编译器
0.8.17+commit.8df45f5f
文件 1 的 22: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 22:ERC20.sol
pragma solidity >=0.8.0;
abstract contract ERC20 {
event Transfer(address indexed from, address indexed to, uint256 amount);
event Approval(address indexed owner, address indexed spender, uint256 amount);
string public name;
string public symbol;
uint8 public immutable decimals;
uint256 public totalSupply;
mapping(address => uint256) public balanceOf;
mapping(address => mapping(address => uint256)) public allowance;
uint256 internal immutable INITIAL_CHAIN_ID;
bytes32 internal immutable INITIAL_DOMAIN_SEPARATOR;
mapping(address => uint256) public nonces;
constructor(
string memory _name,
string memory _symbol,
uint8 _decimals
) {
name = _name;
symbol = _symbol;
decimals = _decimals;
INITIAL_CHAIN_ID = block.chainid;
INITIAL_DOMAIN_SEPARATOR = computeDomainSeparator();
}
function approve(address spender, uint256 amount) public virtual returns (bool) {
allowance[msg.sender][spender] = amount;
emit Approval(msg.sender, spender, amount);
return true;
}
function transfer(address to, uint256 amount) public virtual returns (bool) {
balanceOf[msg.sender] -= amount;
unchecked {
balanceOf[to] += amount;
}
emit Transfer(msg.sender, to, amount);
return true;
}
function transferFrom(
address from,
address to,
uint256 amount
) public virtual returns (bool) {
uint256 allowed = allowance[from][msg.sender];
if (allowed != type(uint256).max) allowance[from][msg.sender] = allowed - amount;
balanceOf[from] -= amount;
unchecked {
balanceOf[to] += amount;
}
emit Transfer(from, to, amount);
return true;
}
function permit(
address owner,
address spender,
uint256 value,
uint256 deadline,
uint8 v,
bytes32 r,
bytes32 s
) public virtual {
require(deadline >= block.timestamp, "PERMIT_DEADLINE_EXPIRED");
unchecked {
address recoveredAddress = ecrecover(
keccak256(
abi.encodePacked(
"\x19\x01",
DOMAIN_SEPARATOR(),
keccak256(
abi.encode(
keccak256(
"Permit(address owner,address spender,uint256 value,uint256 nonce,uint256 deadline)"
),
owner,
spender,
value,
nonces[owner]++,
deadline
)
)
)
),
v,
r,
s
);
require(recoveredAddress != address(0) && recoveredAddress == owner, "INVALID_SIGNER");
allowance[recoveredAddress][spender] = value;
}
emit Approval(owner, spender, value);
}
function DOMAIN_SEPARATOR() public view virtual returns (bytes32) {
return block.chainid == INITIAL_CHAIN_ID ? INITIAL_DOMAIN_SEPARATOR : computeDomainSeparator();
}
function computeDomainSeparator() internal view virtual returns (bytes32) {
return
keccak256(
abi.encode(
keccak256("EIP712Domain(string name,string version,uint256 chainId,address verifyingContract)"),
keccak256(bytes(name)),
keccak256("1"),
block.chainid,
address(this)
)
);
}
function _mint(address to, uint256 amount) internal virtual {
totalSupply += amount;
unchecked {
balanceOf[to] += amount;
}
emit Transfer(address(0), to, amount);
}
function _burn(address from, uint256 amount) internal virtual {
balanceOf[from] -= amount;
unchecked {
totalSupply -= amount;
}
emit Transfer(from, address(0), amount);
}
}
文件 3 的 22:GenericErrors.sol
pragma solidity 0.8.17;
error AlreadyInitialized();
error CannotAuthoriseSelf();
error CannotBridgeToSameNetwork();
error ContractCallNotAllowed();
error CumulativeSlippageTooHigh(uint256 minAmount, uint256 receivedAmount);
error ExternalCallFailed();
error InformationMismatch();
error InsufficientBalance(uint256 required, uint256 balance);
error InvalidAmount();
error InvalidCallData();
error InvalidConfig();
error InvalidContract();
error InvalidDestinationChain();
error InvalidFallbackAddress();
error InvalidReceiver();
error InvalidSendingToken();
error NativeAssetNotSupported();
error NativeAssetTransferFailed();
error NoSwapDataProvided();
error NoSwapFromZeroBalance();
error NotAContract();
error NotInitialized();
error NoTransferToNullAddress();
error NullAddrIsNotAnERC20Token();
error NullAddrIsNotAValidSpender();
error OnlyContractOwner();
error RecoveryAddressCannotBeZero();
error ReentrancyError();
error TokenNotSupported();
error UnAuthorized();
error UnsupportedChainId(uint256 chainId);
error WithdrawFailed();
error ZeroAmount();
文件 4 的 22:HopFacetOptimized.sol
pragma solidity 0.8.17;
import { ILiFi } from "../Interfaces/ILiFi.sol";
import { IHopBridge } from "../Interfaces/IHopBridge.sol";
import { LibAsset, IERC20 } from "../Libraries/LibAsset.sol";
import { SwapperV2, LibSwap } from "../Helpers/SwapperV2.sol";
import { LibDiamond } from "../Libraries/LibDiamond.sol";
contract HopFacetOptimized is ILiFi, SwapperV2 {
struct HopData {
uint256 bonderFee;
uint256 amountOutMin;
uint256 deadline;
uint256 destinationAmountOutMin;
uint256 destinationDeadline;
IHopBridge hopBridge;
address relayer;
uint256 relayerFee;
uint256 nativeFee;
}
function setApprovalForBridges(
address[] calldata bridges,
address[] calldata tokensToApprove
) external {
LibDiamond.enforceIsContractOwner();
for (uint256 i; i < bridges.length; i++) {
LibAsset.maxApproveERC20(
IERC20(tokensToApprove[i]),
address(bridges[i]),
type(uint256).max
);
}
}
function startBridgeTokensViaHopL1ERC20(
ILiFi.BridgeData calldata _bridgeData,
HopData calldata _hopData
) external payable {
LibAsset.transferFromERC20(
_bridgeData.sendingAssetId,
msg.sender,
address(this),
_bridgeData.minAmount
);
_hopData.hopBridge.sendToL2{ value: _hopData.nativeFee }(
_bridgeData.destinationChainId,
_bridgeData.receiver,
_bridgeData.minAmount,
_hopData.destinationAmountOutMin,
_hopData.destinationDeadline,
_hopData.relayer,
_hopData.relayerFee
);
emit LiFiTransferStarted(_bridgeData);
}
function startBridgeTokensViaHopL1Native(
ILiFi.BridgeData calldata _bridgeData,
HopData calldata _hopData
) external payable {
_hopData.hopBridge.sendToL2{
value: _bridgeData.minAmount + _hopData.nativeFee
}(
_bridgeData.destinationChainId,
_bridgeData.receiver,
_bridgeData.minAmount,
_hopData.destinationAmountOutMin,
_hopData.destinationDeadline,
_hopData.relayer,
_hopData.relayerFee
);
emit LiFiTransferStarted(_bridgeData);
}
function swapAndStartBridgeTokensViaHopL1ERC20(
ILiFi.BridgeData memory _bridgeData,
LibSwap.SwapData[] calldata _swapData,
HopData calldata _hopData
) external payable {
_bridgeData.minAmount = _depositAndSwap(
_bridgeData.transactionId,
_bridgeData.minAmount,
_swapData,
payable(msg.sender),
_hopData.nativeFee
);
_hopData.hopBridge.sendToL2{ value: _hopData.nativeFee }(
_bridgeData.destinationChainId,
_bridgeData.receiver,
_bridgeData.minAmount,
_hopData.destinationAmountOutMin,
_hopData.destinationDeadline,
_hopData.relayer,
_hopData.relayerFee
);
emit LiFiTransferStarted(_bridgeData);
}
function swapAndStartBridgeTokensViaHopL1Native(
ILiFi.BridgeData memory _bridgeData,
LibSwap.SwapData[] calldata _swapData,
HopData calldata _hopData
) external payable {
_bridgeData.minAmount = _depositAndSwap(
_bridgeData.transactionId,
_bridgeData.minAmount,
_swapData,
payable(msg.sender),
_hopData.nativeFee
);
_hopData.hopBridge.sendToL2{
value: _bridgeData.minAmount + _hopData.nativeFee
}(
_bridgeData.destinationChainId,
_bridgeData.receiver,
_bridgeData.minAmount,
_hopData.destinationAmountOutMin,
_hopData.destinationDeadline,
_hopData.relayer,
_hopData.relayerFee
);
emit LiFiTransferStarted(_bridgeData);
}
function startBridgeTokensViaHopL2ERC20(
ILiFi.BridgeData calldata _bridgeData,
HopData calldata _hopData
) external {
LibAsset.transferFromERC20(
_bridgeData.sendingAssetId,
msg.sender,
address(this),
_bridgeData.minAmount
);
_hopData.hopBridge.swapAndSend(
_bridgeData.destinationChainId,
_bridgeData.receiver,
_bridgeData.minAmount,
_hopData.bonderFee,
_hopData.amountOutMin,
_hopData.deadline,
_hopData.destinationAmountOutMin,
_hopData.destinationDeadline
);
emit LiFiTransferStarted(_bridgeData);
}
function startBridgeTokensViaHopL2Native(
ILiFi.BridgeData calldata _bridgeData,
HopData calldata _hopData
) external payable {
_hopData.hopBridge.swapAndSend{ value: _bridgeData.minAmount }(
_bridgeData.destinationChainId,
_bridgeData.receiver,
_bridgeData.minAmount,
_hopData.bonderFee,
_hopData.amountOutMin,
_hopData.deadline,
_hopData.destinationAmountOutMin,
_hopData.destinationDeadline
);
emit LiFiTransferStarted(_bridgeData);
}
function swapAndStartBridgeTokensViaHopL2ERC20(
ILiFi.BridgeData memory _bridgeData,
LibSwap.SwapData[] calldata _swapData,
HopData calldata _hopData
) external payable {
_bridgeData.minAmount = _depositAndSwap(
_bridgeData.transactionId,
_bridgeData.minAmount,
_swapData,
payable(msg.sender)
);
_hopData.hopBridge.swapAndSend(
_bridgeData.destinationChainId,
_bridgeData.receiver,
_bridgeData.minAmount,
_hopData.bonderFee,
_hopData.amountOutMin,
_hopData.deadline,
_hopData.destinationAmountOutMin,
_hopData.destinationDeadline
);
emit LiFiTransferStarted(_bridgeData);
}
function swapAndStartBridgeTokensViaHopL2Native(
ILiFi.BridgeData memory _bridgeData,
LibSwap.SwapData[] calldata _swapData,
HopData calldata _hopData
) external payable {
_bridgeData.minAmount = _depositAndSwap(
_bridgeData.transactionId,
_bridgeData.minAmount,
_swapData,
payable(msg.sender)
);
_hopData.hopBridge.swapAndSend{ value: _bridgeData.minAmount }(
_bridgeData.destinationChainId,
_bridgeData.receiver,
_bridgeData.minAmount,
_hopData.bonderFee,
_hopData.amountOutMin,
_hopData.deadline,
_hopData.destinationAmountOutMin,
_hopData.destinationDeadline
);
emit LiFiTransferStarted(_bridgeData);
}
}
文件 5 的 22:HopFacetPacked.sol
pragma solidity 0.8.17;
import { IHopBridge, IL2AmmWrapper, ISwap } from "../Interfaces/IHopBridge.sol";
import { ILiFi } from "../Interfaces/ILiFi.sol";
import { ERC20, SafeTransferLib } from "solmate/utils/SafeTransferLib.sol";
import { LibAsset, IERC20 } from "../Libraries/LibAsset.sol";
import { TransferrableOwnership } from "../Helpers/TransferrableOwnership.sol";
import { HopFacetOptimized } from "lifi/Facets/HopFacetOptimized.sol";
import { WETH } from "solmate/tokens/WETH.sol";
contract HopFacetPacked is ILiFi, TransferrableOwnership {
using SafeTransferLib for ERC20;
address public immutable nativeBridge;
address public immutable nativeL2CanonicalToken;
address public immutable nativeHToken;
address public immutable nativeExchangeAddress;
error Invalid();
event LiFiHopTransfer(bytes8 _transactionId);
constructor(
address _owner,
address _wrapper
) TransferrableOwnership(_owner) {
bool wrapperIsSet = _wrapper != address(0);
if (block.chainid == 1 && wrapperIsSet) {
revert Invalid();
}
nativeL2CanonicalToken = wrapperIsSet
? IL2AmmWrapper(_wrapper).l2CanonicalToken()
: address(0);
nativeHToken = wrapperIsSet
? IL2AmmWrapper(_wrapper).hToken()
: address(0);
nativeExchangeAddress = wrapperIsSet
? IL2AmmWrapper(_wrapper).exchangeAddress()
: address(0);
nativeBridge = wrapperIsSet
? IL2AmmWrapper(_wrapper).bridge()
: address(0);
}
function setApprovalForHopBridges(
address[] calldata bridges,
address[] calldata tokensToApprove
) external onlyOwner {
uint256 numBridges = bridges.length;
for (uint256 i; i < numBridges; i++) {
LibAsset.maxApproveERC20(
IERC20(tokensToApprove[i]),
address(bridges[i]),
type(uint256).max
);
}
}
function startBridgeTokensViaHopL2NativePacked() external payable {
uint256 destinationChainId = uint256(uint32(bytes4(msg.data[32:36])));
uint256 amountOutMin = uint256(uint128(bytes16(msg.data[52:68])));
bool toL1 = destinationChainId == 1;
WETH(payable(nativeL2CanonicalToken)).deposit{ value: msg.value }();
uint256 swapAmount = ISwap(nativeExchangeAddress).swap(
0,
1,
msg.value,
amountOutMin,
block.timestamp
);
IHopBridge(nativeBridge).send(
destinationChainId,
address(bytes20(msg.data[12:32])),
swapAmount,
uint256(uint128(bytes16(msg.data[36:52]))),
toL1 ? 0 : amountOutMin,
toL1 ? 0 : block.timestamp + 7 * 24 * 60 * 60
);
emit LiFiHopTransfer(
bytes8(msg.data[4:12])
);
}
function startBridgeTokensViaHopL2NativeMin(
bytes8 transactionId,
address receiver,
uint256 destinationChainId,
uint256 bonderFee,
uint256 amountOutMin,
uint256 destinationAmountOutMin,
uint256 destinationDeadline,
address hopBridge
) external payable {
IHopBridge(hopBridge).swapAndSend{ value: msg.value }(
destinationChainId,
receiver,
msg.value,
bonderFee,
amountOutMin,
block.timestamp,
destinationAmountOutMin,
destinationDeadline
);
emit LiFiHopTransfer(transactionId);
}
function encode_startBridgeTokensViaHopL2NativePacked(
bytes8 transactionId,
address receiver,
uint256 destinationChainId,
uint256 bonderFee,
uint256 amountOutMin
) external pure returns (bytes memory) {
require(
destinationChainId <= type(uint32).max,
"destinationChainId value passed too big to fit in uint32"
);
require(
bonderFee <= type(uint128).max,
"bonderFee value passed too big to fit in uint128"
);
require(
amountOutMin <= type(uint128).max,
"amountOutMin value passed too big to fit in uint128"
);
return
bytes.concat(
HopFacetPacked.startBridgeTokensViaHopL2NativePacked.selector,
bytes8(transactionId),
bytes20(receiver),
bytes4(uint32(destinationChainId)),
bytes16(uint128(bonderFee)),
bytes16(uint128(amountOutMin))
);
}
function decode_startBridgeTokensViaHopL2NativePacked(
bytes calldata _data
)
external
pure
returns (BridgeData memory, HopFacetOptimized.HopData memory)
{
require(
_data.length >= 68,
"data passed in is not the correct length"
);
BridgeData memory bridgeData;
HopFacetOptimized.HopData memory hopData;
bridgeData.transactionId = bytes32(bytes8(_data[4:12]));
bridgeData.receiver = address(bytes20(_data[12:32]));
bridgeData.destinationChainId = uint256(uint32(bytes4(_data[32:36])));
hopData.bonderFee = uint256(uint128(bytes16(_data[36:52])));
hopData.amountOutMin = uint256(uint128(bytes16(_data[52:68])));
return (bridgeData, hopData);
}
function startBridgeTokensViaHopL2ERC20Packed() external {
uint256 destinationChainId = uint256(uint32(bytes4(msg.data[32:36])));
uint256 amount = uint256(uint128(bytes16(msg.data[56:72])));
uint256 amountOutMin = uint256(uint128(bytes16(msg.data[88:104])));
bool toL1 = destinationChainId == 1;
IL2AmmWrapper wrapper = IL2AmmWrapper(
address(bytes20(msg.data[124:144]))
);
ERC20(address(bytes20(msg.data[36:56]))).safeTransferFrom(
msg.sender,
address(this),
amount
);
uint256 swapAmount = ISwap(wrapper.exchangeAddress()).swap(
0,
1,
amount,
amountOutMin,
block.timestamp
);
IHopBridge(wrapper.bridge()).send(
destinationChainId,
address(bytes20(msg.data[12:32])),
swapAmount,
uint256(uint128(bytes16(msg.data[72:88]))),
toL1 ? 0 : uint256(uint128(bytes16(msg.data[104:120]))),
toL1 ? 0 : uint256(uint32(bytes4(msg.data[120:124])))
);
emit LiFiHopTransfer(bytes8(msg.data[4:12]));
}
function startBridgeTokensViaHopL2ERC20Min(
bytes8 transactionId,
address receiver,
uint256 destinationChainId,
address sendingAssetId,
uint256 minAmount,
uint256 bonderFee,
uint256 amountOutMin,
uint256 destinationAmountOutMin,
uint256 destinationDeadline,
address hopBridge
) external {
ERC20(sendingAssetId).safeTransferFrom(
msg.sender,
address(this),
minAmount
);
IHopBridge(hopBridge).swapAndSend(
destinationChainId,
receiver,
minAmount,
bonderFee,
amountOutMin,
block.timestamp,
destinationAmountOutMin,
destinationDeadline
);
emit LiFiHopTransfer(transactionId);
}
function encode_startBridgeTokensViaHopL2ERC20Packed(
bytes32 transactionId,
address receiver,
uint256 destinationChainId,
address sendingAssetId,
uint256 minAmount,
uint256 bonderFee,
uint256 amountOutMin,
uint256 destinationAmountOutMin,
uint256 destinationDeadline,
address wrapper
) external pure returns (bytes memory) {
require(
destinationChainId <= type(uint32).max,
"destinationChainId value passed too big to fit in uint32"
);
require(
minAmount <= type(uint128).max,
"amount value passed too big to fit in uint128"
);
require(
bonderFee <= type(uint128).max,
"bonderFee value passed too big to fit in uint128"
);
require(
amountOutMin <= type(uint128).max,
"amountOutMin value passed too big to fit in uint128"
);
require(
destinationAmountOutMin <= type(uint128).max,
"destinationAmountOutMin value passed too big to fit in uint128"
);
require(
destinationDeadline <= type(uint32).max,
"destinationDeadline value passed too big to fit in uint32"
);
return
bytes.concat(
HopFacetPacked.startBridgeTokensViaHopL2ERC20Packed.selector,
bytes8(transactionId),
bytes20(receiver),
bytes4(uint32(destinationChainId)),
bytes20(sendingAssetId),
bytes16(uint128(minAmount)),
bytes16(uint128(bonderFee)),
bytes16(uint128(amountOutMin)),
bytes16(uint128(destinationAmountOutMin)),
bytes4(uint32(destinationDeadline)),
bytes20(wrapper)
);
}
function decode_startBridgeTokensViaHopL2ERC20Packed(
bytes calldata _data
)
external
pure
returns (BridgeData memory, HopFacetOptimized.HopData memory)
{
require(
_data.length >= 144,
"data passed in is not the correct length"
);
BridgeData memory bridgeData;
HopFacetOptimized.HopData memory hopData;
bridgeData.transactionId = bytes32(bytes8(_data[4:12]));
bridgeData.receiver = address(bytes20(_data[12:32]));
bridgeData.destinationChainId = uint256(uint32(bytes4(_data[32:36])));
bridgeData.sendingAssetId = address(bytes20(_data[36:56]));
bridgeData.minAmount = uint256(uint128(bytes16(_data[56:72])));
hopData.bonderFee = uint256(uint128(bytes16(_data[72:88])));
hopData.amountOutMin = uint256(uint128(bytes16(_data[88:104])));
hopData.destinationAmountOutMin = uint256(
uint128(bytes16(_data[104:120]))
);
hopData.destinationDeadline = uint256(uint32(bytes4(_data[120:124])));
hopData.hopBridge = IHopBridge(address(bytes20(_data[124:144])));
return (bridgeData, hopData);
}
function startBridgeTokensViaHopL1NativePacked() external payable {
IHopBridge(address(bytes20(msg.data[88:108]))).sendToL2{
value: msg.value
}(
uint256(uint32(bytes4(msg.data[32:36]))),
address(bytes20(msg.data[12:32])),
msg.value,
uint256(uint128(bytes16(msg.data[36:52]))),
block.timestamp + 7 * 24 * 60 * 60,
address(bytes20(msg.data[52:72])),
uint256(uint128(bytes16(msg.data[72:88])))
);
emit LiFiHopTransfer(bytes8(msg.data[4:12]));
}
function startBridgeTokensViaHopL1NativeMin(
bytes8 transactionId,
address receiver,
uint256 destinationChainId,
uint256 destinationAmountOutMin,
address relayer,
uint256 relayerFee,
address hopBridge
) external payable {
IHopBridge(hopBridge).sendToL2{ value: msg.value }(
destinationChainId,
receiver,
msg.value,
destinationAmountOutMin,
block.timestamp + 7 * 24 * 60 * 60,
relayer,
relayerFee
);
emit LiFiHopTransfer(transactionId);
}
function encode_startBridgeTokensViaHopL1NativePacked(
bytes8 transactionId,
address receiver,
uint256 destinationChainId,
uint256 destinationAmountOutMin,
address relayer,
uint256 relayerFee,
address hopBridge
) external pure returns (bytes memory) {
require(
destinationChainId <= type(uint32).max,
"destinationChainId value passed too big to fit in uint32"
);
require(
destinationAmountOutMin <= type(uint128).max,
"destinationAmountOutMin value passed too big to fit in uint128"
);
require(
relayerFee <= type(uint128).max,
"relayerFee value passed too big to fit in uint128"
);
return
bytes.concat(
HopFacetPacked.startBridgeTokensViaHopL1NativePacked.selector,
bytes8(transactionId),
bytes20(receiver),
bytes4(uint32(destinationChainId)),
bytes16(uint128(destinationAmountOutMin)),
bytes20(relayer),
bytes16(uint128(relayerFee)),
bytes20(hopBridge)
);
}
function decode_startBridgeTokensViaHopL1NativePacked(
bytes calldata _data
)
external
pure
returns (BridgeData memory, HopFacetOptimized.HopData memory)
{
require(
_data.length >= 108,
"data passed in is not the correct length"
);
BridgeData memory bridgeData;
HopFacetOptimized.HopData memory hopData;
bridgeData.transactionId = bytes32(bytes8(_data[4:12]));
bridgeData.receiver = address(bytes20(_data[12:32]));
bridgeData.destinationChainId = uint256(uint32(bytes4(_data[32:36])));
hopData.destinationAmountOutMin = uint256(
uint128(bytes16(_data[36:52]))
);
hopData.hopBridge = IHopBridge(address(bytes20(_data[88:108])));
return (bridgeData, hopData);
}
function startBridgeTokensViaHopL1ERC20Packed() external payable {
uint256 amount = uint256(uint128(bytes16(msg.data[56:72])));
ERC20(address(bytes20(msg.data[36:56]))).safeTransferFrom(
msg.sender,
address(this),
amount
);
IHopBridge(address(bytes20(msg.data[124:144]))).sendToL2(
uint256(uint32(bytes4(msg.data[32:36]))),
address(bytes20(msg.data[12:32])),
amount,
uint256(uint128(bytes16(msg.data[72:88]))),
block.timestamp + 7 * 24 * 60 * 60,
address(bytes20(msg.data[88:108])),
uint256(uint128(bytes16(msg.data[108:124])))
);
emit LiFiHopTransfer(bytes8(msg.data[4:12]));
}
function startBridgeTokensViaHopL1ERC20Min(
bytes8 transactionId,
address receiver,
uint256 destinationChainId,
address sendingAssetId,
uint256 minAmount,
uint256 destinationAmountOutMin,
address relayer,
uint256 relayerFee,
address hopBridge
) external {
ERC20(sendingAssetId).safeTransferFrom(
msg.sender,
address(this),
minAmount
);
IHopBridge(hopBridge).sendToL2(
destinationChainId,
receiver,
minAmount,
destinationAmountOutMin,
block.timestamp + 7 * 24 * 60 * 60,
relayer,
relayerFee
);
emit LiFiHopTransfer(transactionId);
}
function encode_startBridgeTokensViaHopL1ERC20Packed(
bytes8 transactionId,
address receiver,
uint256 destinationChainId,
address sendingAssetId,
uint256 minAmount,
uint256 destinationAmountOutMin,
address relayer,
uint256 relayerFee,
address hopBridge
) external pure returns (bytes memory) {
require(
destinationChainId <= type(uint32).max,
"destinationChainId value passed too big to fit in uint32"
);
require(
minAmount <= type(uint128).max,
"amount value passed too big to fit in uint128"
);
require(
destinationAmountOutMin <= type(uint128).max,
"destinationAmountOutMin value passed too big to fit in uint128"
);
require(
relayerFee <= type(uint128).max,
"relayerFee value passed too big to fit in uint128"
);
return
bytes.concat(
HopFacetPacked.startBridgeTokensViaHopL1ERC20Packed.selector,
bytes8(transactionId),
bytes20(receiver),
bytes4(uint32(destinationChainId)),
bytes20(sendingAssetId),
bytes16(uint128(minAmount)),
bytes16(uint128(destinationAmountOutMin)),
bytes20(relayer),
bytes16(uint128(relayerFee)),
bytes20(hopBridge)
);
}
function decode_startBridgeTokensViaHopL1ERC20Packed(
bytes calldata _data
)
external
pure
returns (BridgeData memory, HopFacetOptimized.HopData memory)
{
require(
_data.length >= 144,
"data passed in is not the correct length"
);
BridgeData memory bridgeData;
HopFacetOptimized.HopData memory hopData;
bridgeData.transactionId = bytes32(bytes8(_data[4:12]));
bridgeData.receiver = address(bytes20(_data[12:32]));
bridgeData.destinationChainId = uint256(uint32(bytes4(_data[32:36])));
bridgeData.sendingAssetId = address(bytes20(_data[36:56]));
bridgeData.minAmount = uint256(uint128(bytes16(_data[56:72])));
hopData.destinationAmountOutMin = uint256(
uint128(bytes16(_data[72:88]))
);
hopData.hopBridge = IHopBridge(address(bytes20(_data[124:144])));
return (bridgeData, hopData);
}
}
文件 6 的 22:IDiamondCut.sol
pragma solidity 0.8.17;
interface IDiamondCut {
enum FacetCutAction {
Add,
Replace,
Remove
}
struct FacetCut {
address facetAddress;
FacetCutAction action;
bytes4[] functionSelectors;
}
function diamondCut(
FacetCut[] calldata _diamondCut,
address _init,
bytes calldata _calldata
) external;
event DiamondCut(FacetCut[] _diamondCut, address _init, bytes _calldata);
}
文件 7 的 22:IERC173.sol
pragma solidity 0.8.17;
interface IERC173 {
event OwnershipTransferred(
address indexed previousOwner,
address indexed newOwner
);
function owner() external view returns (address owner_);
function transferOwnership(address _newOwner) external;
}
文件 8 的 22: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 9 的 22: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 10 的 22:IHopBridge.sol
pragma solidity 0.8.17;
interface IHopBridge {
function sendToL2(
uint256 chainId,
address recipient,
uint256 amount,
uint256 amountOutMin,
uint256 deadline,
address relayer,
uint256 relayerFee
) external payable;
function swapAndSend(
uint256 chainId,
address recipient,
uint256 amount,
uint256 bonderFee,
uint256 amountOutMin,
uint256 deadline,
uint256 destinationAmountOutMin,
uint256 destinationDeadline
) external payable;
function send(
uint256 chainId,
address recipient,
uint256 amount,
uint256 bonderFee,
uint256 amountOutMin,
uint256 deadline
) external;
}
interface IL2AmmWrapper {
function bridge() external view returns (address);
function l2CanonicalToken() external view returns (address);
function hToken() external view returns (address);
function exchangeAddress() external view returns (address);
}
interface ISwap {
function swap(
uint8 tokenIndexFrom,
uint8 tokenIndexTo,
uint256 dx,
uint256 minDy,
uint256 deadline
) external returns (uint256);
}
文件 11 的 22:ILiFi.sol
pragma solidity 0.8.17;
interface ILiFi {
struct BridgeData {
bytes32 transactionId;
string bridge;
string integrator;
address referrer;
address sendingAssetId;
address receiver;
uint256 minAmount;
uint256 destinationChainId;
bool hasSourceSwaps;
bool hasDestinationCall;
}
event LiFiTransferStarted(ILiFi.BridgeData bridgeData);
event LiFiTransferCompleted(
bytes32 indexed transactionId,
address receivingAssetId,
address receiver,
uint256 amount,
uint256 timestamp
);
event LiFiTransferRecovered(
bytes32 indexed transactionId,
address receivingAssetId,
address receiver,
uint256 amount,
uint256 timestamp
);
event LiFiGenericSwapCompleted(
bytes32 indexed transactionId,
string integrator,
string referrer,
address receiver,
address fromAssetId,
address toAssetId,
uint256 fromAmount,
uint256 toAmount
);
event LiFiSwappedGeneric(
bytes32 indexed transactionId,
string integrator,
string referrer,
address fromAssetId,
address toAssetId,
uint256 fromAmount,
uint256 toAmount
);
}
文件 12 的 22:LibAllowList.sol
pragma solidity 0.8.17;
import { InvalidContract } from "../Errors/GenericErrors.sol";
library LibAllowList {
bytes32 internal constant NAMESPACE =
keccak256("com.lifi.library.allow.list");
struct AllowListStorage {
mapping(address => bool) allowlist;
mapping(bytes4 => bool) selectorAllowList;
address[] contracts;
}
function addAllowedContract(address _contract) internal {
_checkAddress(_contract);
AllowListStorage storage als = _getStorage();
if (als.allowlist[_contract]) return;
als.allowlist[_contract] = true;
als.contracts.push(_contract);
}
function contractIsAllowed(
address _contract
) internal view returns (bool) {
return _getStorage().allowlist[_contract];
}
function removeAllowedContract(address _contract) internal {
AllowListStorage storage als = _getStorage();
if (!als.allowlist[_contract]) {
return;
}
als.allowlist[_contract] = false;
uint256 length = als.contracts.length;
for (uint256 i = 0; i < length; i++) {
if (als.contracts[i] == _contract) {
als.contracts[i] = als.contracts[length - 1];
als.contracts.pop();
break;
}
}
}
function getAllowedContracts() internal view returns (address[] memory) {
return _getStorage().contracts;
}
function addAllowedSelector(bytes4 _selector) internal {
_getStorage().selectorAllowList[_selector] = true;
}
function removeAllowedSelector(bytes4 _selector) internal {
_getStorage().selectorAllowList[_selector] = false;
}
function selectorIsAllowed(bytes4 _selector) internal view returns (bool) {
return _getStorage().selectorAllowList[_selector];
}
function _getStorage()
internal
pure
returns (AllowListStorage storage als)
{
bytes32 position = NAMESPACE;
assembly {
als.slot := position
}
}
function _checkAddress(address _contract) private view {
if (_contract == address(0)) revert InvalidContract();
if (_contract.code.length == 0) revert InvalidContract();
}
}
文件 13 的 22:LibAsset.sol
pragma solidity 0.8.17;
import { InsufficientBalance, NullAddrIsNotAnERC20Token, NullAddrIsNotAValidSpender, NoTransferToNullAddress, InvalidAmount, NativeAssetTransferFailed } from "../Errors/GenericErrors.sol";
import "@openzeppelin/contracts/token/ERC20/utils/SafeERC20.sol";
import "@openzeppelin/contracts/token/ERC20/IERC20.sol";
import { LibSwap } from "./LibSwap.sol";
library LibAsset {
uint256 private constant MAX_UINT = type(uint256).max;
address internal constant NULL_ADDRESS = address(0);
address internal constant NATIVE_ASSETID = NULL_ADDRESS;
function getOwnBalance(address assetId) internal view returns (uint256) {
return
isNativeAsset(assetId)
? address(this).balance
: IERC20(assetId).balanceOf(address(this));
}
function transferNativeAsset(
address payable recipient,
uint256 amount
) private {
if (recipient == NULL_ADDRESS) revert NoTransferToNullAddress();
if (amount > address(this).balance)
revert InsufficientBalance(amount, address(this).balance);
(bool success, ) = recipient.call{ value: amount }("");
if (!success) revert NativeAssetTransferFailed();
}
function maxApproveERC20(
IERC20 assetId,
address spender,
uint256 amount
) internal {
if (isNativeAsset(address(assetId))) {
return;
}
if (spender == NULL_ADDRESS) {
revert NullAddrIsNotAValidSpender();
}
if (assetId.allowance(address(this), spender) < amount) {
SafeERC20.safeApprove(IERC20(assetId), spender, 0);
SafeERC20.safeApprove(IERC20(assetId), spender, MAX_UINT);
}
}
function transferERC20(
address assetId,
address recipient,
uint256 amount
) private {
if (isNativeAsset(assetId)) {
revert NullAddrIsNotAnERC20Token();
}
if (recipient == NULL_ADDRESS) {
revert NoTransferToNullAddress();
}
uint256 assetBalance = IERC20(assetId).balanceOf(address(this));
if (amount > assetBalance) {
revert InsufficientBalance(amount, assetBalance);
}
SafeERC20.safeTransfer(IERC20(assetId), recipient, amount);
}
function transferFromERC20(
address assetId,
address from,
address to,
uint256 amount
) internal {
if (isNativeAsset(assetId)) {
revert NullAddrIsNotAnERC20Token();
}
if (to == NULL_ADDRESS) {
revert NoTransferToNullAddress();
}
IERC20 asset = IERC20(assetId);
uint256 prevBalance = asset.balanceOf(to);
SafeERC20.safeTransferFrom(asset, from, to, amount);
if (asset.balanceOf(to) - prevBalance != amount) {
revert InvalidAmount();
}
}
function depositAsset(address assetId, uint256 amount) internal {
if (amount == 0) revert InvalidAmount();
if (isNativeAsset(assetId)) {
if (msg.value < amount) revert InvalidAmount();
} else {
uint256 balance = IERC20(assetId).balanceOf(msg.sender);
if (balance < amount) revert InsufficientBalance(amount, balance);
transferFromERC20(assetId, msg.sender, address(this), amount);
}
}
function depositAssets(LibSwap.SwapData[] calldata swaps) internal {
for (uint256 i = 0; i < swaps.length; ) {
LibSwap.SwapData calldata swap = swaps[i];
if (swap.requiresDeposit) {
depositAsset(swap.sendingAssetId, swap.fromAmount);
}
unchecked {
i++;
}
}
}
function isNativeAsset(address assetId) internal pure returns (bool) {
return assetId == NATIVE_ASSETID;
}
function transferAsset(
address assetId,
address payable recipient,
uint256 amount
) internal {
isNativeAsset(assetId)
? transferNativeAsset(recipient, amount)
: transferERC20(assetId, recipient, amount);
}
function isContract(address _contractAddr) internal view returns (bool) {
uint256 size;
assembly {
size := extcodesize(_contractAddr)
}
return size > 0;
}
}
文件 14 的 22:LibBytes.sol
pragma solidity 0.8.17;
library LibBytes {
error SliceOverflow();
error SliceOutOfBounds();
error AddressOutOfBounds();
bytes16 private constant _SYMBOLS = "0123456789abcdef";
function slice(
bytes memory _bytes,
uint256 _start,
uint256 _length
) internal pure returns (bytes memory) {
if (_length + 31 < _length) revert SliceOverflow();
if (_bytes.length < _start + _length) revert SliceOutOfBounds();
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) {
if (_bytes.length < _start + 20) {
revert AddressOutOfBounds();
}
address tempAddress;
assembly {
tempAddress := div(
mload(add(add(_bytes, 0x20), _start)),
0x1000000000000000000000000
)
}
return tempAddress;
}
function toHexString(
uint256 value,
uint256 length
) internal pure returns (string memory) {
bytes memory buffer = new bytes(2 * length + 2);
buffer[0] = "0";
buffer[1] = "x";
for (uint256 i = 2 * length + 1; i > 1; --i) {
buffer[i] = _SYMBOLS[value & 0xf];
value >>= 4;
}
require(value == 0, "Strings: hex length insufficient");
return string(buffer);
}
}
文件 15 的 22:LibDiamond.sol
pragma solidity 0.8.17;
import { IDiamondCut } from "../Interfaces/IDiamondCut.sol";
import { LibUtil } from "../Libraries/LibUtil.sol";
import { OnlyContractOwner } from "../Errors/GenericErrors.sol";
library LibDiamond {
bytes32 internal constant DIAMOND_STORAGE_POSITION =
keccak256("diamond.standard.diamond.storage");
error IncorrectFacetCutAction();
error NoSelectorsInFace();
error FunctionAlreadyExists();
error FacetAddressIsZero();
error FacetAddressIsNotZero();
error FacetContainsNoCode();
error FunctionDoesNotExist();
error FunctionIsImmutable();
error InitZeroButCalldataNotEmpty();
error CalldataEmptyButInitNotZero();
error InitReverted();
struct FacetAddressAndPosition {
address facetAddress;
uint96 functionSelectorPosition;
}
struct FacetFunctionSelectors {
bytes4[] functionSelectors;
uint256 facetAddressPosition;
}
struct DiamondStorage {
mapping(bytes4 => FacetAddressAndPosition) selectorToFacetAndPosition;
mapping(address => FacetFunctionSelectors) facetFunctionSelectors;
address[] facetAddresses;
mapping(bytes4 => bool) supportedInterfaces;
address contractOwner;
}
function diamondStorage()
internal
pure
returns (DiamondStorage storage ds)
{
bytes32 position = DIAMOND_STORAGE_POSITION;
assembly {
ds.slot := position
}
}
event OwnershipTransferred(
address indexed previousOwner,
address indexed newOwner
);
function setContractOwner(address _newOwner) internal {
DiamondStorage storage ds = diamondStorage();
address previousOwner = ds.contractOwner;
ds.contractOwner = _newOwner;
emit OwnershipTransferred(previousOwner, _newOwner);
}
function contractOwner() internal view returns (address contractOwner_) {
contractOwner_ = diamondStorage().contractOwner;
}
function enforceIsContractOwner() internal view {
if (msg.sender != diamondStorage().contractOwner)
revert OnlyContractOwner();
}
event DiamondCut(
IDiamondCut.FacetCut[] _diamondCut,
address _init,
bytes _calldata
);
function diamondCut(
IDiamondCut.FacetCut[] memory _diamondCut,
address _init,
bytes memory _calldata
) internal {
for (uint256 facetIndex; facetIndex < _diamondCut.length; ) {
IDiamondCut.FacetCutAction action = _diamondCut[facetIndex].action;
if (action == IDiamondCut.FacetCutAction.Add) {
addFunctions(
_diamondCut[facetIndex].facetAddress,
_diamondCut[facetIndex].functionSelectors
);
} else if (action == IDiamondCut.FacetCutAction.Replace) {
replaceFunctions(
_diamondCut[facetIndex].facetAddress,
_diamondCut[facetIndex].functionSelectors
);
} else if (action == IDiamondCut.FacetCutAction.Remove) {
removeFunctions(
_diamondCut[facetIndex].facetAddress,
_diamondCut[facetIndex].functionSelectors
);
} else {
revert IncorrectFacetCutAction();
}
unchecked {
++facetIndex;
}
}
emit DiamondCut(_diamondCut, _init, _calldata);
initializeDiamondCut(_init, _calldata);
}
function addFunctions(
address _facetAddress,
bytes4[] memory _functionSelectors
) internal {
if (_functionSelectors.length == 0) {
revert NoSelectorsInFace();
}
DiamondStorage storage ds = diamondStorage();
if (LibUtil.isZeroAddress(_facetAddress)) {
revert FacetAddressIsZero();
}
uint96 selectorPosition = uint96(
ds.facetFunctionSelectors[_facetAddress].functionSelectors.length
);
if (selectorPosition == 0) {
addFacet(ds, _facetAddress);
}
for (
uint256 selectorIndex;
selectorIndex < _functionSelectors.length;
) {
bytes4 selector = _functionSelectors[selectorIndex];
address oldFacetAddress = ds
.selectorToFacetAndPosition[selector]
.facetAddress;
if (!LibUtil.isZeroAddress(oldFacetAddress)) {
revert FunctionAlreadyExists();
}
addFunction(ds, selector, selectorPosition, _facetAddress);
unchecked {
++selectorPosition;
++selectorIndex;
}
}
}
function replaceFunctions(
address _facetAddress,
bytes4[] memory _functionSelectors
) internal {
if (_functionSelectors.length == 0) {
revert NoSelectorsInFace();
}
DiamondStorage storage ds = diamondStorage();
if (LibUtil.isZeroAddress(_facetAddress)) {
revert FacetAddressIsZero();
}
uint96 selectorPosition = uint96(
ds.facetFunctionSelectors[_facetAddress].functionSelectors.length
);
if (selectorPosition == 0) {
addFacet(ds, _facetAddress);
}
for (
uint256 selectorIndex;
selectorIndex < _functionSelectors.length;
) {
bytes4 selector = _functionSelectors[selectorIndex];
address oldFacetAddress = ds
.selectorToFacetAndPosition[selector]
.facetAddress;
if (oldFacetAddress == _facetAddress) {
revert FunctionAlreadyExists();
}
removeFunction(ds, oldFacetAddress, selector);
addFunction(ds, selector, selectorPosition, _facetAddress);
unchecked {
++selectorPosition;
++selectorIndex;
}
}
}
function removeFunctions(
address _facetAddress,
bytes4[] memory _functionSelectors
) internal {
if (_functionSelectors.length == 0) {
revert NoSelectorsInFace();
}
DiamondStorage storage ds = diamondStorage();
if (!LibUtil.isZeroAddress(_facetAddress)) {
revert FacetAddressIsNotZero();
}
for (
uint256 selectorIndex;
selectorIndex < _functionSelectors.length;
) {
bytes4 selector = _functionSelectors[selectorIndex];
address oldFacetAddress = ds
.selectorToFacetAndPosition[selector]
.facetAddress;
removeFunction(ds, oldFacetAddress, selector);
unchecked {
++selectorIndex;
}
}
}
function addFacet(
DiamondStorage storage ds,
address _facetAddress
) internal {
enforceHasContractCode(_facetAddress);
ds.facetFunctionSelectors[_facetAddress].facetAddressPosition = ds
.facetAddresses
.length;
ds.facetAddresses.push(_facetAddress);
}
function addFunction(
DiamondStorage storage ds,
bytes4 _selector,
uint96 _selectorPosition,
address _facetAddress
) internal {
ds
.selectorToFacetAndPosition[_selector]
.functionSelectorPosition = _selectorPosition;
ds.facetFunctionSelectors[_facetAddress].functionSelectors.push(
_selector
);
ds.selectorToFacetAndPosition[_selector].facetAddress = _facetAddress;
}
function removeFunction(
DiamondStorage storage ds,
address _facetAddress,
bytes4 _selector
) internal {
if (LibUtil.isZeroAddress(_facetAddress)) {
revert FunctionDoesNotExist();
}
if (_facetAddress == address(this)) {
revert FunctionIsImmutable();
}
uint256 selectorPosition = ds
.selectorToFacetAndPosition[_selector]
.functionSelectorPosition;
uint256 lastSelectorPosition = ds
.facetFunctionSelectors[_facetAddress]
.functionSelectors
.length - 1;
if (selectorPosition != lastSelectorPosition) {
bytes4 lastSelector = ds
.facetFunctionSelectors[_facetAddress]
.functionSelectors[lastSelectorPosition];
ds.facetFunctionSelectors[_facetAddress].functionSelectors[
selectorPosition
] = lastSelector;
ds
.selectorToFacetAndPosition[lastSelector]
.functionSelectorPosition = uint96(selectorPosition);
}
ds.facetFunctionSelectors[_facetAddress].functionSelectors.pop();
delete ds.selectorToFacetAndPosition[_selector];
if (lastSelectorPosition == 0) {
uint256 lastFacetAddressPosition = ds.facetAddresses.length - 1;
uint256 facetAddressPosition = ds
.facetFunctionSelectors[_facetAddress]
.facetAddressPosition;
if (facetAddressPosition != lastFacetAddressPosition) {
address lastFacetAddress = ds.facetAddresses[
lastFacetAddressPosition
];
ds.facetAddresses[facetAddressPosition] = lastFacetAddress;
ds
.facetFunctionSelectors[lastFacetAddress]
.facetAddressPosition = facetAddressPosition;
}
ds.facetAddresses.pop();
delete ds
.facetFunctionSelectors[_facetAddress]
.facetAddressPosition;
}
}
function initializeDiamondCut(
address _init,
bytes memory _calldata
) internal {
if (LibUtil.isZeroAddress(_init)) {
if (_calldata.length != 0) {
revert InitZeroButCalldataNotEmpty();
}
} else {
if (_calldata.length == 0) {
revert CalldataEmptyButInitNotZero();
}
if (_init != address(this)) {
enforceHasContractCode(_init);
}
(bool success, bytes memory error) = _init.delegatecall(_calldata);
if (!success) {
if (error.length > 0) {
revert(string(error));
} else {
revert InitReverted();
}
}
}
}
function enforceHasContractCode(address _contract) internal view {
uint256 contractSize;
assembly {
contractSize := extcodesize(_contract)
}
if (contractSize == 0) {
revert FacetContainsNoCode();
}
}
}
文件 16 的 22:LibSwap.sol
pragma solidity 0.8.17;
import { LibAsset } from "./LibAsset.sol";
import { LibUtil } from "./LibUtil.sol";
import { InvalidContract, NoSwapFromZeroBalance, InsufficientBalance } from "../Errors/GenericErrors.sol";
import { IERC20 } from "@openzeppelin/contracts/token/ERC20/IERC20.sol";
library LibSwap {
struct SwapData {
address callTo;
address approveTo;
address sendingAssetId;
address receivingAssetId;
uint256 fromAmount;
bytes callData;
bool requiresDeposit;
}
event AssetSwapped(
bytes32 transactionId,
address dex,
address fromAssetId,
address toAssetId,
uint256 fromAmount,
uint256 toAmount,
uint256 timestamp
);
function swap(bytes32 transactionId, SwapData calldata _swap) internal {
if (!LibAsset.isContract(_swap.callTo)) revert InvalidContract();
uint256 fromAmount = _swap.fromAmount;
if (fromAmount == 0) revert NoSwapFromZeroBalance();
uint256 nativeValue = LibAsset.isNativeAsset(_swap.sendingAssetId)
? _swap.fromAmount
: 0;
uint256 initialSendingAssetBalance = LibAsset.getOwnBalance(
_swap.sendingAssetId
);
uint256 initialReceivingAssetBalance = LibAsset.getOwnBalance(
_swap.receivingAssetId
);
if (nativeValue == 0) {
LibAsset.maxApproveERC20(
IERC20(_swap.sendingAssetId),
_swap.approveTo,
_swap.fromAmount
);
}
if (initialSendingAssetBalance < _swap.fromAmount) {
revert InsufficientBalance(
_swap.fromAmount,
initialSendingAssetBalance
);
}
(bool success, bytes memory res) = _swap.callTo.call{
value: nativeValue
}(_swap.callData);
if (!success) {
string memory reason = LibUtil.getRevertMsg(res);
revert(reason);
}
uint256 newBalance = LibAsset.getOwnBalance(_swap.receivingAssetId);
emit AssetSwapped(
transactionId,
_swap.callTo,
_swap.sendingAssetId,
_swap.receivingAssetId,
_swap.fromAmount,
newBalance > initialReceivingAssetBalance
? newBalance - initialReceivingAssetBalance
: newBalance,
block.timestamp
);
}
}
文件 17 的 22:LibUtil.sol
pragma solidity 0.8.17;
import "./LibBytes.sol";
library LibUtil {
using LibBytes for bytes;
function getRevertMsg(
bytes memory _res
) internal pure returns (string memory) {
if (_res.length < 68) return "Transaction reverted silently";
bytes memory revertData = _res.slice(4, _res.length - 4);
return abi.decode(revertData, (string));
}
function isZeroAddress(address addr) internal pure returns (bool) {
return addr == address(0);
}
}
文件 18 的 22: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));
}
}
文件 19 的 22:SafeTransferLib.sol
pragma solidity >=0.8.0;
import {ERC20} from "../tokens/ERC20.sol";
library SafeTransferLib {
function safeTransferETH(address to, uint256 amount) internal {
bool success;
assembly {
success := call(gas(), to, amount, 0, 0, 0, 0)
}
require(success, "ETH_TRANSFER_FAILED");
}
function safeTransferFrom(
ERC20 token,
address from,
address to,
uint256 amount
) internal {
bool success;
assembly {
let freeMemoryPointer := mload(0x40)
mstore(freeMemoryPointer, 0x23b872dd00000000000000000000000000000000000000000000000000000000)
mstore(add(freeMemoryPointer, 4), from)
mstore(add(freeMemoryPointer, 36), to)
mstore(add(freeMemoryPointer, 68), amount)
success := and(
or(and(eq(mload(0), 1), gt(returndatasize(), 31)), iszero(returndatasize())),
call(gas(), token, 0, freeMemoryPointer, 100, 0, 32)
)
}
require(success, "TRANSFER_FROM_FAILED");
}
function safeTransfer(
ERC20 token,
address to,
uint256 amount
) internal {
bool success;
assembly {
let freeMemoryPointer := mload(0x40)
mstore(freeMemoryPointer, 0xa9059cbb00000000000000000000000000000000000000000000000000000000)
mstore(add(freeMemoryPointer, 4), to)
mstore(add(freeMemoryPointer, 36), amount)
success := and(
or(and(eq(mload(0), 1), gt(returndatasize(), 31)), iszero(returndatasize())),
call(gas(), token, 0, freeMemoryPointer, 68, 0, 32)
)
}
require(success, "TRANSFER_FAILED");
}
function safeApprove(
ERC20 token,
address to,
uint256 amount
) internal {
bool success;
assembly {
let freeMemoryPointer := mload(0x40)
mstore(freeMemoryPointer, 0x095ea7b300000000000000000000000000000000000000000000000000000000)
mstore(add(freeMemoryPointer, 4), to)
mstore(add(freeMemoryPointer, 36), amount)
success := and(
or(and(eq(mload(0), 1), gt(returndatasize(), 31)), iszero(returndatasize())),
call(gas(), token, 0, freeMemoryPointer, 68, 0, 32)
)
}
require(success, "APPROVE_FAILED");
}
}
文件 20 的 22:SwapperV2.sol
pragma solidity 0.8.17;
import { ILiFi } from "../Interfaces/ILiFi.sol";
import { LibSwap } from "../Libraries/LibSwap.sol";
import { LibAsset } from "../Libraries/LibAsset.sol";
import { LibAllowList } from "../Libraries/LibAllowList.sol";
import { ContractCallNotAllowed, NoSwapDataProvided, CumulativeSlippageTooHigh } from "../Errors/GenericErrors.sol";
contract SwapperV2 is ILiFi {
struct ReserveData {
bytes32 transactionId;
address payable leftoverReceiver;
uint256 nativeReserve;
}
modifier noLeftovers(
LibSwap.SwapData[] calldata _swaps,
address payable _leftoverReceiver,
uint256[] memory _initialBalances
) {
uint256 numSwaps = _swaps.length;
if (numSwaps != 1) {
address finalAsset = _swaps[numSwaps - 1].receivingAssetId;
uint256 curBalance;
_;
for (uint256 i = 0; i < numSwaps - 1; ) {
address curAsset = _swaps[i].receivingAssetId;
if (curAsset != finalAsset) {
curBalance =
LibAsset.getOwnBalance(curAsset) -
_initialBalances[i];
if (curBalance > 0) {
LibAsset.transferAsset(
curAsset,
_leftoverReceiver,
curBalance
);
}
}
unchecked {
++i;
}
}
} else {
_;
}
}
modifier noLeftoversReserve(
LibSwap.SwapData[] calldata _swaps,
address payable _leftoverReceiver,
uint256[] memory _initialBalances,
uint256 _nativeReserve
) {
uint256 numSwaps = _swaps.length;
if (numSwaps != 1) {
address finalAsset = _swaps[numSwaps - 1].receivingAssetId;
uint256 curBalance;
_;
for (uint256 i = 0; i < numSwaps - 1; ) {
address curAsset = _swaps[i].receivingAssetId;
if (curAsset != finalAsset) {
curBalance =
LibAsset.getOwnBalance(curAsset) -
_initialBalances[i];
uint256 reserve = LibAsset.isNativeAsset(curAsset)
? _nativeReserve
: 0;
if (curBalance > 0) {
LibAsset.transferAsset(
curAsset,
_leftoverReceiver,
curBalance - reserve
);
}
}
unchecked {
++i;
}
}
} else {
_;
}
}
modifier refundExcessNative(address payable _refundReceiver) {
uint256 initialBalance = address(this).balance - msg.value;
_;
uint256 finalBalance = address(this).balance;
if (finalBalance > initialBalance) {
LibAsset.transferAsset(
LibAsset.NATIVE_ASSETID,
_refundReceiver,
finalBalance - initialBalance
);
}
}
function _depositAndSwap(
bytes32 _transactionId,
uint256 _minAmount,
LibSwap.SwapData[] calldata _swaps,
address payable _leftoverReceiver
) internal returns (uint256) {
uint256 numSwaps = _swaps.length;
if (numSwaps == 0) {
revert NoSwapDataProvided();
}
address finalTokenId = _swaps[numSwaps - 1].receivingAssetId;
uint256 initialBalance = LibAsset.getOwnBalance(finalTokenId);
if (LibAsset.isNativeAsset(finalTokenId)) {
initialBalance -= msg.value;
}
uint256[] memory initialBalances = _fetchBalances(_swaps);
LibAsset.depositAssets(_swaps);
_executeSwaps(
_transactionId,
_swaps,
_leftoverReceiver,
initialBalances
);
uint256 newBalance = LibAsset.getOwnBalance(finalTokenId) -
initialBalance;
if (newBalance < _minAmount) {
revert CumulativeSlippageTooHigh(_minAmount, newBalance);
}
return newBalance;
}
function _depositAndSwap(
bytes32 _transactionId,
uint256 _minAmount,
LibSwap.SwapData[] calldata _swaps,
address payable _leftoverReceiver,
uint256 _nativeReserve
) internal returns (uint256) {
uint256 numSwaps = _swaps.length;
if (numSwaps == 0) {
revert NoSwapDataProvided();
}
address finalTokenId = _swaps[numSwaps - 1].receivingAssetId;
uint256 initialBalance = LibAsset.getOwnBalance(finalTokenId);
if (LibAsset.isNativeAsset(finalTokenId)) {
initialBalance -= msg.value;
}
uint256[] memory initialBalances = _fetchBalances(_swaps);
LibAsset.depositAssets(_swaps);
ReserveData memory rd = ReserveData(
_transactionId,
_leftoverReceiver,
_nativeReserve
);
_executeSwaps(rd, _swaps, initialBalances);
uint256 newBalance = LibAsset.getOwnBalance(finalTokenId) -
initialBalance;
if (LibAsset.isNativeAsset(finalTokenId)) {
newBalance -= _nativeReserve;
}
if (newBalance < _minAmount) {
revert CumulativeSlippageTooHigh(_minAmount, newBalance);
}
return newBalance;
}
function _executeSwaps(
bytes32 _transactionId,
LibSwap.SwapData[] calldata _swaps,
address payable _leftoverReceiver,
uint256[] memory _initialBalances
) internal noLeftovers(_swaps, _leftoverReceiver, _initialBalances) {
uint256 numSwaps = _swaps.length;
for (uint256 i = 0; i < numSwaps; ) {
LibSwap.SwapData calldata currentSwap = _swaps[i];
if (
!((LibAsset.isNativeAsset(currentSwap.sendingAssetId) ||
LibAllowList.contractIsAllowed(currentSwap.approveTo)) &&
LibAllowList.contractIsAllowed(currentSwap.callTo) &&
LibAllowList.selectorIsAllowed(
bytes4(currentSwap.callData[:4])
))
) revert ContractCallNotAllowed();
LibSwap.swap(_transactionId, currentSwap);
unchecked {
++i;
}
}
}
function _executeSwaps(
ReserveData memory _reserveData,
LibSwap.SwapData[] calldata _swaps,
uint256[] memory _initialBalances
)
internal
noLeftoversReserve(
_swaps,
_reserveData.leftoverReceiver,
_initialBalances,
_reserveData.nativeReserve
)
{
uint256 numSwaps = _swaps.length;
for (uint256 i = 0; i < numSwaps; ) {
LibSwap.SwapData calldata currentSwap = _swaps[i];
if (
!((LibAsset.isNativeAsset(currentSwap.sendingAssetId) ||
LibAllowList.contractIsAllowed(currentSwap.approveTo)) &&
LibAllowList.contractIsAllowed(currentSwap.callTo) &&
LibAllowList.selectorIsAllowed(
bytes4(currentSwap.callData[:4])
))
) revert ContractCallNotAllowed();
LibSwap.swap(_reserveData.transactionId, currentSwap);
unchecked {
++i;
}
}
}
function _fetchBalances(
LibSwap.SwapData[] calldata _swaps
) private view returns (uint256[] memory) {
uint256 numSwaps = _swaps.length;
uint256[] memory balances = new uint256[](numSwaps);
address asset;
for (uint256 i = 0; i < numSwaps; ) {
asset = _swaps[i].receivingAssetId;
balances[i] = LibAsset.getOwnBalance(asset);
if (LibAsset.isNativeAsset(asset)) {
balances[i] -= msg.value;
}
unchecked {
++i;
}
}
return balances;
}
}
文件 21 的 22:TransferrableOwnership.sol
pragma solidity 0.8.17;
import { IERC173 } from "../Interfaces/IERC173.sol";
import { LibAsset } from "../Libraries/LibAsset.sol";
contract TransferrableOwnership is IERC173 {
address public owner;
address public pendingOwner;
error UnAuthorized();
error NoNullOwner();
error NewOwnerMustNotBeSelf();
error NoPendingOwnershipTransfer();
error NotPendingOwner();
event OwnershipTransferRequested(
address indexed _from,
address indexed _to
);
constructor(address initialOwner) {
owner = initialOwner;
}
modifier onlyOwner() {
if (msg.sender != owner) revert UnAuthorized();
_;
}
function transferOwnership(address _newOwner) external onlyOwner {
if (_newOwner == LibAsset.NULL_ADDRESS) revert NoNullOwner();
if (_newOwner == msg.sender) revert NewOwnerMustNotBeSelf();
pendingOwner = _newOwner;
emit OwnershipTransferRequested(msg.sender, pendingOwner);
}
function cancelOwnershipTransfer() external onlyOwner {
if (pendingOwner == LibAsset.NULL_ADDRESS)
revert NoPendingOwnershipTransfer();
pendingOwner = LibAsset.NULL_ADDRESS;
}
function confirmOwnershipTransfer() external {
address _pendingOwner = pendingOwner;
if (msg.sender != _pendingOwner) revert NotPendingOwner();
emit OwnershipTransferred(owner, _pendingOwner);
owner = _pendingOwner;
pendingOwner = LibAsset.NULL_ADDRESS;
}
}
文件 22 的 22:WETH.sol
pragma solidity >=0.8.0;
import {ERC20} from "./ERC20.sol";
import {SafeTransferLib} from "../utils/SafeTransferLib.sol";
contract WETH is ERC20("Wrapped Ether", "WETH", 18) {
using SafeTransferLib for address;
event Deposit(address indexed from, uint256 amount);
event Withdrawal(address indexed to, uint256 amount);
function deposit() public payable virtual {
_mint(msg.sender, msg.value);
emit Deposit(msg.sender, msg.value);
}
function withdraw(uint256 amount) public virtual {
_burn(msg.sender, amount);
emit Withdrawal(msg.sender, amount);
msg.sender.safeTransferETH(amount);
}
receive() external payable virtual {
deposit();
}
}
{
"compilationTarget": {
"src/Facets/HopFacetPacked.sol": "HopFacetPacked"
},
"evmVersion": "london",
"libraries": {},
"metadata": {
"bytecodeHash": "ipfs"
},
"optimizer": {
"enabled": true,
"runs": 1000000
},
"remappings": [
":@connext/=node_modules/@connext/",
":@eth-optimism/=node_modules/@hop-protocol/sdk/node_modules/@eth-optimism/",
":@openzeppelin/=lib/openzeppelin-contracts/",
":@uniswap/=node_modules/@uniswap/",
":celer-network/=lib/sgn-v2-contracts/",
":create3-factory/=lib/create3-factory/src/",
":ds-test/=lib/ds-test/src/",
":erc4626-tests/=lib/openzeppelin-contracts/lib/erc4626-tests/",
":eth-gas-reporter/=node_modules/eth-gas-reporter/",
":forge-std/=lib/forge-std/src/",
":hardhat-deploy/=node_modules/hardhat-deploy/",
":hardhat/=node_modules/hardhat/",
":lifi/=src/",
":openzeppelin-contracts/=lib/openzeppelin-contracts/",
":openzeppelin/=lib/openzeppelin-contracts/contracts/",
":sgn-v2-contracts/=lib/sgn-v2-contracts/contracts/",
":solmate/=lib/solmate/src/",
":test/=test/"
]
}
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ILiFi.BridgeData","name":"bridgeData","type":"tuple"}],"name":"LiFiTransferStarted","type":"event"},{"anonymous":false,"inputs":[{"indexed":true,"internalType":"address","name":"_from","type":"address"},{"indexed":true,"internalType":"address","name":"_to","type":"address"}],"name":"OwnershipTransferRequested","type":"event"},{"anonymous":false,"inputs":[{"indexed":true,"internalType":"address","name":"previousOwner","type":"address"},{"indexed":true,"internalType":"address","name":"newOwner","type":"address"}],"name":"OwnershipTransferred","type":"event"},{"inputs":[],"name":"cancelOwnershipTransfer","outputs":[],"stateMutability":"nonpayable","type":"function"},{"inputs":[],"name":"confirmOwnershipTransfer","outputs":[],"stateMutability":"nonpayable","type":"function"},{"inputs":[{"internalType":"bytes","name":"_data","type":"bytes"}],"name":"decode_startBridgeTokensViaHopL1ERC20Packed","outputs":[{"components":[{"internalType":"bytes32","name":"transactionId","type":"bytes32"},{"internalType":"string","name":"bridge","type":"string"},{"internalType":"string","name":"integrator","type":"string"},{"internalType":"address","name":"referrer","type":"address"},{"internalType":"address","name":"sendingAssetId","type":"address"},{"internalType":"address","name":"receiver","type":"address"},{"internalType":"uint256","name":"minAmount","type":"uint256"},{"internalType":"uint256","name":"destinationChainId","type":"uint256"},{"internalType":"bool","name":"hasSourceSwaps","type":"bool"},{"internalType":"bool","name":"hasDestinationCall","type":"bool"}],"internalType":"struct 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HopFacetOptimized.HopData","name":"","type":"tuple"}],"stateMutability":"pure","type":"function"},{"inputs":[{"internalType":"bytes","name":"_data","type":"bytes"}],"name":"decode_startBridgeTokensViaHopL2ERC20Packed","outputs":[{"components":[{"internalType":"bytes32","name":"transactionId","type":"bytes32"},{"internalType":"string","name":"bridge","type":"string"},{"internalType":"string","name":"integrator","type":"string"},{"internalType":"address","name":"referrer","type":"address"},{"internalType":"address","name":"sendingAssetId","type":"address"},{"internalType":"address","name":"receiver","type":"address"},{"internalType":"uint256","name":"minAmount","type":"uint256"},{"internalType":"uint256","name":"destinationChainId","type":"uint256"},{"internalType":"bool","name":"hasSourceSwaps","type":"bool"},{"internalType":"bool","name":"hasDestinationCall","type":"bool"}],"internalType":"struct ILiFi.BridgeData","name":"","type":"tuple"},{"components":[{"internalType":"uint256","name":"bonderFee","type":"uint256"},{"internalType":"uint256","name":"amountOutMin","type":"uint256"},{"internalType":"uint256","name":"deadline","type":"uint256"},{"internalType":"uint256","name":"destinationAmountOutMin","type":"uint256"},{"internalType":"uint256","name":"destinationDeadline","type":"uint256"},{"internalType":"contract IHopBridge","name":"hopBridge","type":"address"},{"internalType":"address","name":"relayer","type":"address"},{"internalType":"uint256","name":"relayerFee","type":"uint256"},{"internalType":"uint256","name":"nativeFee","type":"uint256"}],"internalType":"struct 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