487 lines
20 KiB
Solidity
487 lines
20 KiB
Solidity
// SPDX-License-Identifier: MIT
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pragma solidity ^0.8.0;
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import "@openzeppelin/contracts-upgradeable/proxy/utils/UUPSUpgradeable.sol";
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import "@openzeppelin/contracts-upgradeable/access/OwnableUpgradeable.sol";
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import "@openzeppelin/contracts-upgradeable/utils/PausableUpgradeable.sol";
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import "@openzeppelin/contracts-upgradeable/utils/ReentrancyGuardUpgradeable.sol";
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import "@openzeppelin/contracts/token/ERC20/IERC20.sol";
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import "@openzeppelin/contracts/token/ERC20/extensions/IERC20Metadata.sol";
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import "@openzeppelin/contracts/token/ERC20/utils/SafeERC20.sol";
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import "./LendingStorage.sol";
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import "./LendingMath.sol";
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import "../interfaces/ILending.sol";
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import "../interfaces/IYTLendingPriceFeed.sol";
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contract Lending is
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ILending,
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LendingStorage,
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UUPSUpgradeable,
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OwnableUpgradeable,
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PausableUpgradeable,
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ReentrancyGuardUpgradeable
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{
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using SafeERC20 for IERC20;
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/// @custom:oz-upgrades-unsafe-allow constructor
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constructor() {
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_disableInitializers();
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}
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function initialize(Configuration calldata config) external initializer {
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__UUPSUpgradeable_init();
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__Ownable_init(msg.sender);
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__Pausable_init();
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__ReentrancyGuard_init();
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baseToken = config.baseToken;
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lendingPriceSource = config.lendingPriceSource;
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uint64 SECONDS_PER_YEAR = 365 * 24 * 60 * 60;
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supplyKink = config.supplyKink;
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supplyPerSecondInterestRateSlopeLow = uint64(config.supplyPerYearInterestRateSlopeLow / SECONDS_PER_YEAR);
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supplyPerSecondInterestRateSlopeHigh = uint64(config.supplyPerYearInterestRateSlopeHigh / SECONDS_PER_YEAR);
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supplyPerSecondInterestRateBase = uint64(config.supplyPerYearInterestRateBase / SECONDS_PER_YEAR);
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borrowKink = config.borrowKink;
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borrowPerSecondInterestRateSlopeLow = uint64(config.borrowPerYearInterestRateSlopeLow / SECONDS_PER_YEAR);
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borrowPerSecondInterestRateSlopeHigh = uint64(config.borrowPerYearInterestRateSlopeHigh / SECONDS_PER_YEAR);
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borrowPerSecondInterestRateBase = uint64(config.borrowPerYearInterestRateBase / SECONDS_PER_YEAR);
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storeFrontPriceFactor = config.storeFrontPriceFactor;
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baseBorrowMin = config.baseBorrowMin;
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targetReserves = config.targetReserves;
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supplyIndex = 1e18;
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borrowIndex = 1e18;
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lastAccrualTime = block.timestamp;
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for (uint i = 0; i < config.assetConfigs.length; i++) {
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AssetConfig memory assetConfig = config.assetConfigs[i];
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if(assetConfig.liquidationFactor >= 1e18) revert InvalidLiquidationFactor();
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if(assetConfig.borrowCollateralFactor >= 1e18) revert InvalidBorrowCollateralFactor();
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if(assetConfig.liquidateCollateralFactor >= 1e18) revert InvalidLiquidateCollateralFactor();
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assetConfigs[assetConfig.asset] = assetConfig;
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assetList.push(assetConfig.asset);
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}
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}
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function _authorizeUpgrade(address newImplementation) internal override onlyOwner {}
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function pause() external onlyOwner {
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_pause();
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}
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function unpause() external onlyOwner {
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_unpause();
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}
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function accruedInterestIndices(uint256 timeElapsed) internal view returns (uint256, uint256) {
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uint256 newSupplyIndex = supplyIndex;
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uint256 newBorrowIndex = borrowIndex;
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if (timeElapsed > 0) {
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uint256 totalSupply = (uint256(totalSupplyBase) * supplyIndex) / 1e18;
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uint256 totalBorrow = (uint256(totalBorrowBase) * borrowIndex) / 1e18;
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uint64 utilization = LendingMath.getUtilization(totalSupply, totalBorrow);
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uint64 supplyRate = LendingMath.getSupplyRate(
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utilization,
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supplyKink,
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supplyPerSecondInterestRateSlopeLow,
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supplyPerSecondInterestRateSlopeHigh,
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supplyPerSecondInterestRateBase
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);
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uint64 borrowRate = LendingMath.getBorrowRate(
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utilization,
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borrowKink,
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borrowPerSecondInterestRateSlopeLow,
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borrowPerSecondInterestRateSlopeHigh,
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borrowPerSecondInterestRateBase
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);
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newSupplyIndex = LendingMath.accrueInterest(supplyIndex, supplyRate, timeElapsed);
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newBorrowIndex = LendingMath.accrueInterest(borrowIndex, borrowRate, timeElapsed);
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}
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return (newSupplyIndex, newBorrowIndex);
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}
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function accrueInterest() public {
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uint256 timeElapsed = block.timestamp - lastAccrualTime;
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if (timeElapsed == 0) return;
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(supplyIndex, borrowIndex) = accruedInterestIndices(timeElapsed);
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lastAccrualTime = block.timestamp;
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}
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function supply(uint256 amount) external override nonReentrant whenNotPaused {
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accrueInterest();
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IERC20(baseToken).transferFrom(msg.sender, address(this), amount);
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UserBasic memory user = userBasic[msg.sender];
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int104 oldPrincipal = user.principal;
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uint256 index = oldPrincipal >= 0 ? supplyIndex : borrowIndex;
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int256 oldBalance = LendingMath.principalToBalance(oldPrincipal, index);
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int256 newBalance = oldBalance + int256(amount);
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uint256 newIndex = newBalance >= 0 ? supplyIndex : borrowIndex;
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int104 newPrincipal = LendingMath.balanceToPrincipal(newBalance, newIndex);
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(uint104 repayAmount, uint104 supplyAmount) = LendingMath.repayAndSupplyAmount(oldPrincipal, newPrincipal);
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totalBorrowBase -= repayAmount;
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totalSupplyBase += supplyAmount;
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userBasic[msg.sender].principal = newPrincipal;
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emit Supply(msg.sender, msg.sender, amount);
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}
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function withdraw(uint256 amount) external override nonReentrant whenNotPaused {
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accrueInterest();
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UserBasic memory user = userBasic[msg.sender];
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int104 oldPrincipal = user.principal;
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uint256 index = oldPrincipal >= 0 ? supplyIndex : borrowIndex;
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int256 oldBalance = LendingMath.principalToBalance(oldPrincipal, index);
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int256 newBalance = oldBalance - int256(amount);
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uint256 newIndex = newBalance >= 0 ? supplyIndex : borrowIndex;
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int104 newPrincipal = LendingMath.balanceToPrincipal(newBalance, newIndex);
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(uint104 withdrawAmount, uint104 borrowAmount) = LendingMath.withdrawAndBorrowAmount(oldPrincipal, newPrincipal);
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totalSupplyBase -= withdrawAmount;
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totalBorrowBase += borrowAmount;
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userBasic[msg.sender].principal = newPrincipal;
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if (newBalance < 0) {
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if (uint256(-newBalance) < baseBorrowMin) revert BorrowTooSmall();
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if (!_isSolvent(msg.sender)) revert InsufficientCollateral();
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}
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IERC20(baseToken).safeTransfer(msg.sender, amount);
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emit Withdraw(msg.sender, msg.sender, amount);
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}
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function supplyCollateral(address asset, uint256 amount) external override nonReentrant whenNotPaused {
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AssetConfig memory config = assetConfigs[asset];
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if (config.asset == address(0)) revert Unauthorized();
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uint256 newTotal = userCollateral[msg.sender][asset] + amount;
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if (newTotal > config.supplyCap) revert SupplyCapExceeded();
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IERC20(asset).transferFrom(msg.sender, address(this), amount);
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userCollateral[msg.sender][asset] += amount;
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emit SupplyCollateral(msg.sender, msg.sender, asset, amount);
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}
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function withdrawCollateral(address asset, uint256 amount) external override nonReentrant whenNotPaused {
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accrueInterest();
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if (userCollateral[msg.sender][asset] < amount) revert InsufficientBalance();
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userCollateral[msg.sender][asset] -= amount;
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int104 principal = userBasic[msg.sender].principal;
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if (principal < 0) {
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if (!_isSolvent(msg.sender)) revert InsufficientCollateral();
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}
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IERC20(asset).safeTransfer(msg.sender, amount);
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emit WithdrawCollateral(msg.sender, msg.sender, asset, amount);
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}
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function _absorbInternal(address absorber, address borrower) internal {
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if (!isLiquidatable(borrower)) revert NotLiquidatable();
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UserBasic memory user = userBasic[borrower];
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int104 oldPrincipal = user.principal;
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int256 oldBalance = LendingMath.principalToBalance(oldPrincipal, borrowIndex);
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if (oldBalance >= 0) revert NotLiquidatable();
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uint256 basePrice = IYTLendingPriceFeed(lendingPriceSource).getPrice(baseToken);
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uint256 totalCollateralValue = 0;
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for (uint i = 0; i < assetList.length; i++) {
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address asset = assetList[i];
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uint256 collateralAmount = userCollateral[borrower][asset];
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if (collateralAmount > 0) {
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AssetConfig memory assetConfig = assetConfigs[asset];
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uint256 assetPrice = IYTLendingPriceFeed(lendingPriceSource).getPrice(asset);
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uint256 assetScale = 10 ** assetConfig.decimals;
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uint256 collateralValueUSD = (collateralAmount * assetPrice) / assetScale;
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uint256 discountedValue = (collateralAmount * assetPrice * assetConfig.liquidationFactor) / (assetScale * 1e18);
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totalCollateralValue += discountedValue;
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userCollateral[borrower][asset] = 0;
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collateralReserves[asset] += collateralAmount;
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emit AbsorbCollateral(absorber, borrower, asset, collateralAmount, collateralValueUSD);
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}
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}
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uint256 baseScale = 10 ** IERC20Metadata(baseToken).decimals();
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uint256 collateralInBase = (totalCollateralValue * baseScale) / basePrice;
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int256 newBalance = oldBalance + int256(collateralInBase);
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if (newBalance < 0) {
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newBalance = 0;
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}
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int104 newPrincipal = LendingMath.balanceToPrincipal(newBalance, supplyIndex);
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userBasic[borrower].principal = newPrincipal;
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(uint104 repayAmount, uint104 supplyAmount) = LendingMath.repayAndSupplyAmount(oldPrincipal, newPrincipal);
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totalSupplyBase += supplyAmount;
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totalBorrowBase -= repayAmount;
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uint256 basePaidOut = 0;
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if (int256(collateralInBase) < -oldBalance) {
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basePaidOut = uint256(-oldBalance) - collateralInBase;
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}
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uint256 valueOfBasePaidOut = (basePaidOut * basePrice) / baseScale;
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emit AbsorbDebt(absorber, borrower, basePaidOut, valueOfBasePaidOut);
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}
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function absorb(address borrower) external override nonReentrant whenNotPaused {
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accrueInterest();
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_absorbInternal(msg.sender, borrower);
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}
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function absorbMultiple(address absorber, address[] calldata accounts) external override nonReentrant whenNotPaused {
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accrueInterest();
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for (uint i = 0; i < accounts.length; ) {
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_absorbInternal(absorber, accounts[i]);
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unchecked { i++; }
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}
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}
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function buyCollateral(
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address asset,
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uint256 minAmount,
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uint256 baseAmount,
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address recipient
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) external override nonReentrant whenNotPaused {
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if (collateralReserves[asset] == 0) revert InsufficientBalance();
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int256 currentReserves = getReserves();
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if (currentReserves >= 0 && uint256(currentReserves) >= targetReserves) {
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revert NotForSale();
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}
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uint256 collateralAmount = quoteCollateral(asset, baseAmount);
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if (collateralAmount < minAmount) revert InsufficientBalance();
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if (collateralAmount > collateralReserves[asset]) revert InsufficientBalance();
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IERC20(baseToken).transferFrom(msg.sender, address(this), baseAmount);
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collateralReserves[asset] -= collateralAmount;
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IERC20(asset).safeTransfer(recipient, collateralAmount);
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emit BuyCollateral(msg.sender, asset, baseAmount, collateralAmount);
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}
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function quoteCollateral(address asset, uint256 baseAmount) public view override returns (uint256) {
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AssetConfig memory assetConfig = assetConfigs[asset];
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uint256 assetPrice = IYTLendingPriceFeed(lendingPriceSource).getPrice(asset);
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uint256 basePrice = IYTLendingPriceFeed(lendingPriceSource).getPrice(baseToken);
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uint256 FACTOR_SCALE = 1e18;
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uint256 baseScale = 10 ** uint256(IERC20Metadata(baseToken).decimals());
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uint256 assetScale = 10 ** uint256(assetConfig.decimals);
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uint256 discountFactor = (storeFrontPriceFactor * (FACTOR_SCALE - assetConfig.liquidationFactor)) / FACTOR_SCALE;
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uint256 effectiveAssetPrice = (assetPrice * (FACTOR_SCALE - discountFactor)) / FACTOR_SCALE;
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if (baseScale == assetScale) {
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return (baseAmount * basePrice) / effectiveAssetPrice;
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} else {
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uint256 adjustedAmount = (baseAmount * assetScale) / baseScale;
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return (adjustedAmount * basePrice) / effectiveAssetPrice;
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}
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}
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function _isSolvent(address account) internal view returns (bool) {
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int104 principal = userBasic[account].principal;
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if (principal >= 0) return true;
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int256 balance = LendingMath.principalToBalance(principal, borrowIndex);
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uint256 debt = uint256(-balance);
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uint256 basePrice = IYTLendingPriceFeed(lendingPriceSource).getPrice(baseToken);
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uint256 baseDecimals = IERC20Metadata(baseToken).decimals();
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uint256 debtValue = (debt * basePrice) / (10 ** baseDecimals);
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uint256 borrowCapacity = _getCollateralValue(account);
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return borrowCapacity >= debtValue;
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}
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function _getCollateralValue(address account) internal view returns (uint256) {
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uint256 totalValue = 0;
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for (uint i = 0; i < assetList.length; i++) {
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address asset = assetList[i];
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uint256 amount = userCollateral[account][asset];
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if (amount > 0) {
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AssetConfig memory config = assetConfigs[asset];
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uint256 price = IYTLendingPriceFeed(lendingPriceSource).getPrice(asset);
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uint256 value = LendingMath.getCollateralValue(amount, price, config.decimals);
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totalValue += (value * config.borrowCollateralFactor) / 1e18;
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}
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}
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return totalValue;
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}
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function getBalance(address account) external view override returns (int256) {
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int104 principal = userBasic[account].principal;
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return LendingMath.principalToBalance(principal, supplyIndex);
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}
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function supplyBalanceOf(address account) external view override returns (uint256) {
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int104 principal = userBasic[account].principal;
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if (principal <= 0) return 0;
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return uint256(LendingMath.principalToBalance(principal, supplyIndex));
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}
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function borrowBalanceOf(address account) external view override returns (uint256) {
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int104 principal = userBasic[account].principal;
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if (principal >= 0) return 0;
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int256 balance = LendingMath.principalToBalance(principal, borrowIndex);
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return uint256(-balance);
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}
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function getCollateral(address account, address asset) external view override returns (uint256) {
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return userCollateral[account][asset];
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}
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function isLiquidatable(address account) public view override returns (bool) {
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int104 principal = userBasic[account].principal;
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if (principal >= 0) return false;
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int256 balance = LendingMath.principalToBalance(principal, borrowIndex);
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uint256 debt = uint256(-balance);
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uint256 basePrice = IYTLendingPriceFeed(lendingPriceSource).getPrice(baseToken);
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uint256 baseDecimals = IERC20Metadata(baseToken).decimals();
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uint256 debtValue = (debt * basePrice) / (10 ** baseDecimals);
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uint256 collateralValue = 0;
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for (uint i = 0; i < assetList.length; i++) {
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address asset = assetList[i];
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uint256 amount = userCollateral[account][asset];
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if (amount > 0) {
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AssetConfig memory config = assetConfigs[asset];
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uint256 price = IYTLendingPriceFeed(lendingPriceSource).getPrice(asset);
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uint256 value = LendingMath.getCollateralValue(amount, price, config.decimals);
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collateralValue += (value * config.liquidateCollateralFactor) / 1e18;
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}
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}
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return debtValue > collateralValue;
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}
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function getTotalSupply() external view returns (uint256) {
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return (uint256(totalSupplyBase) * supplyIndex) / 1e18;
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}
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function getTotalBorrow() external view returns (uint256) {
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return (uint256(totalBorrowBase) * borrowIndex) / 1e18;
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}
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function getCollateralReserves(address asset) external view override returns (uint256) {
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return collateralReserves[asset];
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}
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function getReserves() public view override returns (int256) {
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uint256 timeElapsed = block.timestamp - lastAccrualTime;
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(uint256 newSupplyIndex, uint256 newBorrowIndex) = accruedInterestIndices(timeElapsed);
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uint256 balance = IERC20(baseToken).balanceOf(address(this));
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uint256 totalSupply = (uint256(totalSupplyBase) * newSupplyIndex) / 1e18;
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uint256 totalBorrow = (uint256(totalBorrowBase) * newBorrowIndex) / 1e18;
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return int256(balance) - int256(totalSupply) + int256(totalBorrow);
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}
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function getUtilization() external view override returns (uint256) {
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uint256 totalSupply = (uint256(totalSupplyBase) * supplyIndex) / 1e18;
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uint256 totalBorrow = (uint256(totalBorrowBase) * borrowIndex) / 1e18;
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return LendingMath.getUtilization(totalSupply, totalBorrow);
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}
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function getSupplyRate() external view override returns (uint64) {
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uint256 totalSupply = (uint256(totalSupplyBase) * supplyIndex) / 1e18;
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uint256 totalBorrow = (uint256(totalBorrowBase) * borrowIndex) / 1e18;
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uint64 utilization = LendingMath.getUtilization(totalSupply, totalBorrow);
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uint64 perSecondRate = LendingMath.getSupplyRate(
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utilization,
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supplyKink,
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supplyPerSecondInterestRateSlopeLow,
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supplyPerSecondInterestRateSlopeHigh,
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supplyPerSecondInterestRateBase
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);
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return perSecondRate * 31536000;
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}
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function getBorrowRate() external view override returns (uint64) {
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uint256 totalSupply = (uint256(totalSupplyBase) * supplyIndex) / 1e18;
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uint256 totalBorrow = (uint256(totalBorrowBase) * borrowIndex) / 1e18;
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uint64 utilization = LendingMath.getUtilization(totalSupply, totalBorrow);
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uint64 perSecondRate = LendingMath.getBorrowRate(
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utilization,
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borrowKink,
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borrowPerSecondInterestRateSlopeLow,
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borrowPerSecondInterestRateSlopeHigh,
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borrowPerSecondInterestRateBase
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);
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return perSecondRate * 31536000;
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}
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function withdrawReserves(address to, uint256 amount) external override onlyOwner nonReentrant {
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int256 currentReserves = getReserves();
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if (currentReserves < 0 || amount > uint256(currentReserves)) {
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revert InsufficientReserves();
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}
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IERC20(baseToken).safeTransfer(to, amount);
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emit WithdrawReserves(to, amount);
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}
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uint256[50] private __gap;
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} |