文件 1 的 5:Context.sol
pragma solidity 0.8.9;
abstract contract Context {
function _msgSender() internal view virtual returns (address) {
return msg.sender;
}
function _msgData() internal view virtual returns (bytes calldata) {
this;
return msg.data;
}
}
文件 2 的 5:IERC20.sol
pragma solidity 0.8.9;
interface IERC20 {
function totalSupply() external view returns (uint256);
function decimals() external view returns (uint8);
function balanceOf(address account) external view returns (uint256);
function transfer(address recipient, 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 sender,
address recipient,
uint256 amount
) external returns (bool);
event Transfer(address indexed from, address indexed to, uint256 value);
event Approval(address indexed owner, address indexed spender, uint256 value);
}
文件 3 的 5:MerkleProof.sol
pragma solidity ^0.8.0;
library MerkleProof {
function verify(
bytes32[] memory proof,
bytes32 root,
bytes32 leaf
) internal pure returns (bool) {
return processProof(proof, leaf) == root;
}
function verifyCalldata(
bytes32[] calldata proof,
bytes32 root,
bytes32 leaf
) internal pure returns (bool) {
return processProofCalldata(proof, leaf) == root;
}
function processProof(bytes32[] memory proof, bytes32 leaf) internal pure returns (bytes32) {
bytes32 computedHash = leaf;
for (uint256 i = 0; i < proof.length; i++) {
computedHash = _hashPair(computedHash, proof[i]);
}
return computedHash;
}
function processProofCalldata(bytes32[] calldata proof, bytes32 leaf) internal pure returns (bytes32) {
bytes32 computedHash = leaf;
for (uint256 i = 0; i < proof.length; i++) {
computedHash = _hashPair(computedHash, proof[i]);
}
return computedHash;
}
function multiProofVerify(
bytes32[] memory proof,
bool[] memory proofFlags,
bytes32 root,
bytes32[] memory leaves
) internal pure returns (bool) {
return processMultiProof(proof, proofFlags, leaves) == root;
}
function multiProofVerifyCalldata(
bytes32[] calldata proof,
bool[] calldata proofFlags,
bytes32 root,
bytes32[] memory leaves
) internal pure returns (bool) {
return processMultiProofCalldata(proof, proofFlags, leaves) == root;
}
function processMultiProof(
bytes32[] memory proof,
bool[] memory proofFlags,
bytes32[] memory leaves
) internal pure returns (bytes32 merkleRoot) {
uint256 leavesLen = leaves.length;
uint256 totalHashes = proofFlags.length;
require(leavesLen + proof.length - 1 == totalHashes, "MerkleProof: invalid multiproof");
bytes32[] memory hashes = new bytes32[](totalHashes);
uint256 leafPos = 0;
uint256 hashPos = 0;
uint256 proofPos = 0;
for (uint256 i = 0; i < totalHashes; i++) {
bytes32 a = leafPos < leavesLen ? leaves[leafPos++] : hashes[hashPos++];
bytes32 b = proofFlags[i] ? leafPos < leavesLen ? leaves[leafPos++] : hashes[hashPos++] : proof[proofPos++];
hashes[i] = _hashPair(a, b);
}
if (totalHashes > 0) {
return hashes[totalHashes - 1];
} else if (leavesLen > 0) {
return leaves[0];
} else {
return proof[0];
}
}
function processMultiProofCalldata(
bytes32[] calldata proof,
bool[] calldata proofFlags,
bytes32[] memory leaves
) internal pure returns (bytes32 merkleRoot) {
uint256 leavesLen = leaves.length;
uint256 totalHashes = proofFlags.length;
require(leavesLen + proof.length - 1 == totalHashes, "MerkleProof: invalid multiproof");
bytes32[] memory hashes = new bytes32[](totalHashes);
uint256 leafPos = 0;
uint256 hashPos = 0;
uint256 proofPos = 0;
for (uint256 i = 0; i < totalHashes; i++) {
bytes32 a = leafPos < leavesLen ? leaves[leafPos++] : hashes[hashPos++];
bytes32 b = proofFlags[i] ? leafPos < leavesLen ? leaves[leafPos++] : hashes[hashPos++] : proof[proofPos++];
hashes[i] = _hashPair(a, b);
}
if (totalHashes > 0) {
return hashes[totalHashes - 1];
} else if (leavesLen > 0) {
return leaves[0];
} else {
return proof[0];
}
}
function _hashPair(bytes32 a, bytes32 b) private pure returns (bytes32) {
return a < b ? _efficientHash(a, b) : _efficientHash(b, a);
}
function _efficientHash(bytes32 a, bytes32 b) private pure returns (bytes32 value) {
assembly {
mstore(0x00, a)
mstore(0x20, b)
value := keccak256(0x00, 0x40)
}
}
}
文件 4 的 5:MerkleRedeem.sol
pragma solidity 0.8.9;
pragma experimental ABIEncoderV2;
import "./MerkleProof.sol";
import "../../_external/Ownable.sol";
import "../../_external/IERC20.sol";
contract MerkleRedeem is Ownable {
IERC20 public token;
event Claimed(address _claimant, uint256 _balance);
mapping(uint => bytes32) public weekMerkleRoots;
mapping(uint => mapping(address => bool)) public claimed;
constructor(
address _token
) {
token = IERC20(_token);
}
function disburse(
address _liquidityProvider,
uint _balance
)
private
{
if (_balance > 0) {
emit Claimed(_liquidityProvider, _balance);
require(token.transfer(_liquidityProvider, _balance), "ERR_TRANSFER_FAILED");
}
}
function claimWeek(
address _liquidityProvider,
uint _week,
uint _claimedBalance,
bytes32[] memory _merkleProof
)
public
{
require(!claimed[_week][_liquidityProvider]);
require(verifyClaim(_liquidityProvider, _week, _claimedBalance, _merkleProof), 'Incorrect merkle proof');
claimed[_week][_liquidityProvider] = true;
disburse(_liquidityProvider, _claimedBalance);
}
struct Claim {
uint week;
uint balance;
bytes32[] merkleProof;
}
function claimWeeks(
address _liquidityProvider,
Claim[] memory claims
)
public
{
uint totalBalance = 0;
Claim memory claim ;
for(uint i = 0; i < claims.length; i++) {
claim = claims[i];
require(!claimed[claim.week][_liquidityProvider]);
require(verifyClaim(_liquidityProvider, claim.week, claim.balance, claim.merkleProof), 'Incorrect merkle proof');
totalBalance += claim.balance;
claimed[claim.week][_liquidityProvider] = true;
}
disburse(_liquidityProvider, totalBalance);
}
function claimStatus(
address _liquidityProvider,
uint _begin,
uint _end
)
external
view
returns (bool[] memory)
{
uint size = 1 + _end - _begin;
bool[] memory arr = new bool[](size);
for(uint i = 0; i < size; i++) {
arr[i] = claimed[_begin + i][_liquidityProvider];
}
return arr;
}
function merkleRoots(
uint _begin,
uint _end
)
external
view
returns (bytes32[] memory)
{
uint size = 1 + _end - _begin;
bytes32[] memory arr = new bytes32[](size);
for(uint i = 0; i < size; i++) {
arr[i] = weekMerkleRoots[_begin + i];
}
return arr;
}
function verifyClaim(
address _liquidityProvider,
uint _week,
uint _claimedBalance,
bytes32[] memory _merkleProof
)
public
view
returns (bool valid)
{
bytes32 leaf = keccak256(abi.encodePacked(_liquidityProvider, _claimedBalance));
return MerkleProof.verify(_merkleProof, weekMerkleRoots[_week], leaf);
}
function seedAllocations(
uint _week,
bytes32 _merkleRoot,
uint _totalAllocation
)
external
onlyOwner
{
require(weekMerkleRoots[_week] == bytes32(0), "cannot rewrite merkle root");
weekMerkleRoots[_week] = _merkleRoot;
require(token.transferFrom(msg.sender, address(this), _totalAllocation), "ERR_TRANSFER_FAILED");
}
}
文件 5 的 5:Ownable.sol
pragma solidity 0.8.9;
import "./Context.sol";
abstract contract Ownable is Context {
address private _owner;
event OwnershipTransferred(address indexed previousOwner, address indexed newOwner);
constructor() {
address msgSender = _msgSender();
_owner = msgSender;
emit OwnershipTransferred(address(0), msgSender);
}
function owner() public view virtual returns (address) {
return _owner;
}
modifier onlyOwner() {
require(owner() == _msgSender(), "Ownable: caller is not the owner");
_;
}
function renounceOwnership() public virtual onlyOwner {
emit OwnershipTransferred(_owner, address(0));
_owner = address(0);
}
function transferOwnership(address newOwner) public virtual onlyOwner {
require(newOwner != address(0), "Ownable: new owner is zero addr");
emit OwnershipTransferred(_owner, newOwner);
_owner = newOwner;
}
}
{
"compilationTarget": {
"contracts/IPTsale/MerkleRedeem/MerkleRedeem.sol": "MerkleRedeem"
},
"evmVersion": "london",
"libraries": {},
"metadata": {
"bytecodeHash": "ipfs"
},
"optimizer": {
"enabled": true,
"runs": 200
},
"remappings": []
}
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