文件 1 的 6:Address.sol
pragma solidity ^0.8.1;
library Address {
function isContract(address account) internal view returns (bool) {
return account.code.length > 0;
}
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");
}
function functionCall(address target, bytes memory data) internal returns (bytes memory) {
return functionCallWithValue(target, data, 0, "Address: low-level call failed");
}
function functionCall(
address target,
bytes memory data,
string memory errorMessage
) internal returns (bytes memory) {
return functionCallWithValue(target, data, 0, errorMessage);
}
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");
}
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);
}
function functionStaticCall(address target, bytes memory data) internal view returns (bytes memory) {
return functionStaticCall(target, data, "Address: low-level static call failed");
}
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);
}
function functionDelegateCall(address target, bytes memory data) internal returns (bytes memory) {
return functionDelegateCall(target, data, "Address: low-level delegate call failed");
}
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);
}
function verifyCallResultFromTarget(
address target,
bool success,
bytes memory returndata,
string memory errorMessage
) internal view returns (bytes memory) {
if (success) {
if (returndata.length == 0) {
require(isContract(target), "Address: call to non-contract");
}
return returndata;
} else {
_revert(returndata, errorMessage);
}
}
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 {
if (returndata.length > 0) {
assembly {
let returndata_size := mload(returndata)
revert(add(32, returndata), returndata_size)
}
} else {
revert(errorMessage);
}
}
}
文件 2 的 6:BytesLib.sol
pragma solidity >=0.8.0 <0.9.0;
library BytesLib {
function concat(
bytes memory _preBytes,
bytes memory _postBytes
)
internal
pure
returns (bytes memory)
{
bytes memory tempBytes;
assembly {
tempBytes := mload(0x40)
let length := mload(_preBytes)
mstore(tempBytes, length)
let mc := add(tempBytes, 0x20)
let end := add(mc, length)
for {
let cc := add(_preBytes, 0x20)
} lt(mc, end) {
mc := add(mc, 0x20)
cc := add(cc, 0x20)
} {
mstore(mc, mload(cc))
}
length := mload(_postBytes)
mstore(tempBytes, add(length, mload(tempBytes)))
mc := end
end := add(mc, length)
for {
let cc := add(_postBytes, 0x20)
} lt(mc, end) {
mc := add(mc, 0x20)
cc := add(cc, 0x20)
} {
mstore(mc, mload(cc))
}
mstore(0x40, and(
add(add(end, iszero(add(length, mload(_preBytes)))), 31),
not(31)
))
}
return tempBytes;
}
function concatStorage(bytes storage _preBytes, bytes memory _postBytes) internal {
assembly {
let fslot := sload(_preBytes.slot)
let slength := div(and(fslot, sub(mul(0x100, iszero(and(fslot, 1))), 1)), 2)
let mlength := mload(_postBytes)
let newlength := add(slength, mlength)
switch add(lt(slength, 32), lt(newlength, 32))
case 2 {
sstore(
_preBytes.slot,
add(
fslot,
add(
mul(
div(
mload(add(_postBytes, 0x20)),
exp(0x100, sub(32, mlength))
),
exp(0x100, sub(32, newlength))
),
mul(mlength, 2)
)
)
)
}
case 1 {
mstore(0x0, _preBytes.slot)
let sc := add(keccak256(0x0, 0x20), div(slength, 32))
sstore(_preBytes.slot, add(mul(newlength, 2), 1))
let submod := sub(32, slength)
let mc := add(_postBytes, submod)
let end := add(_postBytes, mlength)
let mask := sub(exp(0x100, submod), 1)
sstore(
sc,
add(
and(
fslot,
0xffffffffffffffffffffffffffffffffffffffffffffffffffffffffffffff00
),
and(mload(mc), mask)
)
)
for {
mc := add(mc, 0x20)
sc := add(sc, 1)
} lt(mc, end) {
sc := add(sc, 1)
mc := add(mc, 0x20)
} {
sstore(sc, mload(mc))
}
mask := exp(0x100, sub(mc, end))
sstore(sc, mul(div(mload(mc), mask), mask))
}
default {
mstore(0x0, _preBytes.slot)
let sc := add(keccak256(0x0, 0x20), div(slength, 32))
sstore(_preBytes.slot, add(mul(newlength, 2), 1))
let slengthmod := mod(slength, 32)
let mlengthmod := mod(mlength, 32)
let submod := sub(32, slengthmod)
let mc := add(_postBytes, submod)
let end := add(_postBytes, mlength)
let mask := sub(exp(0x100, submod), 1)
sstore(sc, add(sload(sc), and(mload(mc), mask)))
for {
sc := add(sc, 1)
mc := add(mc, 0x20)
} lt(mc, end) {
sc := add(sc, 1)
mc := add(mc, 0x20)
} {
sstore(sc, mload(mc))
}
mask := exp(0x100, sub(mc, end))
sstore(sc, mul(div(mload(mc), mask), mask))
}
}
}
function slice(
bytes memory _bytes,
uint256 _start,
uint256 _length
)
internal
pure
returns (bytes memory)
{
require(_length + 31 >= _length, "slice_overflow");
require(_bytes.length >= _start + _length, "slice_outOfBounds");
bytes memory tempBytes;
assembly {
switch iszero(_length)
case 0 {
tempBytes := mload(0x40)
let lengthmod := and(_length, 31)
let mc := add(add(tempBytes, lengthmod), mul(0x20, iszero(lengthmod)))
let end := add(mc, _length)
for {
let cc := add(add(add(_bytes, lengthmod), mul(0x20, iszero(lengthmod))), _start)
} lt(mc, end) {
mc := add(mc, 0x20)
cc := add(cc, 0x20)
} {
mstore(mc, mload(cc))
}
mstore(tempBytes, _length)
mstore(0x40, and(add(mc, 31), not(31)))
}
default {
tempBytes := mload(0x40)
mstore(tempBytes, 0)
mstore(0x40, add(tempBytes, 0x20))
}
}
return tempBytes;
}
function toAddress(bytes memory _bytes, uint256 _start) internal pure returns (address) {
require(_bytes.length >= _start + 20, "toAddress_outOfBounds");
address tempAddress;
assembly {
tempAddress := div(mload(add(add(_bytes, 0x20), _start)), 0x1000000000000000000000000)
}
return tempAddress;
}
function toUint8(bytes memory _bytes, uint256 _start) internal pure returns (uint8) {
require(_bytes.length >= _start + 1 , "toUint8_outOfBounds");
uint8 tempUint;
assembly {
tempUint := mload(add(add(_bytes, 0x1), _start))
}
return tempUint;
}
function toUint16(bytes memory _bytes, uint256 _start) internal pure returns (uint16) {
require(_bytes.length >= _start + 2, "toUint16_outOfBounds");
uint16 tempUint;
assembly {
tempUint := mload(add(add(_bytes, 0x2), _start))
}
return tempUint;
}
function toUint32(bytes memory _bytes, uint256 _start) internal pure returns (uint32) {
require(_bytes.length >= _start + 4, "toUint32_outOfBounds");
uint32 tempUint;
assembly {
tempUint := mload(add(add(_bytes, 0x4), _start))
}
return tempUint;
}
function toUint64(bytes memory _bytes, uint256 _start) internal pure returns (uint64) {
require(_bytes.length >= _start + 8, "toUint64_outOfBounds");
uint64 tempUint;
assembly {
tempUint := mload(add(add(_bytes, 0x8), _start))
}
return tempUint;
}
function toUint96(bytes memory _bytes, uint256 _start) internal pure returns (uint96) {
require(_bytes.length >= _start + 12, "toUint96_outOfBounds");
uint96 tempUint;
assembly {
tempUint := mload(add(add(_bytes, 0xc), _start))
}
return tempUint;
}
function toUint128(bytes memory _bytes, uint256 _start) internal pure returns (uint128) {
require(_bytes.length >= _start + 16, "toUint128_outOfBounds");
uint128 tempUint;
assembly {
tempUint := mload(add(add(_bytes, 0x10), _start))
}
return tempUint;
}
function toUint256(bytes memory _bytes, uint256 _start) internal pure returns (uint256) {
require(_bytes.length >= _start + 32, "toUint256_outOfBounds");
uint256 tempUint;
assembly {
tempUint := mload(add(add(_bytes, 0x20), _start))
}
return tempUint;
}
function toBytes32(bytes memory _bytes, uint256 _start) internal pure returns (bytes32) {
require(_bytes.length >= _start + 32, "toBytes32_outOfBounds");
bytes32 tempBytes32;
assembly {
tempBytes32 := mload(add(add(_bytes, 0x20), _start))
}
return tempBytes32;
}
function equal(bytes memory _preBytes, bytes memory _postBytes) internal pure returns (bool) {
bool success = true;
assembly {
let length := mload(_preBytes)
switch eq(length, mload(_postBytes))
case 1 {
let cb := 1
let mc := add(_preBytes, 0x20)
let end := add(mc, length)
for {
let cc := add(_postBytes, 0x20)
} eq(add(lt(mc, end), cb), 2) {
mc := add(mc, 0x20)
cc := add(cc, 0x20)
} {
if iszero(eq(mload(mc), mload(cc))) {
success := 0
cb := 0
}
}
}
default {
success := 0
}
}
return success;
}
function equalStorage(
bytes storage _preBytes,
bytes memory _postBytes
)
internal
view
returns (bool)
{
bool success = true;
assembly {
let fslot := sload(_preBytes.slot)
let slength := div(and(fslot, sub(mul(0x100, iszero(and(fslot, 1))), 1)), 2)
let mlength := mload(_postBytes)
switch eq(slength, mlength)
case 1 {
if iszero(iszero(slength)) {
switch lt(slength, 32)
case 1 {
fslot := mul(div(fslot, 0x100), 0x100)
if iszero(eq(fslot, mload(add(_postBytes, 0x20)))) {
success := 0
}
}
default {
let cb := 1
mstore(0x0, _preBytes.slot)
let sc := keccak256(0x0, 0x20)
let mc := add(_postBytes, 0x20)
let end := add(mc, mlength)
for {} eq(add(lt(mc, end), cb), 2) {
sc := add(sc, 1)
mc := add(mc, 0x20)
} {
if iszero(eq(sload(sc), mload(mc))) {
success := 0
cb := 0
}
}
}
}
}
default {
success := 0
}
}
return success;
}
}
文件 3 的 6:IERC20.sol
pragma solidity ^0.8.0;
interface IERC20 {
event Transfer(address indexed from, address indexed to, uint256 value);
event Approval(address indexed owner, address indexed spender, uint256 value);
function totalSupply() external view returns (uint256);
function balanceOf(address account) external view returns (uint256);
function transfer(address to, uint256 amount) external returns (bool);
function allowance(address owner, address spender) external view returns (uint256);
function approve(address spender, uint256 amount) external returns (bool);
function transferFrom(address from, address to, uint256 amount) external returns (bool);
}
文件 4 的 6:IERC20Permit.sol
pragma solidity ^0.8.0;
interface IERC20Permit {
function permit(
address owner,
address spender,
uint256 value,
uint256 deadline,
uint8 v,
bytes32 r,
bytes32 s
) external;
function nonces(address owner) external view returns (uint256);
function DOMAIN_SEPARATOR() external view returns (bytes32);
}
文件 5 的 6:MayanForwarder.sol
pragma solidity ^0.8.0;
import "@openzeppelin/contracts/token/ERC20/IERC20.sol";
import "@openzeppelin/contracts/token/ERC20/utils/SafeERC20.sol";
import "@openzeppelin/contracts/token/ERC20/extensions/IERC20Permit.sol";
import "./libs/BytesLib.sol";
contract MayanForwarder {
using SafeERC20 for IERC20;
using BytesLib for bytes;
event SwapAndForwarded(uint256 amount);
address public guardian;
address public nextGuardian;
mapping(address => bool) public swapProtocols;
mapping(address => bool) public mayanProtocols;
event ForwardedEth(address mayanProtocol, bytes protocolData);
event ForwardedERC20(address token, uint256 amount, address mayanProtocol, bytes protocolData);
event SwapAndForwardedEth(uint256 amountIn, address swapProtocol, address middleToken, uint256 middleAmount, address mayanProtocol, bytes mayanData);
event SwapAndForwardedERC20(address tokenIn, uint256 amountIn, address swapProtocol, address middleToken, uint256 middleAmount, address mayanProtocol, bytes mayanData);
error UnsupportedProtocol();
struct PermitParams {
uint256 value;
uint256 deadline;
uint8 v;
bytes32 r;
bytes32 s;
}
constructor(address _guardian, address[] memory _swapProtocols, address[] memory _mayanProtocols) {
guardian = _guardian;
for (uint256 i = 0; i < _swapProtocols.length; i++) {
swapProtocols[_swapProtocols[i]] = true;
}
for (uint256 i = 0; i < _mayanProtocols.length; i++) {
mayanProtocols[_mayanProtocols[i]] = true;
}
}
function forwardEth(
address mayanProtocol,
bytes calldata protocolData
) external payable {
if (!mayanProtocols[mayanProtocol]) {
revert UnsupportedProtocol();
}
(bool success, bytes memory returnedData) = mayanProtocol.call{value: msg.value}(protocolData);
require(success, string(returnedData));
emit ForwardedEth(mayanProtocol, protocolData);
}
function forwardERC20(
address tokenIn,
uint256 amountIn,
PermitParams calldata permitParams,
address mayanProtocol,
bytes calldata protocolData
) external payable {
if (!mayanProtocols[mayanProtocol]) {
revert UnsupportedProtocol();
}
pullTokenIn(tokenIn, amountIn, permitParams);
maxApproveIfNeeded(tokenIn, mayanProtocol, amountIn);
(bool success, bytes memory returnedData) = mayanProtocol.call{value: msg.value}(protocolData);
require(success, string(returnedData));
emit ForwardedERC20(tokenIn, amountIn, mayanProtocol, protocolData);
}
function swapAndForwardEth(
uint256 amountIn,
address swapProtocol,
bytes calldata swapData,
address middleToken,
uint256 minMiddleAmount,
address mayanProtocol,
bytes calldata mayanData
) external payable {
if (!swapProtocols[swapProtocol] || !mayanProtocols[mayanProtocol]) {
revert UnsupportedProtocol();
}
require(middleToken != address(0), "middleToken cannot be zero address");
require(msg.value >= amountIn, "insufficient amountIn");
uint256 middleAmount = IERC20(middleToken).balanceOf(address(this));
(bool success, bytes memory returnedData) = swapProtocol.call{value: amountIn}(swapData);
require(success, string(returnedData));
middleAmount = IERC20(middleToken).balanceOf(address(this)) - middleAmount;
require(middleAmount >= minMiddleAmount, "MayanForwarder: insufficient middle token amount");
maxApproveIfNeeded(middleToken, mayanProtocol, middleAmount);
bytes memory modifiedData = replaceMiddleAmount(mayanData, middleAmount);
(success, returnedData) = mayanProtocol.call{value: msg.value - amountIn}(modifiedData);
require(success, string(returnedData));
emit SwapAndForwardedEth(amountIn, swapProtocol, middleToken, middleAmount, mayanProtocol, mayanData);
}
function swapAndForwardERC20(
address tokenIn,
uint256 amountIn,
PermitParams calldata permitParams,
address swapProtocol,
bytes calldata swapData,
address middleToken,
uint256 minMiddleAmount,
address mayanProtocol,
bytes calldata mayanData
) external payable {
if (!swapProtocols[swapProtocol] || !mayanProtocols[mayanProtocol]) {
revert UnsupportedProtocol();
}
require(tokenIn != middleToken, "tokenIn and tokenOut must be different");
pullTokenIn(tokenIn, amountIn, permitParams);
maxApproveIfNeeded(tokenIn, swapProtocol, amountIn);
uint256 middleAmount = IERC20(middleToken).balanceOf(address(this));
(bool success, bytes memory returnedData) = swapProtocol.call{value: 0}(swapData);
require(success, string(returnedData));
middleAmount = IERC20(middleToken).balanceOf(address(this)) - middleAmount;
require(middleAmount >= minMiddleAmount, "insufficient middle token");
maxApproveIfNeeded(middleToken, mayanProtocol, middleAmount);
bytes memory modifiedData = replaceMiddleAmount(mayanData, middleAmount);
(success, returnedData) = mayanProtocol.call{value: msg.value}(modifiedData);
require(success, string(returnedData));
transferBackRemaining(tokenIn, amountIn);
emit SwapAndForwardedERC20(tokenIn, amountIn, swapProtocol, middleToken, middleAmount, mayanProtocol, mayanData);
}
function replaceMiddleAmount(bytes calldata mayanData, uint256 middleAmount) internal pure returns(bytes memory) {
require(mayanData.length >= 68, "Mayan data too short");
bytes memory modifiedData = new bytes(mayanData.length);
for (uint i = 0; i < 36; i++) {
modifiedData[i] = mayanData[i];
}
bytes memory encodedAmount = abi.encode(middleAmount);
for (uint i = 0; i < 32; i++) {
modifiedData[i + 36] = encodedAmount[i];
}
for (uint i = 68; i < mayanData.length; i++) {
modifiedData[i] = mayanData[i];
}
return modifiedData;
}
function maxApproveIfNeeded(address tokenAddr, address spender, uint256 amount) internal {
IERC20 token = IERC20(tokenAddr);
uint256 currentAllowance = token.allowance(address(this), spender);
if (currentAllowance < amount) {
token.safeApprove(spender, 0);
token.safeApprove(spender, type(uint256).max);
}
}
function execPermit(
address token,
address owner,
PermitParams calldata permitParams
) internal {
IERC20Permit(token).permit(
owner,
address(this),
permitParams.value,
permitParams.deadline,
permitParams.v,
permitParams.r,
permitParams.s
);
}
function pullTokenIn(
address tokenIn,
uint256 amountIn,
PermitParams calldata permitParams
) internal {
uint256 allowance = IERC20(tokenIn).allowance(msg.sender, address(this));
if (allowance < amountIn) {
execPermit(tokenIn, msg.sender, permitParams);
}
IERC20(tokenIn).safeTransferFrom(msg.sender, address(this), amountIn);
}
function transferBackRemaining(address token, uint256 maxAmount) internal {
uint256 remaining = IERC20(token).balanceOf(address(this));
if (remaining > 0 && remaining <= maxAmount) {
IERC20(token).safeTransfer(msg.sender, remaining);
}
}
function rescueToken(address token, uint256 amount, address to) public {
require(msg.sender == guardian, 'only guardian');
IERC20(token).safeTransfer(to, amount);
}
function rescueEth(uint256 amount, address payable to) public {
require(msg.sender == guardian, 'only guardian');
require(to != address(0), 'transfer to the zero address');
to.transfer(amount);
}
function changeGuardian(address newGuardian) public {
require(msg.sender == guardian, 'only guardian');
nextGuardian = newGuardian;
}
function claimGuardian() public {
require(msg.sender == nextGuardian, 'only next guardian');
guardian = nextGuardian;
}
function setSwapProtocol(address swapProtocol, bool enabled) public {
require(msg.sender == guardian, 'only guardian');
swapProtocols[swapProtocol] = enabled;
}
function setMayanProtocol(address mayanProtocol, bool enabled) public {
require(msg.sender == guardian, 'only guardian');
mayanProtocols[mayanProtocol] = enabled;
}
}
文件 6 的 6:SafeERC20.sol
pragma solidity ^0.8.0;
import "../IERC20.sol";
import "../extensions/IERC20Permit.sol";
import "../../../utils/Address.sol";
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));
}
function safeApprove(IERC20 token, address spender, uint256 value) internal {
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 oldAllowance = token.allowance(address(this), spender);
_callOptionalReturn(token, abi.encodeWithSelector(token.approve.selector, spender, oldAllowance + value));
}
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");
_callOptionalReturn(token, abi.encodeWithSelector(token.approve.selector, spender, oldAllowance - value));
}
}
function forceApprove(IERC20 token, address spender, uint256 value) internal {
bytes memory approvalCall = abi.encodeWithSelector(token.approve.selector, spender, value);
if (!_callOptionalReturnBool(token, approvalCall)) {
_callOptionalReturn(token, abi.encodeWithSelector(token.approve.selector, spender, 0));
_callOptionalReturn(token, approvalCall);
}
}
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");
}
function _callOptionalReturn(IERC20 token, bytes memory data) private {
bytes memory returndata = address(token).functionCall(data, "SafeERC20: low-level call failed");
require(returndata.length == 0 || abi.decode(returndata, (bool)), "SafeERC20: ERC20 operation did not succeed");
}
function _callOptionalReturnBool(IERC20 token, bytes memory data) private returns (bool) {
(bool success, bytes memory returndata) = address(token).call(data);
return
success && (returndata.length == 0 || abi.decode(returndata, (bool))) && Address.isContract(address(token));
}
}
{
"compilationTarget": {
"src/MayanForwarder.sol": "MayanForwarder"
},
"evmVersion": "istanbul",
"libraries": {},
"metadata": {
"bytecodeHash": "ipfs"
},
"optimizer": {
"enabled": true,
"runs": 200
},
"remappings": []
}
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