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Latest 25 from a total of 36 transactions
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Distribute Aura | 17761668 | 608 days ago | IN | 0.1 ETH | 0.01088994 | ||||
Distribute Aura | 17761661 | 608 days ago | IN | 0.1 ETH | 0.01057075 | ||||
Distribute Aura | 17642001 | 625 days ago | IN | 0.00151722 ETH | 0.01598334 | ||||
Distribute Aura | 17638135 | 625 days ago | IN | 0.00152324 ETH | 0.01282889 | ||||
Distribute Aura | 17635167 | 626 days ago | IN | 0.00169108 ETH | 0.02807854 | ||||
Distribute Aura | 17619406 | 628 days ago | IN | 0.00133806 ETH | 0.00822358 | ||||
Distribute Aura | 17598235 | 631 days ago | IN | 0.00147557 ETH | 0.00773984 | ||||
Distribute Aura | 17591812 | 632 days ago | IN | 0.00149331 ETH | 0.01644716 | ||||
Distribute Aura | 17590945 | 632 days ago | IN | 0.00149331 ETH | 0.01644716 | ||||
Distribute Aura | 17588644 | 632 days ago | IN | 0.00161849 ETH | 0.01760996 | ||||
Distribute Aura | 17581054 | 633 days ago | IN | 0.00149328 ETH | 0.00919106 | ||||
Distribute Aura | 17572673 | 634 days ago | IN | 0.00157184 ETH | 0.02467074 | ||||
Distribute Aura | 17571901 | 634 days ago | IN | 0.00219603 ETH | 0.01547968 | ||||
Distribute Aura | 17569523 | 635 days ago | IN | 0.00139109 ETH | 0.00677236 | ||||
Distribute Aura | 17569203 | 635 days ago | IN | 0.00139109 ETH | 0.00677236 | ||||
Distribute Aura | 17543640 | 638 days ago | IN | 0.00182744 ETH | 0.01558694 | ||||
Distribute Aura | 17542090 | 639 days ago | IN | 0.00165003 ETH | 0.01315148 | ||||
Distribute Aura | 17541589 | 639 days ago | IN | 0.00143547 ETH | 0.00925474 | ||||
Distribute Aura | 17539895 | 639 days ago | IN | 0.00143547 ETH | 0.00681928 | ||||
Distribute Aura | 17537964 | 639 days ago | IN | 0.00153539 ETH | 0.00705868 | ||||
Distribute Aura | 17530321 | 640 days ago | IN | 0.002 ETH | 0.01319912 | ||||
Distribute Aura | 17530224 | 640 days ago | IN | 0.00174606 ETH | 0.0121773 | ||||
Distribute Aura | 17523493 | 641 days ago | IN | 0.00199039 ETH | 0.00251381 | ||||
Distribute Aura | 17523427 | 641 days ago | IN | 0.002 ETH | 0.01181057 | ||||
Distribute Aura | 17519951 | 642 days ago | IN | 0.002 ETH | 0.00833014 |
Latest 25 internal transactions (View All)
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Send From | 22102487 | 27 hrs ago | 0.00055741 ETH | ||||
Transfer | 22102487 | 27 hrs ago | 0.00055741 ETH | ||||
Send | 22102487 | 27 hrs ago | 0.00102192 ETH | ||||
Distribute Aura | 22102487 | 27 hrs ago | 0.00102192 ETH | ||||
Send From | 22097842 | 42 hrs ago | 0.00056072 ETH | ||||
Transfer | 22097842 | 42 hrs ago | 0.00056072 ETH | ||||
Send | 22097842 | 42 hrs ago | 0.00102797 ETH | ||||
Distribute Aura | 22097842 | 42 hrs ago | 0.00102797 ETH | ||||
Send From | 22092825 | 2 days ago | 0.00061768 ETH | ||||
Transfer | 22092825 | 2 days ago | 0.00061768 ETH | ||||
Send | 22092825 | 2 days ago | 0.00113242 ETH | ||||
Distribute Aura | 22092825 | 2 days ago | 0.00113242 ETH | ||||
Send From | 22088213 | 3 days ago | 0.00055635 ETH | ||||
Transfer | 22088213 | 3 days ago | 0.00055635 ETH | ||||
Send | 22088213 | 3 days ago | 0.00101997 ETH | ||||
Distribute Aura | 22088213 | 3 days ago | 0.00101997 ETH | ||||
Send From | 22061805 | 6 days ago | 0.00061901 ETH | ||||
Transfer | 22061805 | 6 days ago | 0.00061901 ETH | ||||
Send | 22061805 | 6 days ago | 0.00113485 ETH | ||||
Distribute Aura | 22061805 | 6 days ago | 0.00113485 ETH | ||||
Send From | 22060510 | 6 days ago | 0.00057202 ETH | ||||
Transfer | 22060510 | 6 days ago | 0.00057202 ETH | ||||
Send | 22060510 | 6 days ago | 0.0010483 ETH | ||||
Distribute Aura | 22060510 | 6 days ago | 0.0010483 ETH | ||||
Send From | 22057124 | 7 days ago | 0.00055712 ETH |
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Similar Match Source Code This contract matches the deployed Bytecode of the Source Code for Contract 0x064D9Aea...4Ca91904B The constructor portion of the code might be different and could alter the actual behaviour of the contract
Contract Name:
L1Coordinator
Compiler Version
v0.8.11+commit.d7f03943
Optimization Enabled:
Yes with 800 runs
Other Settings:
default evmVersion
Contract Source Code (Solidity Standard Json-Input format)
// SPDX-License-Identifier: MIT pragma solidity 0.8.11; import { IERC20 } from "@openzeppelin/contracts-0.8/token/ERC20/IERC20.sol"; import { SafeERC20 } from "@openzeppelin/contracts-0.8/token/ERC20/utils/SafeERC20.sol"; import { ReentrancyGuard } from "@openzeppelin/contracts-0.8/security/ReentrancyGuard.sol"; import { IBooster } from "../interfaces/IBooster.sol"; import { CrossChainConfig } from "./CrossChainConfig.sol"; import { CrossChainMessages as CCM } from "./CrossChainMessages.sol"; import { NonblockingLzApp } from "../layerzero/lzApp/NonblockingLzApp.sol"; import { IOFT } from "../layerzero/token/oft/IOFT.sol"; import { AuraMath } from "../utils/AuraMath.sol"; /** * @title L1Coordinator * @author AuraFinance * @dev Tracks the amount of fee debt accrued by each sidechain and * sends AURA back to each sidechain for rewards */ contract L1Coordinator is NonblockingLzApp, CrossChainConfig, ReentrancyGuard { using AuraMath for uint256; using SafeERC20 for IERC20; /* ------------------------------------------------------------------- Storage ------------------------------------------------------------------- */ // Reward multiplier for increasing or decreasing AURA rewards per PID uint256 public constant REWARD_MULTIPLIER_DENOMINATOR = 10000; /// @dev BAL token contract address public immutable balToken; /// @dev AURA token contract address public immutable auraToken; /// @dev AURA OFT token contract address public immutable auraOFT; /// @dev AURA treasury address address public immutable treasury; /// @dev Booster contract address address public booster; /// @dev Reward multiplier uint256 public rewardMultiplier; /// @dev src chain ID mapped to total feeDebt mapping(uint16 => uint256) public feeDebtOf; /// @dev src chain ID mapped to total settled feeDebt mapping(uint16 => uint256) public settledFeeDebtOf; /// @dev src chain ID mapped to total distributed feeDebt mapping(uint16 => uint256) public distributedFeeDebtOf; /// @dev src chain ID to bridgeDelegate mapping(uint16 => address) public bridgeDelegates; /// @dev src chain ID to L2Coordinator address mapping(uint16 => address) public l2Coordinators; /// @dev sender to isDistributor mapping(address => bool) public distributors; /* ------------------------------------------------------------------- Events ------------------------------------------------------------------- */ /** * @param srcChainId Source chain ID * @param bridgeDelegate The bridge delegate contract */ event BridgeDelegateUpdated(uint16 srcChainId, address bridgeDelegate); /** * @param srcChainId Source chain ID * @param l2Coordinator The l2Coordinator contract */ event L2CoordinatorUpated(uint16 srcChainId, address l2Coordinator); /** * @param distributor Distributor address * @param active If they are an active distributor */ event DisributorUpdated(address distributor, bool active); /** * @param srcChainId Source chain ID * @param amount Amount of fee that was notified */ event FeeDebtNotified(uint16 srcChainId, uint256 amount); /** * @param srcChainId Source chain ID * @param amount Amount of AURA that was distributed */ event AuraDistributed(uint16 srcChainId, uint256 amount); /** * @param srcChainId Source chain ID * @param amount Amount of fee debt that was settled */ event FeeDebtSettled(uint16 srcChainId, uint256 amount); /** * @param multiplier The reward multiplier */ event RewardMultiplierUpdated(uint256 multiplier); /** * @param booster The booster contract */ event BoosterUpdated(address booster); /* ------------------------------------------------------------------- Modifiers ------------------------------------------------------------------- */ modifier onlyDistributor() { require(distributors[msg.sender], "!distributor"); _; } /* ------------------------------------------------------------------- Constructor ------------------------------------------------------------------- */ constructor( address _lzEndpoint, address _booster, address _balToken, address _auraToken, address _auraOFT, address _treasury ) { booster = _booster; balToken = _balToken; auraToken = _auraToken; auraOFT = _auraOFT; treasury = _treasury; rewardMultiplier = REWARD_MULTIPLIER_DENOMINATOR; _initializeLzApp(_lzEndpoint); IERC20(_balToken).safeApprove(_booster, type(uint256).max); IERC20(_auraToken).safeApprove(_auraOFT, type(uint256).max); } /* ------------------------------------------------------------------- Setter Functions ------------------------------------------------------------------- */ /** * @dev Sets the configuration for a given source chain ID and selector. * @param _srcChainId The source chain ID. * @param _selector The selector. * @param _adapterParams The adapter params. */ function setAdapterParams( uint16 _srcChainId, bytes32 _selector, bytes memory _adapterParams ) external override onlyOwner { _setAdapterParams(_srcChainId, _selector, _adapterParams); } /** * @dev Set bridge delegate for given srcChainId * @param _srcChainId ID of the source chain * @param _bridgeDelegate Address of the bridge delegate */ function setBridgeDelegate(uint16 _srcChainId, address _bridgeDelegate) external onlyOwner { bridgeDelegates[_srcChainId] = _bridgeDelegate; emit BridgeDelegateUpdated(_srcChainId, _bridgeDelegate); } /** * @dev Set L2 Coordinator for given srcChainId * @param _srcChainId ID of the source chain * @param _l2Coordinator Address of l2Coordinator */ function setL2Coordinator(uint16 _srcChainId, address _l2Coordinator) external onlyOwner { l2Coordinators[_srcChainId] = _l2Coordinator; emit L2CoordinatorUpated(_srcChainId, _l2Coordinator); } /** * @dev Set distributor as valid or invalid so the can call harvest * @param _distributor Distributor address * @param _active Is the distributor active */ function setDistributor(address _distributor, bool _active) external onlyOwner { distributors[_distributor] = _active; emit DisributorUpdated(_distributor, _active); } /** * @dev Set the reward multiplier * @param _multiplier The new multiplier */ function setRewardMultiplier(uint256 _multiplier) external onlyOwner { require(_multiplier <= REWARD_MULTIPLIER_DENOMINATOR, "too high"); rewardMultiplier = _multiplier; emit RewardMultiplierUpdated(_multiplier); } /** * @dev Set the booster address * @param _booster The booster contract address */ function setBooster(address _booster) external onlyOwner { booster = _booster; emit BoosterUpdated(_booster); } /* ------------------------------------------------------------------- Core Functions ------------------------------------------------------------------- */ /** * @dev Called by a src chain when fees have be collected and are on their * way back to the canonical chain via the bridge delegate */ function _notifyFees(uint16 _srcChainId, uint256 _amount) internal { feeDebtOf[_srcChainId] += _amount; emit FeeDebtNotified(_srcChainId, _amount); } /** * @dev Distribute AURA to the src chain using the BAL float in this * contract mint AURA by calling distributeL2Fees on the Booster * and then send those AURA tokens to the src chain */ function distributeAura( uint16 _srcChainId, address _zroPaymentAddress, address _sendFromZroPaymentAddress, bytes memory _sendFromAdapterParams ) external payable onlyDistributor nonReentrant { uint256 distributedFeeDebt = distributedFeeDebtOf[_srcChainId]; uint256 feeDebt = feeDebtOf[_srcChainId].sub(distributedFeeDebt); distributedFeeDebtOf[_srcChainId] = distributedFeeDebt.add(feeDebt); bytes memory adapterParams = getAdapterParams[_srcChainId][ keccak256("distributeAura(uint16,address,address,bytes)") ]; _distributeAura( _srcChainId, feeDebt, _zroPaymentAddress, _sendFromZroPaymentAddress, adapterParams, _sendFromAdapterParams ); emit AuraDistributed(_srcChainId, feeDebt); } /** * @dev see distributeAura * @param _srcChainId The source chain ID * @param _feeAmount The amount of BAL fee * @param _zroPaymentAddress ZRO payment address from LZ config * @param _adapterParams adapter params from LZ config * @param _sendFromAdapterParams AURA OFT sendFrom adapter params */ function _distributeAura( uint16 _srcChainId, uint256 _feeAmount, address _zroPaymentAddress, address _sendFromZroPaymentAddress, bytes memory _adapterParams, bytes memory _sendFromAdapterParams ) internal { uint256 auraBefore = IERC20(auraToken).balanceOf(address(this)); IBooster(booster).distributeL2Fees(_feeAmount); address to = l2Coordinators[_srcChainId]; require(to != address(0), "to can not be zero"); // Calculate the amount of AURA to send as rewards and the amount // to send to the treasury based on the current reward multiplier uint256 auraRewardAmount; { uint256 auraAmount = IERC20(auraToken).balanceOf(address(this)).sub(auraBefore); auraRewardAmount = auraAmount.mul(rewardMultiplier).div(REWARD_MULTIPLIER_DENOMINATOR); require(auraRewardAmount > 0, "!reward"); uint256 auraTreasuryAmount = auraAmount.sub(auraRewardAmount); if (auraTreasuryAmount > 0) { IERC20(auraToken).safeTransfer(treasury, auraTreasuryAmount); } } bytes memory payload = CCM.encodeFeesCallback(auraRewardAmount); _lzSend( _srcChainId, ///////////// Source chain (L2 chain) payload, ///////////////// Payload payable(address(this)), // Refund address _zroPaymentAddress, ////// ZRO payment address _adapterParams, ////////// Adapter params msg.value //////////////// Native fee ); IOFT(auraOFT).sendFrom{ value: address(this).balance }( address(this), _srcChainId, abi.encodePacked(to), auraRewardAmount, payable(msg.sender), _sendFromZroPaymentAddress, _sendFromAdapterParams ); } /** * @dev Receive CRV from the L2 via some thirdpart bridge * to settle the feeDebt for the remote chain */ function settleFeeDebt(uint16 _srcChainId, uint256 _amount) external nonReentrant { address bridgeDelegate = bridgeDelegates[_srcChainId]; require(bridgeDelegate == msg.sender, "!bridgeDelegate"); uint256 settledFeeDebt = settledFeeDebtOf[_srcChainId]; uint256 feeOwed = feeDebtOf[_srcChainId].sub(settledFeeDebt); require(_amount <= feeOwed, "!amount"); settledFeeDebtOf[_srcChainId] = settledFeeDebt.add(_amount); IERC20(balToken).safeTransferFrom(bridgeDelegate, address(this), _amount); emit FeeDebtSettled(_srcChainId, _amount); } /* ------------------------------------------------------------------- Layer Zero functions L1 -> L2 ------------------------------------------------------------------- */ /** * @dev Override the default OFT lzReceive function logic * Called by the L2Coordinator.queueNewRewards to register feeDebt */ function _nonblockingLzReceive( uint16 _srcChainId, bytes memory, /* _srcAddress */ uint64, /* _nonce */ bytes memory _payload ) internal virtual override { if (CCM.isCustomMessage(_payload)) { // The payload is a specific cross chain message we decode // the type to determine what the message is an continue CCM.MessageType messageType = CCM.getMessageType(_payload); if (messageType == CCM.MessageType.FEES) { // Receiving a fees update message from the L2. We decode // The payload to get the amount of fees being sent uint256 feeAmount = CCM.decodeFees(_payload); _notifyFees(_srcChainId, feeAmount); } } } receive() external payable {} }
// SPDX-License-Identifier: MIT // OpenZeppelin Contracts v4.4.1 (access/Ownable.sol) pragma solidity ^0.8.0; import "../utils/Context.sol"; /** * @dev Contract module which provides a basic access control mechanism, where * there is an account (an owner) that can be granted exclusive access to * specific functions. * * By default, the owner account will be the one that deploys the contract. This * can later be changed with {transferOwnership}. * * This module is used through inheritance. It will make available the modifier * `onlyOwner`, which can be applied to your functions to restrict their use to * the owner. */ abstract contract Ownable is Context { address private _owner; event OwnershipTransferred(address indexed previousOwner, address indexed newOwner); /** * @dev Initializes the contract setting the deployer as the initial owner. */ constructor() { _transferOwnership(_msgSender()); } /** * @dev Returns the address of the current owner. */ function owner() public view virtual returns (address) { return _owner; } /** * @dev Throws if called by any account other than the owner. */ modifier onlyOwner() { require(owner() == _msgSender(), "Ownable: caller is not the owner"); _; } /** * @dev Leaves the contract without owner. It will not be possible to call * `onlyOwner` functions anymore. Can only be called by the current owner. * * NOTE: Renouncing ownership will leave the contract without an owner, * thereby removing any functionality that is only available to the owner. */ function renounceOwnership() public virtual onlyOwner { _transferOwnership(address(0)); } /** * @dev Transfers ownership of the contract to a new account (`newOwner`). * Can only be called by the current owner. */ function transferOwnership(address newOwner) public virtual onlyOwner { require(newOwner != address(0), "Ownable: new owner is the zero address"); _transferOwnership(newOwner); } /** * @dev Transfers ownership of the contract to a new account (`newOwner`). * Internal function without access restriction. */ function _transferOwnership(address newOwner) internal virtual { address oldOwner = _owner; _owner = newOwner; emit OwnershipTransferred(oldOwner, newOwner); } }
// SPDX-License-Identifier: MIT // OpenZeppelin Contracts v4.4.1 (security/ReentrancyGuard.sol) pragma solidity ^0.8.0; /** * @dev Contract module that helps prevent reentrant calls to a function. * * Inheriting from `ReentrancyGuard` will make the {nonReentrant} modifier * available, which can be applied to functions to make sure there are no nested * (reentrant) calls to them. * * Note that because there is a single `nonReentrant` guard, functions marked as * `nonReentrant` may not call one another. This can be worked around by making * those functions `private`, and then adding `external` `nonReentrant` entry * points to them. * * TIP: If you would like to learn more about reentrancy and alternative ways * to protect against it, check out our blog post * https://blog.openzeppelin.com/reentrancy-after-istanbul/[Reentrancy After Istanbul]. */ abstract contract ReentrancyGuard { // Booleans are more expensive than uint256 or any type that takes up a full // word because each write operation emits an extra SLOAD to first read the // slot's contents, replace the bits taken up by the boolean, and then write // back. This is the compiler's defense against contract upgrades and // pointer aliasing, and it cannot be disabled. // The values being non-zero value makes deployment a bit more expensive, // but in exchange the refund on every call to nonReentrant will be lower in // amount. Since refunds are capped to a percentage of the total // transaction's gas, it is best to keep them low in cases like this one, to // increase the likelihood of the full refund coming into effect. uint256 private constant _NOT_ENTERED = 1; uint256 private constant _ENTERED = 2; uint256 private _status; constructor() { _status = _NOT_ENTERED; } /** * @dev Prevents a contract from calling itself, directly or indirectly. * Calling a `nonReentrant` function from another `nonReentrant` * function is not supported. It is possible to prevent this from happening * by making the `nonReentrant` function external, and making it call a * `private` function that does the actual work. */ modifier nonReentrant() { // On the first call to nonReentrant, _notEntered will be true require(_status != _ENTERED, "ReentrancyGuard: reentrant call"); // Any calls to nonReentrant after this point will fail _status = _ENTERED; _; // By storing the original value once again, a refund is triggered (see // https://eips.ethereum.org/EIPS/eip-2200) _status = _NOT_ENTERED; } }
// SPDX-License-Identifier: MIT // OpenZeppelin Contracts v4.4.1 (token/ERC20/IERC20.sol) pragma solidity ^0.8.0; /** * @dev Interface of the ERC20 standard as defined in the EIP. */ interface IERC20 { /** * @dev Returns the amount of tokens in existence. */ function totalSupply() external view returns (uint256); /** * @dev Returns the amount of tokens owned by `account`. */ function balanceOf(address account) external view returns (uint256); /** * @dev Moves `amount` tokens from the caller's account to `recipient`. * * Returns a boolean value indicating whether the operation succeeded. * * Emits a {Transfer} event. */ function transfer(address recipient, uint256 amount) external returns (bool); /** * @dev Returns the remaining number of tokens that `spender` will be * allowed to spend on behalf of `owner` through {transferFrom}. This is * zero by default. * * This value changes when {approve} or {transferFrom} are called. */ function allowance(address owner, address spender) external view returns (uint256); /** * @dev Sets `amount` as the allowance of `spender` over the caller's tokens. * * Returns a boolean value indicating whether the operation succeeded. * * IMPORTANT: Beware that changing an allowance with this method brings the risk * that someone may use both the old and the new allowance by unfortunate * transaction ordering. One possible solution to mitigate this race * condition is to first reduce the spender's allowance to 0 and set the * desired value afterwards: * https://github.com/ethereum/EIPs/issues/20#issuecomment-263524729 * * Emits an {Approval} event. */ function approve(address spender, uint256 amount) external returns (bool); /** * @dev Moves `amount` tokens from `sender` to `recipient` using the * allowance mechanism. `amount` is then deducted from the caller's * allowance. * * Returns a boolean value indicating whether the operation succeeded. * * Emits a {Transfer} event. */ function transferFrom( address sender, address recipient, uint256 amount ) external returns (bool); /** * @dev Emitted when `value` tokens are moved from one account (`from`) to * another (`to`). * * Note that `value` may be zero. */ event Transfer(address indexed from, address indexed to, uint256 value); /** * @dev Emitted when the allowance of a `spender` for an `owner` is set by * a call to {approve}. `value` is the new allowance. */ event Approval(address indexed owner, address indexed spender, uint256 value); }
// SPDX-License-Identifier: MIT // OpenZeppelin Contracts v4.4.1 (token/ERC20/utils/SafeERC20.sol) pragma solidity ^0.8.0; import "../IERC20.sol"; import "../../../utils/Address.sol"; /** * @title SafeERC20 * @dev Wrappers around ERC20 operations that throw on failure (when the token * contract returns false). Tokens that return no value (and instead revert or * throw on failure) are also supported, non-reverting calls are assumed to be * successful. * To use this library you can add a `using SafeERC20 for IERC20;` statement to your contract, * which allows you to call the safe operations as `token.safeTransfer(...)`, etc. */ library SafeERC20 { using Address for address; function safeTransfer( IERC20 token, address to, uint256 value ) internal { _callOptionalReturn(token, abi.encodeWithSelector(token.transfer.selector, to, value)); } function safeTransferFrom( IERC20 token, address from, address to, uint256 value ) internal { _callOptionalReturn(token, abi.encodeWithSelector(token.transferFrom.selector, from, to, value)); } /** * @dev Deprecated. This function has issues similar to the ones found in * {IERC20-approve}, and its usage is discouraged. * * Whenever possible, use {safeIncreaseAllowance} and * {safeDecreaseAllowance} instead. */ function safeApprove( IERC20 token, address spender, uint256 value ) internal { // safeApprove should only be called when setting an initial allowance, // or when resetting it to zero. To increase and decrease it, use // 'safeIncreaseAllowance' and 'safeDecreaseAllowance' require( (value == 0) || (token.allowance(address(this), spender) == 0), "SafeERC20: approve from non-zero to non-zero allowance" ); _callOptionalReturn(token, abi.encodeWithSelector(token.approve.selector, spender, value)); } function safeIncreaseAllowance( IERC20 token, address spender, uint256 value ) internal { uint256 newAllowance = token.allowance(address(this), spender) + value; _callOptionalReturn(token, abi.encodeWithSelector(token.approve.selector, spender, newAllowance)); } function safeDecreaseAllowance( IERC20 token, address spender, uint256 value ) internal { unchecked { uint256 oldAllowance = token.allowance(address(this), spender); require(oldAllowance >= value, "SafeERC20: decreased allowance below zero"); uint256 newAllowance = oldAllowance - value; _callOptionalReturn(token, abi.encodeWithSelector(token.approve.selector, spender, newAllowance)); } } /** * @dev Imitates a Solidity high-level call (i.e. a regular function call to a contract), relaxing the requirement * on the return value: the return value is optional (but if data is returned, it must not be false). * @param token The token targeted by the call. * @param data The call data (encoded using abi.encode or one of its variants). */ function _callOptionalReturn(IERC20 token, bytes memory data) private { // We need to perform a low level call here, to bypass Solidity's return data size checking mechanism, since // we're implementing it ourselves. We use {Address.functionCall} to perform this call, which verifies that // the target address contains contract code and also asserts for success in the low-level call. bytes memory returndata = address(token).functionCall(data, "SafeERC20: low-level call failed"); if (returndata.length > 0) { // Return data is optional require(abi.decode(returndata, (bool)), "SafeERC20: ERC20 operation did not succeed"); } } }
// SPDX-License-Identifier: MIT // OpenZeppelin Contracts v4.4.1 (utils/Address.sol) pragma solidity ^0.8.0; /** * @dev Collection of functions related to the address type */ library Address { /** * @dev Returns true if `account` is a contract. * * [IMPORTANT] * ==== * It is unsafe to assume that an address for which this function returns * false is an externally-owned account (EOA) and not a contract. * * Among others, `isContract` will return false for the following * types of addresses: * * - an externally-owned account * - a contract in construction * - an address where a contract will be created * - an address where a contract lived, but was destroyed * ==== */ function isContract(address account) internal view returns (bool) { // This method relies on extcodesize, which returns 0 for contracts in // construction, since the code is only stored at the end of the // constructor execution. uint256 size; assembly { size := extcodesize(account) } return size > 0; } /** * @dev Replacement for Solidity's `transfer`: sends `amount` wei to * `recipient`, forwarding all available gas and reverting on errors. * * https://eips.ethereum.org/EIPS/eip-1884[EIP1884] increases the gas cost * of certain opcodes, possibly making contracts go over the 2300 gas limit * imposed by `transfer`, making them unable to receive funds via * `transfer`. {sendValue} removes this limitation. * * https://diligence.consensys.net/posts/2019/09/stop-using-soliditys-transfer-now/[Learn more]. * * IMPORTANT: because control is transferred to `recipient`, care must be * taken to not create reentrancy vulnerabilities. Consider using * {ReentrancyGuard} or the * https://solidity.readthedocs.io/en/v0.5.11/security-considerations.html#use-the-checks-effects-interactions-pattern[checks-effects-interactions pattern]. */ function sendValue(address payable recipient, uint256 amount) internal { require(address(this).balance >= amount, "Address: insufficient balance"); (bool success, ) = recipient.call{value: amount}(""); require(success, "Address: unable to send value, recipient may have reverted"); } /** * @dev Performs a Solidity function call using a low level `call`. A * plain `call` is an unsafe replacement for a function call: use this * function instead. * * If `target` reverts with a revert reason, it is bubbled up by this * function (like regular Solidity function calls). * * Returns the raw returned data. To convert to the expected return value, * use https://solidity.readthedocs.io/en/latest/units-and-global-variables.html?highlight=abi.decode#abi-encoding-and-decoding-functions[`abi.decode`]. * * Requirements: * * - `target` must be a contract. * - calling `target` with `data` must not revert. * * _Available since v3.1._ */ function functionCall(address target, bytes memory data) internal returns (bytes memory) { return functionCall(target, data, "Address: low-level call failed"); } /** * @dev Same as {xref-Address-functionCall-address-bytes-}[`functionCall`], but with * `errorMessage` as a fallback revert reason when `target` reverts. * * _Available since v3.1._ */ function functionCall( address target, bytes memory data, string memory errorMessage ) internal returns (bytes memory) { return functionCallWithValue(target, data, 0, errorMessage); } /** * @dev Same as {xref-Address-functionCall-address-bytes-}[`functionCall`], * but also transferring `value` wei to `target`. * * Requirements: * * - the calling contract must have an ETH balance of at least `value`. * - the called Solidity function must be `payable`. * * _Available since v3.1._ */ function functionCallWithValue( address target, bytes memory data, uint256 value ) internal returns (bytes memory) { return functionCallWithValue(target, data, value, "Address: low-level call with value failed"); } /** * @dev Same as {xref-Address-functionCallWithValue-address-bytes-uint256-}[`functionCallWithValue`], but * with `errorMessage` as a fallback revert reason when `target` reverts. * * _Available since v3.1._ */ function functionCallWithValue( address target, bytes memory data, uint256 value, string memory errorMessage ) internal returns (bytes memory) { require(address(this).balance >= value, "Address: insufficient balance for call"); require(isContract(target), "Address: call to non-contract"); (bool success, bytes memory returndata) = target.call{value: value}(data); return verifyCallResult(success, returndata, errorMessage); } /** * @dev Same as {xref-Address-functionCall-address-bytes-}[`functionCall`], * but performing a static call. * * _Available since v3.3._ */ function functionStaticCall(address target, bytes memory data) internal view returns (bytes memory) { return functionStaticCall(target, data, "Address: low-level static call failed"); } /** * @dev Same as {xref-Address-functionCall-address-bytes-string-}[`functionCall`], * but performing a static call. * * _Available since v3.3._ */ function functionStaticCall( address target, bytes memory data, string memory errorMessage ) internal view returns (bytes memory) { require(isContract(target), "Address: static call to non-contract"); (bool success, bytes memory returndata) = target.staticcall(data); return verifyCallResult(success, returndata, errorMessage); } /** * @dev Same as {xref-Address-functionCall-address-bytes-}[`functionCall`], * but performing a delegate call. * * _Available since v3.4._ */ function functionDelegateCall(address target, bytes memory data) internal returns (bytes memory) { return functionDelegateCall(target, data, "Address: low-level delegate call failed"); } /** * @dev Same as {xref-Address-functionCall-address-bytes-string-}[`functionCall`], * but performing a delegate call. * * _Available since v3.4._ */ function functionDelegateCall( address target, bytes memory data, string memory errorMessage ) internal returns (bytes memory) { require(isContract(target), "Address: delegate call to non-contract"); (bool success, bytes memory returndata) = target.delegatecall(data); return verifyCallResult(success, returndata, errorMessage); } /** * @dev Tool to verifies that a low level call was successful, and revert if it wasn't, either by bubbling the * revert reason using the provided one. * * _Available since v4.3._ */ function verifyCallResult( bool success, bytes memory returndata, string memory errorMessage ) internal pure returns (bytes memory) { if (success) { return returndata; } else { // Look for revert reason and bubble it up if present if (returndata.length > 0) { // The easiest way to bubble the revert reason is using memory via assembly assembly { let returndata_size := mload(returndata) revert(add(32, returndata), returndata_size) } } else { revert(errorMessage); } } } }
// SPDX-License-Identifier: MIT // OpenZeppelin Contracts v4.4.1 (utils/Context.sol) pragma solidity ^0.8.0; /** * @dev Provides information about the current execution context, including the * sender of the transaction and its data. While these are generally available * via msg.sender and msg.data, they should not be accessed in such a direct * manner, since when dealing with meta-transactions the account sending and * paying for execution may not be the actual sender (as far as an application * is concerned). * * This contract is only required for intermediate, library-like contracts. */ abstract contract Context { function _msgSender() internal view virtual returns (address) { return msg.sender; } function _msgData() internal view virtual returns (bytes calldata) { return msg.data; } }
// SPDX-License-Identifier: MIT // OpenZeppelin Contracts v4.4.1 (utils/introspection/IERC165.sol) pragma solidity ^0.8.0; /** * @dev Interface of the ERC165 standard, as defined in the * https://eips.ethereum.org/EIPS/eip-165[EIP]. * * Implementers can declare support of contract interfaces, which can then be * queried by others ({ERC165Checker}). * * For an implementation, see {ERC165}. */ interface IERC165 { /** * @dev Returns true if this contract implements the interface defined by * `interfaceId`. See the corresponding * https://eips.ethereum.org/EIPS/eip-165#how-interfaces-are-identified[EIP section] * to learn more about how these ids are created. * * This function call must use less than 30 000 gas. */ function supportsInterface(bytes4 interfaceId) external view returns (bool); }
// SPDX-License-Identifier: MIT pragma solidity 0.8.11; interface IBooster { struct FeeDistro { address distro; address rewards; bool active; } function feeTokens(address _token) external returns (FeeDistro memory); function earmarkFees(address _feeToken) external returns (bool); struct PoolInfo { address lptoken; address token; address gauge; address crvRewards; address stash; bool shutdown; } function earmarkRewards(uint256 _pid) external returns (bool); function poolLength() external view returns (uint256); function lockRewards() external view returns (address); function poolInfo(uint256 _pid) external view returns (PoolInfo memory poolInfo); function distributeL2Fees(uint256 _amount) external; function lockIncentive() external view returns (uint256); function stakerIncentive() external view returns (uint256); function earmarkIncentive() external view returns (uint256); function platformFee() external view returns (uint256); function FEE_DENOMINATOR() external view returns (uint256); }
// SPDX-License-Identifier: MIT pragma solidity 0.8.11; import "./ILayerZeroUserApplicationConfig.sol"; interface ILayerZeroEndpoint is ILayerZeroUserApplicationConfig { // @notice send a LayerZero message to the specified address at a LayerZero endpoint. // @param _dstChainId - the destination chain identifier // @param _destination - the address on destination chain (in bytes). address length/format may vary by chains // @param _payload - a custom bytes payload to send to the destination contract // @param _refundAddress - if the source transaction is cheaper than the amount of value passed, // refund the additional amount to this address // @param _zroPaymentAddress - the address of the ZRO token holder who would pay for the transaction // @param _adapterParams - parameters for custom functionality. e.g. receive airdropped native gas from the // relayer on destination function send( uint16 _dstChainId, bytes calldata _destination, bytes calldata _payload, address payable _refundAddress, address _zroPaymentAddress, bytes calldata _adapterParams ) external payable; // @notice used by the messaging library to publish verified payload // @param _srcChainId - the source chain identifier // @param _srcAddress - the source contract (as bytes) at the source chain // @param _dstAddress - the address on destination chain // @param _nonce - the unbound message ordering nonce // @param _gasLimit - the gas limit for external contract execution // @param _payload - verified payload to send to the destination contract function receivePayload( uint16 _srcChainId, bytes calldata _srcAddress, address _dstAddress, uint64 _nonce, uint256 _gasLimit, bytes calldata _payload ) external; // @notice get the inboundNonce of a lzApp from a source chain which could be EVM or non-EVM chain // @param _srcChainId - the source chain identifier // @param _srcAddress - the source chain contract address function getInboundNonce(uint16 _srcChainId, bytes calldata _srcAddress) external view returns (uint64); // @notice get the outboundNonce from this source chain which, consequently, is always an EVM // @param _srcAddress - the source chain contract address function getOutboundNonce(uint16 _dstChainId, address _srcAddress) external view returns (uint64); // @notice gets a quote in source native gas, for the amount that send() requires to pay for message delivery // @param _dstChainId - the destination chain identifier // @param _userApplication - the user app address on this EVM chain // @param _payload - the custom message to send over LayerZero // @param _payInZRO - if false, user app pays the protocol fee in native token // @param _adapterParam - parameters for the adapter service, e.g. send some dust native token to dstChain function estimateFees( uint16 _dstChainId, address _userApplication, bytes calldata _payload, bool _payInZRO, bytes calldata _adapterParam ) external view returns (uint256 nativeFee, uint256 zroFee); // @notice get this Endpoint's immutable source identifier function getChainId() external view returns (uint16); // @notice the interface to retry failed message on this Endpoint destination // @param _srcChainId - the source chain identifier // @param _srcAddress - the source chain contract address // @param _payload - the payload to be retried function retryPayload( uint16 _srcChainId, bytes calldata _srcAddress, bytes calldata _payload ) external; // @notice query if any STORED payload (message blocking) at the endpoint. // @param _srcChainId - the source chain identifier // @param _srcAddress - the source chain contract address function hasStoredPayload(uint16 _srcChainId, bytes calldata _srcAddress) external view returns (bool); // @notice query if the _libraryAddress is valid for sending msgs. // @param _userApplication - the user app address on this EVM chain function getSendLibraryAddress(address _userApplication) external view returns (address); // @notice query if the _libraryAddress is valid for receiving msgs. // @param _userApplication - the user app address on this EVM chain function getReceiveLibraryAddress(address _userApplication) external view returns (address); // @notice query if the non-reentrancy guard for send() is on // @return true if the guard is on. false otherwise function isSendingPayload() external view returns (bool); // @notice query if the non-reentrancy guard for receive() is on // @return true if the guard is on. false otherwise function isReceivingPayload() external view returns (bool); // @notice get the configuration of the LayerZero messaging library of the specified version // @param _version - messaging library version // @param _chainId - the chainId for the pending config change // @param _userApplication - the contract address of the user application // @param _configType - type of configuration. every messaging library has its own convention. function getConfig( uint16 _version, uint16 _chainId, address _userApplication, uint256 _configType ) external view returns (bytes memory); // @notice get the send() LayerZero messaging library version // @param _userApplication - the contract address of the user application function getSendVersion(address _userApplication) external view returns (uint16); // @notice get the lzReceive() LayerZero messaging library version // @param _userApplication - the contract address of the user application function getReceiveVersion(address _userApplication) external view returns (uint16); }
// SPDX-License-Identifier: MIT pragma solidity 0.8.11; interface ILayerZeroReceiver { // @notice LayerZero endpoint will invoke this function to deliver the message on the destination // @param _srcChainId - the source endpoint identifier // @param _srcAddress - the source sending contract address from the source chain // @param _nonce - the ordered message nonce // @param _payload - the signed payload is the UA bytes has encoded to be sent function lzReceive( uint16 _srcChainId, bytes calldata _srcAddress, uint64 _nonce, bytes calldata _payload ) external; }
// SPDX-License-Identifier: MIT pragma solidity 0.8.11; interface ILayerZeroUserApplicationConfig { // @notice set the configuration of the LayerZero messaging library of the specified version // @param _version - messaging library version // @param _chainId - the chainId for the pending config change // @param _configType - type of configuration. every messaging library has its own convention. // @param _config - configuration in the bytes. can encode arbitrary content. function setConfig( uint16 _version, uint16 _chainId, uint256 _configType, bytes calldata _config ) external; // @notice set the send() LayerZero messaging library version to _version // @param _version - new messaging library version function setSendVersion(uint16 _version) external; // @notice set the lzReceive() LayerZero messaging library version to _version // @param _version - new messaging library version function setReceiveVersion(uint16 _version) external; // @notice Only when the UA needs to resume the message flow in blocking mode and clear the stored payload // @param _srcChainId - the chainId of the source chain // @param _srcAddress - the contract address of the source contract at the source chain function forceResumeReceive(uint16 _srcChainId, bytes calldata _srcAddress) external; }
// SPDX-License-Identifier: MIT pragma solidity 0.8.11; import "@openzeppelin/contracts-0.8/access/Ownable.sol"; import "../interfaces/ILayerZeroReceiver.sol"; import "../interfaces/ILayerZeroUserApplicationConfig.sol"; import "../interfaces/ILayerZeroEndpoint.sol"; import "../util/BytesLib.sol"; /* * a generic LzReceiver implementation */ abstract contract LzApp is Ownable, ILayerZeroReceiver, ILayerZeroUserApplicationConfig { using BytesLib for bytes; // ua can not send payload larger than this by default, but it can be changed by the ua owner uint256 public constant DEFAULT_PAYLOAD_SIZE_LIMIT = 10000; ILayerZeroEndpoint public lzEndpoint; mapping(uint16 => bytes) public trustedRemoteLookup; mapping(uint16 => mapping(uint16 => uint256)) public minDstGasLookup; mapping(uint16 => uint256) public payloadSizeLimitLookup; address public precrime; event SetPrecrime(address precrime); event SetTrustedRemote(uint16 _remoteChainId, bytes _path); event SetTrustedRemoteAddress(uint16 _remoteChainId, bytes _remoteAddress); event SetMinDstGas(uint16 _dstChainId, uint16 _type, uint256 _minDstGas); function _initializeLzApp(address _endpoint) internal { require(address(lzEndpoint) == address(0), "already initialized"); require(_endpoint != address(0), "endpoint=0"); lzEndpoint = ILayerZeroEndpoint(_endpoint); } function lzReceive( uint16 _srcChainId, bytes calldata _srcAddress, uint64 _nonce, bytes calldata _payload ) public virtual override { // lzReceive must be called by the endpoint for security require(_msgSender() == address(lzEndpoint), "LzApp: invalid endpoint caller"); bytes memory trustedRemote = trustedRemoteLookup[_srcChainId]; // if will still block the message pathway from (srcChainId, srcAddress). // should not receive message from untrusted remote. require( _srcAddress.length == trustedRemote.length && trustedRemote.length > 0 && keccak256(_srcAddress) == keccak256(trustedRemote), "LzApp: invalid source sending contract" ); _blockingLzReceive(_srcChainId, _srcAddress, _nonce, _payload); } // abstract function - the default behaviour of LayerZero is blocking. // See: NonblockingLzApp if you dont need to enforce ordered messaging function _blockingLzReceive( uint16 _srcChainId, bytes memory _srcAddress, uint64 _nonce, bytes memory _payload ) internal virtual; function _lzSend( uint16 _dstChainId, bytes memory _payload, address payable _refundAddress, address _zroPaymentAddress, bytes memory _adapterParams, uint256 _nativeFee ) internal virtual { bytes memory trustedRemote = trustedRemoteLookup[_dstChainId]; require(trustedRemote.length != 0, "LzApp: destination chain is not a trusted source"); _checkPayloadSize(_dstChainId, _payload.length); lzEndpoint.send{ value: _nativeFee }( _dstChainId, trustedRemote, _payload, _refundAddress, _zroPaymentAddress, _adapterParams ); } function _checkGasLimit( uint16 _dstChainId, uint16 _type, bytes memory _adapterParams, uint256 _extraGas ) internal view virtual { uint256 providedGasLimit = _getGasLimit(_adapterParams); uint256 minGasLimit = minDstGasLookup[_dstChainId][_type] + _extraGas; require(minGasLimit > 0, "LzApp: minGasLimit not set"); require(providedGasLimit >= minGasLimit, "LzApp: gas limit is too low"); } function _getGasLimit(bytes memory _adapterParams) internal pure virtual returns (uint256 gasLimit) { require(_adapterParams.length >= 34, "LzApp: invalid adapterParams"); assembly { gasLimit := mload(add(_adapterParams, 34)) } } function _checkPayloadSize(uint16 _dstChainId, uint256 _payloadSize) internal view virtual { uint256 payloadSizeLimit = payloadSizeLimitLookup[_dstChainId]; if (payloadSizeLimit == 0) { // use default if not set payloadSizeLimit = DEFAULT_PAYLOAD_SIZE_LIMIT; } require(_payloadSize <= payloadSizeLimit, "LzApp: payload size is too large"); } //---------------------------UserApplication config---------------------------------------- function getConfig( uint16 _version, uint16 _chainId, address, uint256 _configType ) external view returns (bytes memory) { return lzEndpoint.getConfig(_version, _chainId, address(this), _configType); } // generic config for LayerZero user Application function setConfig( uint16 _version, uint16 _chainId, uint256 _configType, bytes calldata _config ) external override onlyOwner { lzEndpoint.setConfig(_version, _chainId, _configType, _config); } function setSendVersion(uint16 _version) external override onlyOwner { lzEndpoint.setSendVersion(_version); } function setReceiveVersion(uint16 _version) external override onlyOwner { lzEndpoint.setReceiveVersion(_version); } function forceResumeReceive(uint16 _srcChainId, bytes calldata _srcAddress) external override onlyOwner { lzEndpoint.forceResumeReceive(_srcChainId, _srcAddress); } // _path = abi.encodePacked(remoteAddress, localAddress) // this function set the trusted path for the cross-chain communication function setTrustedRemote(uint16 _srcChainId, bytes calldata _path) external onlyOwner { trustedRemoteLookup[_srcChainId] = _path; emit SetTrustedRemote(_srcChainId, _path); } function setTrustedRemoteAddress(uint16 _remoteChainId, bytes calldata _remoteAddress) external onlyOwner { trustedRemoteLookup[_remoteChainId] = abi.encodePacked(_remoteAddress, address(this)); emit SetTrustedRemoteAddress(_remoteChainId, _remoteAddress); } function getTrustedRemoteAddress(uint16 _remoteChainId) external view returns (bytes memory) { bytes memory path = trustedRemoteLookup[_remoteChainId]; require(path.length != 0, "LzApp: no trusted path record"); return path.slice(0, path.length - 20); // the last 20 bytes should be address(this) } function setPrecrime(address _precrime) external onlyOwner { precrime = _precrime; emit SetPrecrime(_precrime); } function setMinDstGas( uint16 _dstChainId, uint16 _packetType, uint256 _minGas ) external onlyOwner { require(_minGas > 0, "LzApp: invalid minGas"); minDstGasLookup[_dstChainId][_packetType] = _minGas; emit SetMinDstGas(_dstChainId, _packetType, _minGas); } // if the size is 0, it means default size limit function setPayloadSizeLimit(uint16 _dstChainId, uint256 _size) external onlyOwner { payloadSizeLimitLookup[_dstChainId] = _size; } //--------------------------- VIEW FUNCTION ---------------------------------------- function isTrustedRemote(uint16 _srcChainId, bytes calldata _srcAddress) external view returns (bool) { bytes memory trustedSource = trustedRemoteLookup[_srcChainId]; return keccak256(trustedSource) == keccak256(_srcAddress); } }
// SPDX-License-Identifier: MIT pragma solidity 0.8.11; import "./LzApp.sol"; import "../util/ExcessivelySafeCall.sol"; /* * the default LayerZero messaging behaviour is blocking, i.e. any failed message will block the channel * this abstract class try-catch all fail messages and store locally for future retry. hence, non-blocking * NOTE: if the srcAddress is not configured properly, * it will still block the message pathway from (srcChainId, srcAddress) */ abstract contract NonblockingLzApp is LzApp { using ExcessivelySafeCall for address; mapping(uint16 => mapping(bytes => mapping(uint64 => bytes32))) public failedMessages; event MessageFailed(uint16 _srcChainId, bytes _srcAddress, uint64 _nonce, bytes _payload, bytes _reason); event RetryMessageSuccess(uint16 _srcChainId, bytes _srcAddress, uint64 _nonce, bytes32 _payloadHash); // overriding the virtual function in LzReceiver function _blockingLzReceive( uint16 _srcChainId, bytes memory _srcAddress, uint64 _nonce, bytes memory _payload ) internal virtual override { (bool success, bytes memory reason) = address(this).excessivelySafeCall( gasleft(), 150, abi.encodeWithSelector(this.nonblockingLzReceive.selector, _srcChainId, _srcAddress, _nonce, _payload) ); // try-catch all errors/exceptions if (!success) { _storeFailedMessage(_srcChainId, _srcAddress, _nonce, _payload, reason); } } function _storeFailedMessage( uint16 _srcChainId, bytes memory _srcAddress, uint64 _nonce, bytes memory _payload, bytes memory _reason ) internal virtual { failedMessages[_srcChainId][_srcAddress][_nonce] = keccak256(_payload); emit MessageFailed(_srcChainId, _srcAddress, _nonce, _payload, _reason); } function nonblockingLzReceive( uint16 _srcChainId, bytes calldata _srcAddress, uint64 _nonce, bytes calldata _payload ) public virtual { // only internal transaction require(_msgSender() == address(this), "NonblockingLzApp: caller must be LzApp"); _nonblockingLzReceive(_srcChainId, _srcAddress, _nonce, _payload); } //@notice override this function function _nonblockingLzReceive( uint16 _srcChainId, bytes memory _srcAddress, uint64 _nonce, bytes memory _payload ) internal virtual; function retryMessage( uint16 _srcChainId, bytes calldata _srcAddress, uint64 _nonce, bytes calldata _payload ) public payable virtual { // assert there is message to retry bytes32 payloadHash = failedMessages[_srcChainId][_srcAddress][_nonce]; require(payloadHash != bytes32(0), "NonblockingLzApp: no stored message"); require(keccak256(_payload) == payloadHash, "NonblockingLzApp: invalid payload"); // clear the stored message failedMessages[_srcChainId][_srcAddress][_nonce] = bytes32(0); // execute the message. revert if it fails again _nonblockingLzReceive(_srcChainId, _srcAddress, _nonce, _payload); emit RetryMessageSuccess(_srcChainId, _srcAddress, _nonce, payloadHash); } }
// SPDX-License-Identifier: MIT pragma solidity 0.8.11; import "./IOFTCore.sol"; import "@openzeppelin/contracts-0.8/token/ERC20/IERC20.sol"; /** * @dev Interface of the OFT standard */ interface IOFT is IOFTCore, IERC20 { }
// SPDX-License-Identifier: MIT pragma solidity 0.8.11; import "@openzeppelin/contracts-0.8/utils/introspection/IERC165.sol"; /** * @dev Interface of the IOFT core standard */ interface IOFTCore is IERC165 { /** * @dev estimate send token `_tokenId` to (`_dstChainId`, `_toAddress`) * _dstChainId - L0 defined chain id to send tokens too * _toAddress - dynamic bytes array which contains the address to whom you are sending tokens to on the dstChain * _amount - amount of the tokens to transfer * _useZro - indicates to use zro to pay L0 fees * _adapterParam - flexible bytes array to indicate messaging adapter services in L0 */ function estimateSendFee( uint16 _dstChainId, bytes calldata _toAddress, uint256 _amount, bool _useZro, bytes calldata _adapterParams ) external view returns (uint256 nativeFee, uint256 zroFee); /** * @dev send `_amount` amount of token to (`_dstChainId`, `_toAddress`) from `_from` * `_from` the owner of token * `_dstChainId` the destination chain identifier * `_toAddress` can be any size depending on the `dstChainId`. * `_amount` the quantity of tokens in wei * `_refundAddress` the address LayerZero refunds if too much message fee is sent * `_zroPaymentAddress` set to address(0x0) if not paying in ZRO (LayerZero Token) * `_adapterParams` is a flexible bytes array to indicate messaging adapter services */ function sendFrom( address _from, uint16 _dstChainId, bytes calldata _toAddress, uint256 _amount, address payable _refundAddress, address _zroPaymentAddress, bytes calldata _adapterParams ) external payable; /** * @dev returns the circulating amount of tokens on current chain */ function circulatingSupply() external view returns (uint256); /** * @dev returns the address of the ERC20 token */ function token() external view returns (address); /** * @dev Emitted when `_amount` tokens are moved from the `_sender` to (`_dstChainId`, `_toAddress`) * `_nonce` is the outbound nonce */ event SendToChain(uint16 indexed _dstChainId, address indexed _from, bytes _toAddress, uint256 _amount); /** * @dev Emitted when `_amount` tokens are received from `_srcChainId` into the `_toAddress` on the local chain. * `_nonce` is the inbound nonce. */ event ReceiveFromChain(uint16 indexed _srcChainId, address indexed _to, uint256 _amount); event SetUseCustomAdapterParams(bool _useCustomAdapterParams); }
// SPDX-License-Identifier: Unlicense /* * @title Solidity Bytes Arrays Utils * @author Gonçalo Sá <[email protected]> * * @dev Bytes tightly packed arrays utility library for ethereum contracts written in Solidity. * The library lets you concatenate, slice and type cast bytes arrays both in memory and storage. */ pragma solidity 0.8.11; library BytesLib { function concat(bytes memory _preBytes, bytes memory _postBytes) internal pure returns (bytes memory) { bytes memory tempBytes; assembly { // Get a location of some free memory and store it in tempBytes as // Solidity does for memory variables. tempBytes := mload(0x40) // Store the length of the first bytes array at the beginning of // the memory for tempBytes. let length := mload(_preBytes) mstore(tempBytes, length) // Maintain a memory counter for the current write location in the // temp bytes array by adding the 32 bytes for the array length to // the starting location. let mc := add(tempBytes, 0x20) // Stop copying when the memory counter reaches the length of the // first bytes array. let end := add(mc, length) for { // Initialize a copy counter to the start of the _preBytes data, // 32 bytes into its memory. let cc := add(_preBytes, 0x20) } lt(mc, end) { // Increase both counters by 32 bytes each iteration. mc := add(mc, 0x20) cc := add(cc, 0x20) } { // Write the _preBytes data into the tempBytes memory 32 bytes // at a time. mstore(mc, mload(cc)) } // Add the length of _postBytes to the current length of tempBytes // and store it as the new length in the first 32 bytes of the // tempBytes memory. length := mload(_postBytes) mstore(tempBytes, add(length, mload(tempBytes))) // Move the memory counter back from a multiple of 0x20 to the // actual end of the _preBytes data. mc := end // Stop copying when the memory counter reaches the new combined // length of the arrays. 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)) } // Update the free-memory pointer by padding our last write location // to 32 bytes: add 31 bytes to the end of tempBytes to move to the // next 32 byte block, then round down to the nearest multiple of // 32. If the sum of the length of the two arrays is zero then add // one before rounding down to leave a blank 32 bytes (the length block with 0). mstore( 0x40, and( add(add(end, iszero(add(length, mload(_preBytes)))), 31), not(31) // Round down to the nearest 32 bytes. ) ) } return tempBytes; } function concatStorage(bytes storage _preBytes, bytes memory _postBytes) internal { assembly { // Read the first 32 bytes of _preBytes storage, which is the length // of the array. (We don't need to use the offset into the slot // because arrays use the entire slot.) let fslot := sload(_preBytes.slot) // Arrays of 31 bytes or less have an even value in their slot, // while longer arrays have an odd value. The actual length is // the slot divided by two for odd values, and the lowest order // byte divided by two for even values. // If the slot is even, bitwise and the slot with 255 and divide by // two to get the length. If the slot is odd, bitwise and the slot // with -1 and divide by two. let slength := div(and(fslot, sub(mul(0x100, iszero(and(fslot, 1))), 1)), 2) let mlength := mload(_postBytes) let newlength := add(slength, mlength) // slength can contain both the length and contents of the array // if length < 32 bytes so let's prepare for that // v. http://solidity.readthedocs.io/en/latest/miscellaneous.html#layout-of-state-variables-in-storage switch add(lt(slength, 32), lt(newlength, 32)) case 2 { // Since the new array still fits in the slot, we just need to // update the contents of the slot. // uint256(bytes_storage) = uint256(bytes_storage) + uint256(bytes_memory) + new_length sstore( _preBytes.slot, // all the modifications to the slot are inside this // next block add( // we can just add to the slot contents because the // bytes we want to change are the LSBs fslot, add( mul( div( // load the bytes from memory mload(add(_postBytes, 0x20)), // zero all bytes to the right exp(0x100, sub(32, mlength)) ), // and now shift left the number of bytes to // leave space for the length in the slot exp(0x100, sub(32, newlength)) ), // increase length by the double of the memory // bytes length mul(mlength, 2) ) ) ) } case 1 { // The stored value fits in the slot, but the combined value // will exceed it. // get the keccak hash to get the contents of the array mstore(0x0, _preBytes.slot) let sc := add(keccak256(0x0, 0x20), div(slength, 32)) // save new length sstore(_preBytes.slot, add(mul(newlength, 2), 1)) // The contents of the _postBytes array start 32 bytes into // the structure. Our first read should obtain the `submod` // bytes that can fit into the unused space in the last word // of the stored array. To get this, we read 32 bytes starting // from `submod`, so the data we read overlaps with the array // contents by `submod` bytes. Masking the lowest-order // `submod` bytes allows us to add that value directly to the // stored value. 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 { // get the keccak hash to get the contents of the array mstore(0x0, _preBytes.slot) // Start copying to the last used word of the stored array. let sc := add(keccak256(0x0, 0x20), div(slength, 32)) // save new length sstore(_preBytes.slot, add(mul(newlength, 2), 1)) // Copy over the first `submod` bytes of the new data as in // case 1 above. 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 { // Get a location of some free memory and store it in tempBytes as // Solidity does for memory variables. tempBytes := mload(0x40) // The first word of the slice result is potentially a partial // word read from the original array. To read it, we calculate // the length of that partial word and start copying that many // bytes into the array. The first word we copy will start with // data we don't care about, but the last `lengthmod` bytes will // land at the beginning of the contents of the new array. When // we're done copying, we overwrite the full first word with // the actual length of the slice. let lengthmod := and(_length, 31) // The multiplication in the next line is necessary // because when slicing multiples of 32 bytes (lengthmod == 0) // the following copy loop was copying the origin's length // and then ending prematurely not copying everything it should. let mc := add(add(tempBytes, lengthmod), mul(0x20, iszero(lengthmod))) let end := add(mc, _length) for { // The multiplication in the next line has the same exact purpose // as the one above. 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) //update free-memory pointer //allocating the array padded to 32 bytes like the compiler does now mstore(0x40, and(add(mc, 31), not(31))) } //if we want a zero-length slice let's just return a zero-length array default { tempBytes := mload(0x40) //zero out the 32 bytes slice we are about to return //we need to do it because Solidity does not garbage collect 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) // if lengths don't match the arrays are not equal switch eq(length, mload(_postBytes)) case 1 { // cb is a circuit breaker in the for loop since there's // no said feature for inline assembly loops // cb = 1 - don't breaker // cb = 0 - break let cb := 1 let mc := add(_preBytes, 0x20) let end := add(mc, length) for { let cc := add(_postBytes, 0x20) // the next line is the loop condition: // while(uint256(mc < end) + cb == 2) } eq(add(lt(mc, end), cb), 2) { mc := add(mc, 0x20) cc := add(cc, 0x20) } { // if any of these checks fails then arrays are not equal if iszero(eq(mload(mc), mload(cc))) { // unsuccess: success := 0 cb := 0 } } } default { // unsuccess: success := 0 } } return success; } function equalStorage(bytes storage _preBytes, bytes memory _postBytes) internal view returns (bool) { bool success = true; assembly { // we know _preBytes_offset is 0 let fslot := sload(_preBytes.slot) // Decode the length of the stored array like in concatStorage(). let slength := div(and(fslot, sub(mul(0x100, iszero(and(fslot, 1))), 1)), 2) let mlength := mload(_postBytes) // if lengths don't match the arrays are not equal switch eq(slength, mlength) case 1 { // slength can contain both the length and contents of the array // if length < 32 bytes so let's prepare for that // v. http://solidity.readthedocs.io/en/latest/miscellaneous.html#layout-of-state-variables-in-storage if iszero(iszero(slength)) { switch lt(slength, 32) case 1 { // blank the last byte which is the length fslot := mul(div(fslot, 0x100), 0x100) if iszero(eq(fslot, mload(add(_postBytes, 0x20)))) { // unsuccess: success := 0 } } default { // cb is a circuit breaker in the for loop since there's // no said feature for inline assembly loops // cb = 1 - don't breaker // cb = 0 - break let cb := 1 // get the keccak hash to get the contents of the array mstore(0x0, _preBytes.slot) let sc := keccak256(0x0, 0x20) let mc := add(_postBytes, 0x20) let end := add(mc, mlength) // the next line is the loop condition: // while(uint256(mc < end) + cb == 2) for { } eq(add(lt(mc, end), cb), 2) { sc := add(sc, 1) mc := add(mc, 0x20) } { if iszero(eq(sload(sc), mload(mc))) { // unsuccess: success := 0 cb := 0 } } } } } default { // unsuccess: success := 0 } } return success; } }
// SPDX-License-Identifier: MIT OR Apache-2.0 pragma solidity 0.8.11; library ExcessivelySafeCall { uint256 constant LOW_28_MASK = 0x00000000ffffffffffffffffffffffffffffffffffffffffffffffffffffffff; /// @notice Use when you _really_ really _really_ don't trust the called /// contract. This prevents the called contract from causing reversion of /// the caller in as many ways as we can. /// @dev The main difference between this and a solidity low-level call is /// that we limit the number of bytes that the callee can cause to be /// copied to caller memory. This prevents stupid things like malicious /// contracts returning 10,000,000 bytes causing a local OOG when copying /// to memory. /// @param _target The address to call /// @param _gas The amount of gas to forward to the remote contract /// @param _maxCopy The maximum number of bytes of returndata to copy /// to memory. /// @param _calldata The data to send to the remote contract /// @return success and returndata, as `.call()`. Returndata is capped to /// `_maxCopy` bytes. function excessivelySafeCall( address _target, uint256 _gas, uint16 _maxCopy, bytes memory _calldata ) internal returns (bool, bytes memory) { // set up for assembly call uint256 _toCopy; bool _success; bytes memory _returnData = new bytes(_maxCopy); // dispatch message to recipient // by assembly calling "handle" function // we call via assembly to avoid memcopying a very large returndata // returned by a malicious contract assembly { _success := call( _gas, // gas _target, // recipient 0, // ether value add(_calldata, 0x20), // inloc mload(_calldata), // inlen 0, // outloc 0 // outlen ) // limit our copy to 256 bytes _toCopy := returndatasize() if gt(_toCopy, _maxCopy) { _toCopy := _maxCopy } // Store the length of the copied bytes mstore(_returnData, _toCopy) // copy the bytes from returndata[0:_toCopy] returndatacopy(add(_returnData, 0x20), 0, _toCopy) } return (_success, _returnData); } /// @notice Use when you _really_ really _really_ don't trust the called /// contract. This prevents the called contract from causing reversion of /// the caller in as many ways as we can. /// @dev The main difference between this and a solidity low-level call is /// that we limit the number of bytes that the callee can cause to be /// copied to caller memory. This prevents stupid things like malicious /// contracts returning 10,000,000 bytes causing a local OOG when copying /// to memory. /// @param _target The address to call /// @param _gas The amount of gas to forward to the remote contract /// @param _maxCopy The maximum number of bytes of returndata to copy /// to memory. /// @param _calldata The data to send to the remote contract /// @return success and returndata, as `.call()`. Returndata is capped to /// `_maxCopy` bytes. function excessivelySafeStaticCall( address _target, uint256 _gas, uint16 _maxCopy, bytes memory _calldata ) internal view returns (bool, bytes memory) { // set up for assembly call uint256 _toCopy; bool _success; bytes memory _returnData = new bytes(_maxCopy); // dispatch message to recipient // by assembly calling "handle" function // we call via assembly to avoid memcopying a very large returndata // returned by a malicious contract assembly { _success := staticcall( _gas, // gas _target, // recipient add(_calldata, 0x20), // inloc mload(_calldata), // inlen 0, // outloc 0 // outlen ) // limit our copy to 256 bytes _toCopy := returndatasize() if gt(_toCopy, _maxCopy) { _toCopy := _maxCopy } // Store the length of the copied bytes mstore(_returnData, _toCopy) // copy the bytes from returndata[0:_toCopy] returndatacopy(add(_returnData, 0x20), 0, _toCopy) } return (_success, _returnData); } /** * @notice Swaps function selectors in encoded contract calls * @dev Allows reuse of encoded calldata for functions with identical * argument types but different names. It simply swaps out the first 4 bytes * for the new selector. This function modifies memory in place, and should * only be used with caution. * @param _newSelector The new 4-byte selector * @param _buf The encoded contract args */ function swapSelector(bytes4 _newSelector, bytes memory _buf) internal pure { require(_buf.length >= 4); uint256 _mask = LOW_28_MASK; assembly { // load the first word of let _word := mload(add(_buf, 0x20)) // mask out the top 4 bytes // /x _word := and(_word, _mask) _word := or(_newSelector, _word) mstore(add(_buf, 0x20), _word) } } }
// SPDX-License-Identifier: MIT pragma solidity 0.8.11; /** * @title Cross Chain Config * @author AuraFinance * @dev Setter/Getter logic for cross chain layer zero config */ abstract contract CrossChainConfig { /// @dev srcChainId mapped to selector and configuration mapping(uint16 => mapping(bytes32 => bytes)) public getAdapterParams; /* ------------------------------------------------------------------- Events ------------------------------------------------------------------- */ /** * @dev Emitted a configuration is set for a given source chain id. * @param srcChainId The source chain ID. * @param selector The selector. * @param adapterParams The configuration. */ event SetAdapterParams(uint16 indexed srcChainId, bytes32 selector, bytes adapterParams); /** * @dev Sets the configuration for a given source chain ID and selector. * @param _srcChainId The source chain ID. * @param _selector The selector. * @param _adapterParams The adapter params. */ function setAdapterParams( uint16 _srcChainId, bytes32 _selector, bytes memory _adapterParams ) external virtual; function _setAdapterParams( uint16 _srcChainId, bytes32 _selector, bytes memory _adapterParams ) internal { getAdapterParams[_srcChainId][_selector] = _adapterParams; emit SetAdapterParams(_srcChainId, _selector, _adapterParams); } }
// SPDX-License-Identifier: MIT pragma solidity 0.8.11; /** * @title Cross Chain Messages * @author AuraFinance * @dev Share types for cross chain messages */ library CrossChainMessages { /// @dev Magic Bytes to pad the custom message with /// bytes4(keccak256("_isCustomMessage(bytes)")) bytes4 public constant MAGIC_BYTES = 0x7a7f9946; enum MessageType { // Lock L2 AURA as vlAURA LOCK, // sent from the L2 to trigger a feeDebt update FEES, // sent from the L1 to the L2 after a successful debt update // will trigger AURA to be sent to the L2 and the rate to get // updated on the L2 FEES_CALLBACK } function getMessageType(bytes memory _payload) internal pure returns (MessageType) { bytes32 messageType; assembly { messageType := mload(add(add(_payload, 32), 32)) } return MessageType(uint8(uint256(messageType))); } function isCustomMessage(bytes memory _payload) internal pure returns (bool) { bytes4 sig; assembly { sig := mload(add(_payload, 32)) } return sig == MAGIC_BYTES; } /* ------------------------------------------------------------------- Encode ------------------------------------------------------------------- */ /** * @notice This function encodes the lock message for the sender and amount. * @dev The function encodes the lock message for the sender and amount using the ABI encoding. * The MAGIC_BYTES and MessageType.LOCK are used to encode the message. */ function encodeLock(address sender, uint256 amount) internal pure returns (bytes memory) { return abi.encode(MAGIC_BYTES, MessageType.LOCK, sender, amount); } /** * @notice This function encodes fees for a given amount. * @dev The function takes a uint256 amount as an argument and returns a bytes memory. */ function encodeFees(uint256 amount) internal pure returns (bytes memory) { return abi.encode(MAGIC_BYTES, MessageType.FEES, amount); } /** * @notice encodeFeesCallback() is a function that encodes the cvxAmount into a bytes memory. * @dev The function takes a uint256 parameter cvxAmount, and returns a bytes memory. */ function encodeFeesCallback(uint256 cvxAmount) internal pure returns (bytes memory) { return abi.encode(MAGIC_BYTES, MessageType.FEES_CALLBACK, cvxAmount); } /* ------------------------------------------------------------------- Decode ------------------------------------------------------------------- */ /** * @notice decodeFeesCallback decodes the payload and returns the cvxAmount * @dev decodeFeesCallback takes in a bytes memory _payload and returns an uint256 cvxAmount */ function decodeFeesCallback(bytes memory _payload) internal pure returns (uint256) { (, , uint256 cvxAmount) = abi.decode(_payload, (bytes4, uint8, uint256)); return (cvxAmount); } /** * @notice decodeFees() is a function that decodes the fees from a given payload. * @dev decodeFees() takes in a bytes memory _payload and returns a uint256 amount. * It uses the abi.decode() function to decode the payload. */ function decodeFees(bytes memory _payload) internal pure returns (uint256) { (, , uint256 amount) = abi.decode(_payload, (bytes4, uint8, uint256)); return amount; } /** * @notice decodeLock() is a function that decodes a payload and returns the sender address and amount. * @dev decodeLock() takes a bytes memory _payload as an argument and returns an address and uint256. * It uses the ABI library to decode the payload and returns the sender address and amount.*/ function decodeLock(bytes memory _payload) internal pure returns (address, uint256) { (, , address sender, uint256 amount) = abi.decode(_payload, (bytes4, uint8, address, uint256)); return (sender, amount); } }
// SPDX-License-Identifier: MIT pragma solidity 0.8.11; /// @notice A library for performing overflow-/underflow-safe math, /// updated with awesomeness from of DappHub (https://github.com/dapphub/ds-math). library AuraMath { /** * @dev Returns the smallest of two numbers. */ function min(uint256 a, uint256 b) internal pure returns (uint256) { return a < b ? a : b; } function add(uint256 a, uint256 b) internal pure returns (uint256 c) { c = a + b; } function sub(uint256 a, uint256 b) internal pure returns (uint256 c) { c = a - b; } function mul(uint256 a, uint256 b) internal pure returns (uint256 c) { c = a * b; } function div(uint256 a, uint256 b) internal pure returns (uint256) { return a / b; } /** * @dev Returns the average of two numbers. The result is rounded towards * zero. */ function average(uint256 a, uint256 b) internal pure returns (uint256) { // (a + b) / 2 can overflow, so we distribute. return (a / 2) + (b / 2) + (((a % 2) + (b % 2)) / 2); } function to224(uint256 a) internal pure returns (uint224 c) { require(a <= type(uint224).max, "AuraMath: uint224 Overflow"); c = uint224(a); } function to128(uint256 a) internal pure returns (uint128 c) { require(a <= type(uint128).max, "AuraMath: uint128 Overflow"); c = uint128(a); } function to112(uint256 a) internal pure returns (uint112 c) { require(a <= type(uint112).max, "AuraMath: uint112 Overflow"); c = uint112(a); } function to96(uint256 a) internal pure returns (uint96 c) { require(a <= type(uint96).max, "AuraMath: uint96 Overflow"); c = uint96(a); } function to32(uint256 a) internal pure returns (uint32 c) { require(a <= type(uint32).max, "AuraMath: uint32 Overflow"); c = uint32(a); } } /// @notice A library for performing overflow-/underflow-safe addition and subtraction on uint32. library AuraMath32 { function sub(uint32 a, uint32 b) internal pure returns (uint32 c) { c = a - b; } } /// @notice A library for performing overflow-/underflow-safe addition and subtraction on uint112. library AuraMath112 { function add(uint112 a, uint112 b) internal pure returns (uint112 c) { c = a + b; } function sub(uint112 a, uint112 b) internal pure returns (uint112 c) { c = a - b; } } /// @notice A library for performing overflow-/underflow-safe addition and subtraction on uint224. library AuraMath224 { function add(uint224 a, uint224 b) internal pure returns (uint224 c) { c = a + b; } }
{ "metadata": { "bytecodeHash": "none" }, "optimizer": { "enabled": true, "runs": 800 }, "outputSelection": { "*": { "*": [ "evm.bytecode", "evm.deployedBytecode", "devdoc", "userdoc", "metadata", "abi" ] } }, "libraries": {} }
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Contract ABI
API[{"inputs":[{"internalType":"address","name":"_lzEndpoint","type":"address"},{"internalType":"address","name":"_booster","type":"address"},{"internalType":"address","name":"_balToken","type":"address"},{"internalType":"address","name":"_auraToken","type":"address"},{"internalType":"address","name":"_auraOFT","type":"address"},{"internalType":"address","name":"_treasury","type":"address"}],"stateMutability":"nonpayable","type":"constructor"},{"anonymous":false,"inputs":[{"indexed":false,"internalType":"uint16","name":"srcChainId","type":"uint16"},{"indexed":false,"internalType":"uint256","name":"amount","type":"uint256"}],"name":"AuraDistributed","type":"event"},{"anonymous":false,"inputs":[{"indexed":false,"internalType":"address","name":"booster","type":"address"}],"name":"BoosterUpdated","type":"event"},{"anonymous":false,"inputs":[{"indexed":false,"internalType":"uint16","name":"srcChainId","type":"uint16"},{"indexed":false,"internalType":"address","name":"bridgeDelegate","type":"address"}],"name":"BridgeDelegateUpdated","type":"event"},{"anonymous":false,"inputs":[{"indexed":false,"internalType":"address","name":"distributor","type":"address"},{"indexed":false,"internalType":"bool","name":"active","type":"bool"}],"name":"DisributorUpdated","type":"event"},{"anonymous":false,"inputs":[{"indexed":false,"internalType":"uint16","name":"srcChainId","type":"uint16"},{"indexed":false,"internalType":"uint256","name":"amount","type":"uint256"}],"name":"FeeDebtNotified","type":"event"},{"anonymous":false,"inputs":[{"indexed":false,"internalType":"uint16","name":"srcChainId","type":"uint16"},{"indexed":false,"internalType":"uint256","name":"amount","type":"uint256"}],"name":"FeeDebtSettled","type":"event"},{"anonymous":false,"inputs":[{"indexed":false,"internalType":"uint16","name":"srcChainId","type":"uint16"},{"indexed":false,"internalType":"address","name":"l2Coordinator","type":"address"}],"name":"L2CoordinatorUpated","type":"event"},{"anonymous":false,"inputs":[{"indexed":false,"internalType":"uint16","name":"_srcChainId","type":"uint16"},{"indexed":false,"internalType":"bytes","name":"_srcAddress","type":"bytes"},{"indexed":false,"internalType":"uint64","name":"_nonce","type":"uint64"},{"indexed":false,"internalType":"bytes","name":"_payload","type":"bytes"},{"indexed":false,"internalType":"bytes","name":"_reason","type":"bytes"}],"name":"MessageFailed","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"},{"anonymous":false,"inputs":[{"indexed":false,"internalType":"uint16","name":"_srcChainId","type":"uint16"},{"indexed":false,"internalType":"bytes","name":"_srcAddress","type":"bytes"},{"indexed":false,"internalType":"uint64","name":"_nonce","type":"uint64"},{"indexed":false,"internalType":"bytes32","name":"_payloadHash","type":"bytes32"}],"name":"RetryMessageSuccess","type":"event"},{"anonymous":false,"inputs":[{"indexed":false,"internalType":"uint256","name":"multiplier","type":"uint256"}],"name":"RewardMultiplierUpdated","type":"event"},{"anonymous":false,"inputs":[{"indexed":true,"internalType":"uint16","name":"srcChainId","type":"uint16"},{"indexed":false,"internalType":"bytes32","name":"selector","type":"bytes32"},{"indexed":false,"internalType":"bytes","name":"adapterParams","type":"bytes"}],"name":"SetAdapterParams","type":"event"},{"anonymous":false,"inputs":[{"indexed":false,"internalType":"uint16","name":"_dstChainId","type":"uint16"},{"indexed":false,"internalType":"uint16","name":"_type","type":"uint16"},{"indexed":false,"internalType":"uint256","name":"_minDstGas","type":"uint256"}],"name":"SetMinDstGas","type":"event"},{"anonymous":false,"inputs":[{"indexed":false,"internalType":"address","name":"precrime","type":"address"}],"name":"SetPrecrime","type":"event"},{"anonymous":false,"inputs":[{"indexed":false,"internalType":"uint16","name":"_remoteChainId","type":"uint16"},{"indexed":false,"internalType":"bytes","name":"_path","type":"bytes"}],"name":"SetTrustedRemote","type":"event"},{"anonymous":false,"inputs":[{"indexed":false,"internalType":"uint16","name":"_remoteChainId","type":"uint16"},{"indexed":false,"internalType":"bytes","name":"_remoteAddress","type":"bytes"}],"name":"SetTrustedRemoteAddress","type":"event"},{"inputs":[],"name":"DEFAULT_PAYLOAD_SIZE_LIMIT","outputs":[{"internalType":"uint256","name":"","type":"uint256"}],"stateMutability":"view","type":"function"},{"inputs":[],"name":"REWARD_MULTIPLIER_DENOMINATOR","outputs":[{"internalType":"uint256","name":"","type":"uint256"}],"stateMutability":"view","type":"function"},{"inputs":[],"name":"auraOFT","outputs":[{"internalType":"address","name":"","type":"address"}],"stateMutability":"view","type":"function"},{"inputs":[],"name":"auraToken","outputs":[{"internalType":"address","name":"","type":"address"}],"stateMutability":"view","typ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A contract address hosts a smart contract, which is a set of code stored on the blockchain that runs when predetermined conditions are met. Learn more about addresses in our Knowledge Base.