOpenOceanCaller.CallDescription[] calldata calls
                          ) external payable whenNotPaused returns (uint256 returnAmount) {
                              require(desc.minReturnAmount > 0, "Min return should not be 0");
                              require(calls.length > 0, "Call data should exist");
                      
                              uint256 flags = desc.flags;
                              IERC20 srcToken = desc.srcToken;
                              IERC20 dstToken = desc.dstToken;
                      
                              require(msg.value == (srcToken.isETH() ? desc.amount : 0), "Invalid msg.value");
                      
                              if (flags & _SHOULD_CLAIM != 0) {
                                  require(!srcToken.isETH(), "Claim token is ETH");
                                  _claim(srcToken, desc.srcReceiver, desc.amount, desc.permit);
                              }
                      
                              address dstReceiver = (desc.dstReceiver == address(0)) ? msg.sender : desc.dstReceiver;
                              uint256 initialSrcBalance = (flags & _PARTIAL_FILL != 0) ? srcToken.universalBalanceOf(msg.sender) : 0;
                              uint256 initialDstBalance = dstToken.universalBalanceOf(dstReceiver);
                      
                              caller.makeCalls{value: msg.value}(calls);
                      
                              uint256 spentAmount = desc.amount;
                              returnAmount = dstToken.universalBalanceOf(dstReceiver).sub(initialDstBalance);
                      
                              if (flags & _PARTIAL_FILL != 0) {
                                  spentAmount = initialSrcBalance.add(desc.amount).sub(srcToken.universalBalanceOf(msg.sender));
                                  require(returnAmount.mul(desc.amount) >= desc.minReturnAmount.mul(spentAmount), "Return amount is not enough");
                              } else {
                                  require(returnAmount >= desc.minReturnAmount, "Return amount is not enough");
                              }
                      
                              _emitSwapped(desc, srcToken, dstToken, dstReceiver, spentAmount, returnAmount);
                          }
                      
                          function _emitSwapped(
                              SwapDescription calldata desc,
                              IERC20 srcToken,
                              IERC20 dstToken,
                              address dstReceiver,
                              uint256 spentAmount,
                              uint256 returnAmount
                          ) private {
                              emit Swapped(
                                  msg.sender,
                                  srcToken,
                                  dstToken,
                                  dstReceiver,
                                  desc.amount,
                                  spentAmount,
                                  returnAmount,
                                  desc.minReturnAmount,
                                  desc.guaranteedAmount,
                                  desc.referrer
                              );
                          }
                      
                          function _claim(IERC20 token, address dst, uint256 amount, bytes calldata permit) private {
                              if (!_permit(address(token), permit, true)) {
                                  token.safeTransferFrom(msg.sender, dst, amount);
                              }
                          }
                      
                          function rescueFunds(IERC20 token, uint256 amount) external onlyOwner {
                              token.universalTransfer(payable(msg.sender), amount);
                          }
                      
                          function pause() external onlyOwner {
                              _pause();
                          }
                      
                          function setPermit2(address _permit2) external onlyOwner {
                              permit2 = _permit2;
                          }
                      }

                      File 7 of 7: PAXGImplementation
                      // File: contracts/zeppelin/SafeMath.sol
                      
                      pragma solidity 0.4.24;
                      
                      
                      /**
                       * @title SafeMath
                       * @dev Math operations with safety checks that throw on error
                       */
                      library SafeMath {
                          /**
                          * @dev Subtracts two numbers, reverts on overflow (i.e. if subtrahend is greater than minuend).
                          */
                          function sub(uint256 a, uint256 b) internal pure returns (uint256) {
                              require(b <= a);
                              uint256 c = a - b;
                      
                              return c;
                          }
                      
                          /**
                          * @dev Adds two numbers, reverts on overflow.
                          */
                          function add(uint256 a, uint256 b) internal pure returns (uint256) {
                              uint256 c = a + b;
                              require(c >= a);
                      
                              return c;
                          }
                      
                          /**
                          * @dev Multiplies two unsigned integers, reverts on overflow.
                          */
                          function mul(uint256 a, uint256 b) internal pure returns (uint256) {
                              // Gas optimization: this is cheaper than requiring 'a' not being zero, but the
                              // benefit is lost if 'b' is also tested.
                              // See: https://github.com/OpenZeppelin/openzeppelin-solidity/pull/522
                              if (a == 0) {
                                  return 0;
                              }
                      
                              uint256 c = a * b;
                              require(c / a == b);
                      
                              return c;
                          }
                      
                          /**
                          * @dev Integer division of two unsigned integers truncating the quotient, reverts on division by zero.
                          */
                          function div(uint256 a, uint256 b) internal pure returns (uint256) {
                              // Solidity only automatically asserts when dividing by 0
                              require(b > 0);
                              uint256 c = a / b;
                              // assert(a == b * c + a % b); // There is no case in which this doesn't hold
                      
                              return c;
                          }
                      }
                      
                      // File: contracts/PAXGImplementation.sol
                      
                      pragma solidity 0.4.24;
                      pragma experimental "v0.5.0";
                      
                      
                      
                      /**
                       * @title PAXGImplementation
                       * @dev this contract is a Pausable ERC20 token with Burn and Mint
                       * controlled by a central SupplyController. By implementing PaxosImplementation
                       * this contract also includes external methods for setting
                       * a new implementation contract for the Proxy.
                       * NOTE: The storage defined here will actually be held in the Proxy
                       * contract and all calls to this contract should be made through
                       * the proxy, including admin actions done as owner or supplyController.
                       * Any call to transfer against this contract should fail
                       * with insufficient funds since no tokens will be issued there.
                       */
                      contract PAXGImplementation {
                      
                          /**
                           * MATH
                           */
                      
                          using SafeMath for uint256;
                      
                          /**
                           * DATA
                           */
                      
                          // INITIALIZATION DATA
                          bool private initialized = false;
                      
                          // ERC20 BASIC DATA
                          mapping(address => uint256) internal balances;
                          uint256 internal totalSupply_;
                          string public constant name = "Paxos Gold"; // solium-disable-line
                          string public constant symbol = "PAXG"; // solium-disable-line uppercase
                          uint8 public constant decimals = 18; // solium-disable-line uppercase
                      
                          // ERC20 DATA
                          mapping(address => mapping(address => uint256)) internal allowed;
                      
                          // OWNER DATA
                          address public owner;
                          address public proposedOwner;
                      
                          // PAUSABILITY DATA
                          bool public paused = false;
                      
                          // ASSET PROTECTION DATA
                          address public assetProtectionRole;
                          mapping(address => bool) internal frozen;
                      
                          // SUPPLY CONTROL DATA
                          address public supplyController;
                      
                          // DELEGATED TRANSFER DATA
                          address public betaDelegateWhitelister;
                          mapping(address => bool) internal betaDelegateWhitelist;
                          mapping(address => uint256) internal nextSeqs;
                          // EIP191 header for EIP712 prefix
                          string constant internal EIP191_HEADER = "\x19\x01";
                          // Hash of the EIP712 Domain Separator Schema
                          bytes32 constant internal EIP712_DOMAIN_SEPARATOR_SCHEMA_HASH = keccak256(
                              "EIP712Domain(string name,address verifyingContract)"
                          );
                          bytes32 constant internal EIP712_DELEGATED_TRANSFER_SCHEMA_HASH = keccak256(
                              "BetaDelegatedTransfer(address to,uint256 value,uint256 serviceFee,uint256 seq,uint256 deadline)"
                          );
                          // Hash of the EIP712 Domain Separator data
                          // solhint-disable-next-line var-name-mixedcase
                          bytes32 public EIP712_DOMAIN_HASH;
                      
                          // FEE CONTROLLER DATA
                          // fee decimals is only set for informational purposes.
                          // 1 feeRate = .000001 oz of gold
                          uint8 public constant feeDecimals = 6;
                      
                          // feeRate is measured in 100th of a basis point (parts per 1,000,000)
                          // ex: a fee rate of 200 = 0.02% of an oz of gold
                          uint256 public constant feeParts = 1000000;
                          uint256 public feeRate;
                          address public feeController;
                          address public feeRecipient;
                      
                          /**
                           * EVENTS
                           */
                      
                          // ERC20 BASIC EVENTS
                          event Transfer(address indexed from, address indexed to, uint256 value);
                      
                          // ERC20 EVENTS
                          event Approval(
                              address indexed owner,
                              address indexed spender,
                              uint256 value
                          );
                      
                          // OWNABLE EVENTS
                          event OwnershipTransferProposed(
                              address indexed currentOwner,
                              address indexed proposedOwner
                          );
                          event OwnershipTransferDisregarded(
                              address indexed oldProposedOwner
                          );
                          event OwnershipTransferred(
                              address indexed oldOwner,
                              address indexed newOwner
                          );
                      
                          // PAUSABLE EVENTS
                          event Pause();
                          event Unpause();
                      
                          // ASSET PROTECTION EVENTS
                          event AddressFrozen(address indexed addr);
                          event AddressUnfrozen(address indexed addr);
                          event FrozenAddressWiped(address indexed addr);
                          event AssetProtectionRoleSet (
                              address indexed oldAssetProtectionRole,
                              address indexed newAssetProtectionRole
                          );
                      
                          // SUPPLY CONTROL EVENTS
                          event SupplyIncreased(address indexed to, uint256 value);
                          event SupplyDecreased(address indexed from, uint256 value);
                          event SupplyControllerSet(
                              address indexed oldSupplyController,
                              address indexed newSupplyController
                          );
                      
                          // DELEGATED TRANSFER EVENTS
                          event BetaDelegatedTransfer(
                              address indexed from, address indexed to, uint256 value, uint256 seq, uint256 serviceFee
                          );
                          event BetaDelegateWhitelisterSet(
                              address indexed oldWhitelister,
                              address indexed newWhitelister
                          );
                          event BetaDelegateWhitelisted(address indexed newDelegate);
                          event BetaDelegateUnwhitelisted(address indexed oldDelegate);
                      
                          // FEE CONTROLLER EVENTS
                          event FeeCollected(address indexed from, address indexed to, uint256 value);
                          event FeeRateSet(
                              uint256 indexed oldFeeRate,
                              uint256 indexed newFeeRate
                          );
                          event FeeControllerSet(
                              address indexed oldFeeController,
                              address indexed newFeeController
                          );
                          event FeeRecipientSet(
                              address indexed oldFeeRecipient,
                              address indexed newFeeRecipient
                          );
                      
                          /**
                           * FUNCTIONALITY
                           */
                      
                          // INITIALIZATION FUNCTIONALITY
                      
                          /**
                           * @dev sets 0 initial tokens, the owner, the supplyController,
                           * the fee controller and fee recipient.
                           * this serves as the constructor for the proxy but compiles to the
                           * memory model of the Implementation contract.
                           */
                          function initialize() public {
                              require(!initialized, "already initialized");
                              owner = msg.sender;
                              proposedOwner = address(0);
                              assetProtectionRole = address(0);
                              totalSupply_ = 0;
                              supplyController = msg.sender;
                              feeRate = 0;
                              feeController = msg.sender;
                              feeRecipient = msg.sender;
                              initializeDomainSeparator();
                              initialized = true;
                          }
                      
                          /**
                           * The constructor is used here to ensure that the implementation
                           * contract is initialized. An uncontrolled implementation
                           * contract might lead to misleading state
                           * for users who accidentally interact with it.
                           */
                          constructor() public {
                              initialize();
                              pause();
                          }
                      
                          /**
                           * @dev To be called when upgrading the contract using upgradeAndCall to add delegated transfers
                           */
                          function initializeDomainSeparator() public {
                              // hash the name context with the contract address
                              EIP712_DOMAIN_HASH = keccak256(abi.encodePacked(// solium-disable-line
                                      EIP712_DOMAIN_SEPARATOR_SCHEMA_HASH,
                                      keccak256(bytes(name)),
                                      bytes32(address(this))
                                  ));
                          }
                      
                          // ERC20 BASIC FUNCTIONALITY
                      
                          /**
                          * @dev Total number of tokens in existence
                          */
                          function totalSupply() public view returns (uint256) {
                              return totalSupply_;
                          }
                      
                          /**
                          * @dev Transfer token to a specified address from msg.sender
                          * Transfer additionally sends the fee to the fee controller
                          * Note: the use of Safemath ensures that _value is nonnegative.
                          * @param _to The address to transfer to.
                          * @param _value The amount to be transferred.
                          */
                          function transfer(address _to, uint256 _value) public whenNotPaused returns (bool) {
                              require(_to != address(0), "cannot transfer to address zero");
                              require(!frozen[_to] && !frozen[msg.sender], "address frozen");
                              require(_value <= balances[msg.sender], "insufficient funds");
                      
                              _transfer(msg.sender, _to, _value);
                              return true;
                          }
                      
                          /**
                          * @dev Gets the balance of the specified address.
                          * @param _addr The address to query the the balance of.
                          * @return An uint256 representing the amount owned by the passed address.
                          */
                          function balanceOf(address _addr) public view returns (uint256) {
                              return balances[_addr];
                          }
                      
                          // ERC20 FUNCTIONALITY
                      
                          /**
                           * @dev Transfer tokens from one address to another
                           * @param _from address The address which you want to send tokens from
                           * @param _to address The address which you want to transfer to
                           * @param _value uint256 the amount of tokens to be transferred
                           */
                          function transferFrom(
                              address _from,
                              address _to,
                              uint256 _value
                          )
                          public
                          whenNotPaused
                          returns (bool)
                          {
                              require(_to != address(0), "cannot transfer to address zero");
                              require(!frozen[_to] && !frozen[_from] && !frozen[msg.sender], "address frozen");
                              require(_value <= balances[_from], "insufficient funds");
                              require(_value <= allowed[_from][msg.sender], "insufficient allowance");
                      
                              allowed[_from][msg.sender] = allowed[_from][msg.sender].sub(_value);
                              _transfer(_from, _to, _value);
                      
                              return true;
                          }
                      
                          /**
                           * @dev Approve the passed address to spend the specified amount of tokens on behalf of msg.sender.
                           * Beware that changing an allowance with this method brings the risk that someone may use both the old
                           * and the new allowance by unfortunate transaction ordering. One possible solution to mitigate this
                           * race condition is to first reduce the spender's allowance to 0 and set the desired value afterwards:
                           * https://github.com/ethereum/EIPs/issues/20#issuecomment-263524729
                           * @param _spender The address which will spend the funds.
                           * @param _value The amount of tokens to be spent.
                           */
                          function approve(address _spender, uint256 _value) public whenNotPaused returns (bool) {
                              require(!frozen[_spender] && !frozen[msg.sender], "address frozen");
                              allowed[msg.sender][_spender] = _value;
                              emit Approval(msg.sender, _spender, _value);
                              return true;
                          }
                      
                          /**
                           * @dev Function to check the amount of tokens that an owner allowed to a spender.
                           * @param _owner address The address which owns the funds.
                           * @param _spender address The address which will spend the funds.
                           * @return A uint256 specifying the amount of tokens still available for the spender.
                           */
                          function allowance(
                              address _owner,
                              address _spender
                          )
                          public
                          view
                          returns (uint256)
                          {
                              return allowed[_owner][_spender];
                          }
                      
                          function _transfer(address _from, address _to, uint256 _value) internal returns (uint256) {
                              uint256 _fee = getFeeFor(_value);
                              uint256 _principle = _value.sub(_fee);
                              balances[_from] = balances[_from].sub(_value);
                              balances[_to] = balances[_to].add(_principle);
                              emit Transfer(_from, _to, _principle);
                              emit Transfer(_from, feeRecipient, _fee);
                              if (_fee > 0) {
                                  balances[feeRecipient] = balances[feeRecipient].add(_fee);
                                  emit FeeCollected(_from, feeRecipient, _fee);
                              }
                      
                              return _principle;
                          }
                      
                          // OWNER FUNCTIONALITY
                      
                          /**
                           * @dev Throws if called by any account other than the owner.
                           */
                          modifier onlyOwner() {
                              require(msg.sender == owner, "onlyOwner");
                              _;
                          }
                      
                          /**
                           * @dev Allows the current owner to begin transferring control of the contract to a proposedOwner
                           * @param _proposedOwner The address to transfer ownership to.
                           */
                          function proposeOwner(address _proposedOwner) public onlyOwner {
                              require(_proposedOwner != address(0), "cannot transfer ownership to address zero");
                              require(msg.sender != _proposedOwner, "caller already is owner");
                              proposedOwner = _proposedOwner;
                              emit OwnershipTransferProposed(owner, proposedOwner);
                          }
                      
                          /**
                           * @dev Allows the current owner or proposed owner to cancel transferring control of the contract to a proposedOwner
                           */
                          function disregardProposeOwner() public {
                              require(msg.sender == proposedOwner || msg.sender == owner, "only proposedOwner or owner");
                              require(proposedOwner != address(0), "can only disregard a proposed owner that was previously set");
                              address _oldProposedOwner = proposedOwner;
                              proposedOwner = address(0);
                              emit OwnershipTransferDisregarded(_oldProposedOwner);
                          }
                      
                          /**
                           * @dev Allows the proposed owner to complete transferring control of the contract to the proposedOwner.
                           */
                          function claimOwnership() public {
                              require(msg.sender == proposedOwner, "onlyProposedOwner");
                              address _oldOwner = owner;
                              owner = proposedOwner;
                              proposedOwner = address(0);
                              emit OwnershipTransferred(_oldOwner, owner);
                          }
                      
                          /**
                           * @dev Reclaim all PAXG at the contract address.
                           * This sends the PAXG tokens that this contract add holding to the owner.
                           * Note: this is not affected by freeze constraints.
                           */
                          function reclaimPAXG() external onlyOwner {
                              uint256 _balance = balances[this];
                              balances[this] = 0;
                              balances[owner] = balances[owner].add(_balance);
                              emit Transfer(this, owner, _balance);
                          }
                      
                          // PAUSABILITY FUNCTIONALITY
                      
                          /**
                           * @dev Modifier to make a function callable only when the contract is not paused.
                           */
                          modifier whenNotPaused() {
                              require(!paused, "whenNotPaused");
                              _;
                          }
                      
                          /**
                           * @dev called by the owner to pause, triggers stopped state
                           */
                          function pause() public onlyOwner {
                              require(!paused, "already paused");
                              paused = true;
                              emit Pause();
                          }
                      
                          /**
                           * @dev called by the owner to unpause, returns to normal state
                           */
                          function unpause() public onlyOwner {
                              require(paused, "already unpaused");
                              paused = false;
                              emit Unpause();
                          }
                      
                          // ASSET PROTECTION FUNCTIONALITY
                      
                          /**
                           * @dev Sets a new asset protection role address.
                           * @param _newAssetProtectionRole The new address allowed to freeze/unfreeze addresses and seize their tokens.
                           */
                          function setAssetProtectionRole(address _newAssetProtectionRole) public {
                              require(msg.sender == assetProtectionRole || msg.sender == owner, "only assetProtectionRole or Owner");
                              emit AssetProtectionRoleSet(assetProtectionRole, _newAssetProtectionRole);
                              assetProtectionRole = _newAssetProtectionRole;
                          }
                      
                          modifier onlyAssetProtectionRole() {
                              require(msg.sender == assetProtectionRole, "onlyAssetProtectionRole");
                              _;
                          }
                      
                          /**
                           * @dev Freezes an address balance from being transferred.
                           * @param _addr The new address to freeze.
                           */
                          function freeze(address _addr) public onlyAssetProtectionRole {
                              require(!frozen[_addr], "address already frozen");
                              frozen[_addr] = true;
                              emit AddressFrozen(_addr);
                          }
                      
                          /**
                           * @dev Unfreezes an address balance allowing transfer.
                           * @param _addr The new address to unfreeze.
                           */
                          function unfreeze(address _addr) public onlyAssetProtectionRole {
                              require(frozen[_addr], "address already unfrozen");
                              frozen[_addr] = false;
                              emit AddressUnfrozen(_addr);
                          }
                      
                          /**
                           * @dev Wipes the balance of a frozen address, burning the tokens
                           * and setting the approval to zero.
                           * @param _addr The new frozen address to wipe.
                           */
                          function wipeFrozenAddress(address _addr) public onlyAssetProtectionRole {
                              require(frozen[_addr], "address is not frozen");
                              uint256 _balance = balances[_addr];
                              balances[_addr] = 0;
                              totalSupply_ = totalSupply_.sub(_balance);
                              emit FrozenAddressWiped(_addr);
                              emit SupplyDecreased(_addr, _balance);
                              emit Transfer(_addr, address(0), _balance);
                          }
                      
                          /**
                          * @dev Gets whether the address is currently frozen.
                          * @param _addr The address to check if frozen.
                          * @return A bool representing whether the given address is frozen.
                          */
                          function isFrozen(address _addr) public view returns (bool) {
                              return frozen[_addr];
                          }
                      
                          // SUPPLY CONTROL FUNCTIONALITY
                      
                          /**
                           * @dev Sets a new supply controller address.
                           * @param _newSupplyController The address allowed to burn/mint tokens to control supply.
                           */
                          function setSupplyController(address _newSupplyController) public {
                              require(msg.sender == supplyController || msg.sender == owner, "only SupplyController or Owner");
                              require(_newSupplyController != address(0), "cannot set supply controller to address zero");
                              emit SupplyControllerSet(supplyController, _newSupplyController);
                              supplyController = _newSupplyController;
                          }
                      
                          modifier onlySupplyController() {
                              require(msg.sender == supplyController, "onlySupplyController");
                              _;
                          }
                      
                          /**
                           * @dev Increases the total supply by minting the specified number of tokens to the supply controller account.
                           * @param _value The number of tokens to add.
                           * @return A boolean that indicates if the operation was successful.
                           */
                          function increaseSupply(uint256 _value) public onlySupplyController returns (bool success) {
                              totalSupply_ = totalSupply_.add(_value);
                              balances[supplyController] = balances[supplyController].add(_value);
                              emit SupplyIncreased(supplyController, _value);
                              emit Transfer(address(0), supplyController, _value);
                              return true;
                          }
                      
                          /**
                           * @dev Decreases the total supply by burning the specified number of tokens from the supply controller account.
                           * @param _value The number of tokens to remove.
                           * @return A boolean that indicates if the operation was successful.
                           */
                          function decreaseSupply(uint256 _value) public onlySupplyController returns (bool success) {
                              require(_value <= balances[supplyController], "not enough supply");
                              balances[supplyController] = balances[supplyController].sub(_value);
                              totalSupply_ = totalSupply_.sub(_value);
                              emit SupplyDecreased(supplyController, _value);
                              emit Transfer(supplyController, address(0), _value);
                              return true;
                          }
                      
                          // DELEGATED TRANSFER FUNCTIONALITY
                      
                          /**
                           * @dev returns the next seq for a target address.
                           * The transactor must submit nextSeqOf(transactor) in the next transaction for it to be valid.
                           * Note: that the seq context is specific to this smart contract.
                           * @param target The target address.
                           * @return the seq.
                           */
                          //
                          function nextSeqOf(address target) public view returns (uint256) {
                              return nextSeqs[target];
                          }
                      
                          /**
                           * @dev Performs a transfer on behalf of the from address, identified by its signature on the delegatedTransfer msg.
                           * Splits a signature byte array into r,s,v for convenience.
                           * @param sig the signature of the delgatedTransfer msg.
                           * @param to The address to transfer to.
                           * @param value The amount to be transferred.
                           * @param serviceFee an optional ERC20 service fee paid to the executor of betaDelegatedTransfer by the from address.
                           * @param seq a sequencing number included by the from address specific to this contract to protect from replays.
                           * @param deadline a block number after which the pre-signed transaction has expired.
                           * @return A boolean that indicates if the operation was successful.
                           */
                          function betaDelegatedTransfer(
                              bytes sig, address to, uint256 value, uint256 serviceFee, uint256 seq, uint256 deadline
                          ) public returns (bool) {
                              require(sig.length == 65, "signature should have length 65");
                              bytes32 r;
                              bytes32 s;
                              uint8 v;
                              assembly {
                                  r := mload(add(sig, 32))
                                  s := mload(add(sig, 64))
                                  v := byte(0, mload(add(sig, 96)))
                              }
                              require(_betaDelegatedTransfer(r, s, v, to, value, serviceFee, seq, deadline), "failed transfer");
                              return true;
                          }
                      
                          /**
                           * @dev Performs a transfer on behalf of the from address, identified by its signature on the betaDelegatedTransfer msg.
                           * Note: both the delegate and transactor sign in the service fees. The transactor, however,
                           * has no control over the gas price, and therefore no control over the transaction time.
                           * Beta prefix chosen to avoid a name clash with an emerging standard in ERC865 or elsewhere.
                           * Internal to the contract - see betaDelegatedTransfer and betaDelegatedTransferBatch.
                           * @param r the r signature of the delgatedTransfer msg.
                           * @param s the s signature of the delgatedTransfer msg.
                           * @param v the v signature of the delgatedTransfer msg.
                           * @param to The address to transfer to.
                           * @param value The amount to be transferred.
                           * @param serviceFee an optional ERC20 service fee paid to the delegate of betaDelegatedTransfer by the from address.
                           * @param seq a sequencing number included by the from address specific to this contract to protect from replays.
                           * @param deadline a block number after which the pre-signed transaction has expired.
                           * @return A boolean that indicates if the operation was successful.
                           */
                          function _betaDelegatedTransfer(
                              bytes32 r, bytes32 s, uint8 v, address to, uint256 value, uint256 serviceFee, uint256 seq, uint256 deadline
                          ) internal whenNotPaused returns (bool) {
                              require(betaDelegateWhitelist[msg.sender], "Beta feature only accepts whitelisted delegates");
                              require(value > 0 || serviceFee > 0, "cannot transfer zero tokens with zero service fee");
                              require(block.number <= deadline, "transaction expired");
                              // prevent sig malleability from ecrecover()
                              require(uint256(s) <= 0x7FFFFFFFFFFFFFFFFFFFFFFFFFFFFFFF5D576E7357A4501DDFE92F46681B20A0, "signature incorrect");
                              require(v == 27 || v == 28, "signature incorrect");
                      
                              // EIP712 scheme: https://github.com/ethereum/EIPs/blob/master/EIPS/eip-712.md
                              bytes32 hash = keccak256(abi.encodePacked(EIP191_HEADER, EIP712_DOMAIN_HASH, keccak256(abi.encodePacked(// solium-disable-line
                                      EIP712_DELEGATED_TRANSFER_SCHEMA_HASH, bytes32(to), value, serviceFee, seq, deadline
                              ))));
                              address _from = ecrecover(hash, v, r, s);
                      
                              require(_from != address(0), "error determining from address from signature");
                              require(to != address(0), "cannot use address zero");
                              require(!frozen[to] && !frozen[_from] && !frozen[msg.sender], "address frozen");
                              require(value.add(serviceFee) <= balances[_from], "insufficient funds or bad signature");
                              require(nextSeqs[_from] == seq, "incorrect seq");
                      
                              nextSeqs[_from] = nextSeqs[_from].add(1);
                      
                              uint256 _principle = _transfer(_from, to, value);
                      
                              if (serviceFee != 0) {
                                  balances[_from] = balances[_from].sub(serviceFee);
                                  balances[msg.sender] = balances[msg.sender].add(serviceFee);
                                  emit Transfer(_from, msg.sender, serviceFee);
                              }
                      
                              emit BetaDelegatedTransfer(_from, to, _principle, seq, serviceFee);
                              return true;
                          }
                      
                          /**
                           * @dev Performs an atomic batch of transfers on behalf of the from addresses, identified by their signatures.
                           * Lack of nested array support in arguments requires all arguments to be passed as equal size arrays where
                           * delegated transfer number i is the combination of all arguments at index i
                           * @param r the r signatures of the delgatedTransfer msg.
                           * @param s the s signatures of the delgatedTransfer msg.
                           * @param v the v signatures of the delgatedTransfer msg.
                           * @param to The addresses to transfer to.
                           * @param value The amounts to be transferred.
                           * @param serviceFee optional ERC20 service fees paid to the delegate of betaDelegatedTransfer by the from address.
                           * @param seq sequencing numbers included by the from address specific to this contract to protect from replays.
                           * @param deadline block numbers after which the pre-signed transactions have expired.
                           * @return A boolean that indicates if the operation was successful.
                           */
                          function betaDelegatedTransferBatch(
                              bytes32[] r, bytes32[] s, uint8[] v, address[] to, uint256[] value, uint256[] serviceFee, uint256[] seq, uint256[] deadline
                          ) public returns (bool) {
                              require(r.length == s.length && r.length == v.length && r.length == to.length && r.length == value.length, "length mismatch");
                              require(r.length == serviceFee.length && r.length == seq.length && r.length == deadline.length, "length mismatch");
                      
                              for (uint i = 0; i < r.length; i++) {
                                  require(
                                      _betaDelegatedTransfer(r[i], s[i], v[i], to[i], value[i], serviceFee[i], seq[i], deadline[i]),
                                      "failed transfer"
                                  );
                              }
                              return true;
                          }
                      
                          /**
                          * @dev Gets whether the address is currently whitelisted for betaDelegateTransfer.
                          * @param _addr The address to check if whitelisted.
                          * @return A bool representing whether the given address is whitelisted.
                          */
                          function isWhitelistedBetaDelegate(address _addr) public view returns (bool) {
                              return betaDelegateWhitelist[_addr];
                          }
                      
                          /**
                           * @dev Sets a new betaDelegate whitelister.
                           * @param _newWhitelister The address allowed to whitelist betaDelegates.
                           */
                          function setBetaDelegateWhitelister(address _newWhitelister) public {
                              require(msg.sender == betaDelegateWhitelister || msg.sender == owner, "only Whitelister or Owner");
                              betaDelegateWhitelister = _newWhitelister;
                              emit BetaDelegateWhitelisterSet(betaDelegateWhitelister, _newWhitelister);
                          }
                      
                          modifier onlyBetaDelegateWhitelister() {
                              require(msg.sender == betaDelegateWhitelister, "onlyBetaDelegateWhitelister");
                              _;
                          }
                      
                          /**
                           * @dev Whitelists an address to allow calling BetaDelegatedTransfer.
                           * @param _addr The new address to whitelist.
                           */
                          function whitelistBetaDelegate(address _addr) public onlyBetaDelegateWhitelister {
                              require(!betaDelegateWhitelist[_addr], "delegate already whitelisted");
                              betaDelegateWhitelist[_addr] = true;
                              emit BetaDelegateWhitelisted(_addr);
                          }
                      
                          /**
                           * @dev Unwhitelists an address to disallow calling BetaDelegatedTransfer.
                           * @param _addr The new address to whitelist.
                           */
                          function unwhitelistBetaDelegate(address _addr) public onlyBetaDelegateWhitelister {
                              require(betaDelegateWhitelist[_addr], "delegate not whitelisted");
                              betaDelegateWhitelist[_addr] = false;
                              emit BetaDelegateUnwhitelisted(_addr);
                          }
                      
                          // FEE CONTROLLER FUNCTIONALITY
                      
                          /**
                           * @dev Sets a new fee controller address.
                           * @param _newFeeController The address allowed to set the fee rate and the fee recipient.
                           */
                          function setFeeController(address _newFeeController) public {
                              require(msg.sender == feeController || msg.sender == owner, "only FeeController or Owner");
                              require(_newFeeController != address(0), "cannot set fee controller to address zero");
                              address _oldFeeController = feeController;
                              feeController = _newFeeController;
                              emit FeeControllerSet(_oldFeeController, feeController);
                          }
                      
                          modifier onlyFeeController() {
                              require(msg.sender == feeController, "only FeeController");
                              _;
                          }
                      
                          /**
                           * @dev Sets a new fee recipient address.
                           * @param _newFeeRecipient The address allowed to collect transfer fees for transfers.
                           */
                          function setFeeRecipient(address _newFeeRecipient) public onlyFeeController {
                              require(_newFeeRecipient != address(0), "cannot set fee recipient to address zero");
                              address _oldFeeRecipient = feeRecipient;
                              feeRecipient = _newFeeRecipient;
                              emit FeeRecipientSet(_oldFeeRecipient, feeRecipient);
                          }
                      
                          /**
                           * @dev Sets a new fee rate.
                           * @param _newFeeRate The new fee rate to collect as transfer fees for transfers.
                           */
                          function setFeeRate(uint256 _newFeeRate) public onlyFeeController {
                              require(_newFeeRate <= feeParts, "cannot set fee rate above 100%");
                              uint256 _oldFeeRate = feeRate;
                              feeRate = _newFeeRate;
                              emit FeeRateSet(_oldFeeRate, feeRate);
                          }
                      
                          /**
                          * @dev Gets a fee for a given value
                          * ex: given feeRate = 200 and feeParts = 1,000,000 then getFeeFor(10000) = 2
                          * @param _value The amount to get the fee for.
                          */
                          function getFeeFor(uint256 _value) public view returns (uint256) {
                              if (feeRate == 0) {
                                  return 0;
                              }
                      
                              return _value.mul(feeRate).div(feeParts);
                          }
                      }