chore: Add BalancerSwapExecutor
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132
evm/src/balancer-v2/BalancerSwapExecutor.sol
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132
evm/src/balancer-v2/BalancerSwapExecutor.sol
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// SPDX-License-Identifier: UNLICENCED
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pragma solidity ^0.8.0;
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import "../interfaces/ISwapExecutor.sol";
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contract BalancerSwapExecutor is ISwapExecutor {
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address private constant vaultAddress =
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0xBA12222222228d8Ba445958a75a0704d566BF2C8;
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bytes32 private constant swapSelector =
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0x52bbbe2900000000000000000000000000000000000000000000000000000000;
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bytes32 private constant maxUint256 =
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0xFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFF;
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/**
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* @dev Executes a Balancer swap.
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* @param givenAmount how much of to swap, depending on exactOut either in-
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* or outAmount.
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* @param data the parameters of the swap. This data is roughly the packed
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* encoding of
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* the struct below:
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* ```
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* struct Params {
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* // the token that the caller is selling
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* IERC20 tokenIn;
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*
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* // the token that the caller is receiving in exchange
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* IERC20 tokenOut;
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*
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* // the target pool id
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* bytes32 poolId;
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*
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* // the receiver of `tokenOut`
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* address receiver;
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*
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* // whether we want exactOut semantics
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* bool exactOut;
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*
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* // whether we need to approve the pool to spend `tokenIn`
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* bool tokenApprovalNeeded;
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*
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* }
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* ```
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*/
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function swap(uint256 givenAmount, bytes calldata data)
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external
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payable
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returns (uint256 calculatedAmount)
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{
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IERC20 tokenIn;
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IERC20 tokenOut;
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bytes32 poolId;
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address receiver;
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bool exactOut;
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bool tokenApprovalNeeded;
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assembly {
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tokenIn := shr(96, calldataload(data.offset))
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tokenOut := shr(96, calldataload(add(data.offset, 20)))
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poolId := calldataload(add(data.offset, 40))
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let dataLoad := calldataload(add(data.offset, 72))
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receiver := shr(96, dataLoad)
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exactOut := and(shr(88, dataLoad), 0xff)
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tokenApprovalNeeded := and(shr(80, dataLoad), 0xff)
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// Check if token approval is needed and perform the approval
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if tokenApprovalNeeded {
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// Prepare approve call
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let approveCalldata := mload(0x40)
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mstore(
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approveCalldata,
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0x095ea7b300000000000000000000000000000000000000000000000000000000
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) // approve selector
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mstore(add(approveCalldata, 4), vaultAddress) // spender
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mstore(add(approveCalldata, 36), maxUint256) // value
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// (maxUint256)
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let success :=
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call(gas(), tokenIn, 0, approveCalldata, 68, 0, 0)
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if iszero(success) {
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returndatacopy(0, 0, returndatasize())
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revert(0, returndatasize())
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}
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}
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let ptr := mload(0x40)
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mstore(ptr, swapSelector)
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//limit: as it is always recalculated during the swap, we use the
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// extremums 0 tokenOut or max(uint256) tokenIn.
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let limit := 0
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if exactOut { limit := maxUint256 }
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// as the singleSwap struct contains a bytes, it's considered as
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// dynamic.
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// dynamic values are encoded at the end of the calldata and have a
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// corresponding offset at the beginning
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// we first need to encode the offset of the singleSwap struct
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mstore(add(ptr, 4), 0xe0)
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// fundManagement.sender: is always address(this)
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mstore(add(ptr, 36), address())
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// fundManagement.fromInternalBalance
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mstore(add(ptr, 68), 0)
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// fundManagement.receiver
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mstore(add(ptr, 100), receiver)
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// fundManagement.toInternalBalance
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mstore(add(ptr, 132), 0)
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// limit
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mstore(add(ptr, 164), limit)
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// deadline
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mstore(add(ptr, 196), timestamp())
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// singleSwap.poolId
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mstore(add(ptr, 228), poolId)
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// singleSwap.exactOut
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mstore(add(ptr, 260), exactOut)
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// singleSwap.assetIn
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mstore(add(ptr, 292), tokenIn)
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// singleSwap.assetOut
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mstore(add(ptr, 324), tokenOut)
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// singleSwap.amount
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mstore(add(ptr, 356), givenAmount)
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// singleSwap.userData offset
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mstore(add(ptr, 388), 0xc0)
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// singleSwap.userData lenght
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mstore(add(ptr, 420), 0)
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let success := call(gas(), vaultAddress, 0, ptr, 452, ptr, 32)
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switch success
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case 0 {
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returndatacopy(0, 0, returndatasize())
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revert(0, returndatasize())
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}
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default { calculatedAmount := mload(ptr) }
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}
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}
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}
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