dsa-governance/deployments/mainnet_1/PayloadIGP12.json
Thrilok kumar aa839168a1 fix
2024-03-14 23:46:32 -04:00

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62 KiB
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{"metadata":"{\"defaultCompiler\":{\"version\":\"0.7.3\"},\"sources\":{\"contracts/payloads/IGP12/PayloadIGP12.sol\":{\"content\":\"pragma solidity >=0.7.0;\\npragma experimental ABIEncoderV2;\\n\\nimport { BigMathMinified } from \\\"./libraries/bigMathMinified.sol\\\";\\nimport { LiquiditySlotsLink } from \\\"./libraries/liquiditySlotsLink.sol\\\";\\n\\ninterface IGovernorBravo {\\n function propose(\\n address[] memory targets,\\n uint[] memory values,\\n string[] memory signatures,\\n bytes[] memory calldatas,\\n string memory description\\n ) external returns (uint);\\n\\n function admin() external view returns (address);\\n\\n function timelock() external view returns (address);\\n\\n function votingDelay() external view returns (uint256);\\n\\n function votingPeriod() external view returns (uint256);\\n}\\n\\ninterface ITimelock {\\n function admin() external view returns (address);\\n}\\n\\ninterface IInstaIndex {\\n function changeMaster(address _newMaster) external;\\n function updateMaster() external;\\n function master() external view returns (address);\\n}\\n\\ninterface AdminModuleStructs {\\n struct AddressBool {\\n address addr;\\n bool value;\\n }\\n\\n struct AddressUint256 {\\n address addr;\\n uint256 value;\\n }\\n\\n struct RateDataV1Params {\\n address token;\\n uint256 kink;\\n uint256 rateAtUtilizationZero;\\n uint256 rateAtUtilizationKink;\\n uint256 rateAtUtilizationMax;\\n }\\n\\n struct RateDataV2Params {\\n address token;\\n uint256 kink1;\\n uint256 kink2;\\n uint256 rateAtUtilizationZero;\\n uint256 rateAtUtilizationKink1;\\n uint256 rateAtUtilizationKink2;\\n uint256 rateAtUtilizationMax;\\n }\\n\\n struct TokenConfig {\\n address token;\\n uint256 fee;\\n uint256 threshold;\\n }\\n\\n struct UserSupplyConfig {\\n address user;\\n address token;\\n uint8 mode;\\n uint256 expandPercent;\\n uint256 expandDuration;\\n uint256 baseWithdrawalLimit;\\n }\\n\\n struct UserBorrowConfig {\\n address user;\\n address token;\\n uint8 mode;\\n uint256 expandPercent;\\n uint256 expandDuration;\\n uint256 baseDebtCeiling;\\n uint256 maxDebtCeiling;\\n }\\n}\\n\\ninterface IFluidLiquidityAdmin {\\n /// @notice adds/removes auths. Auths generally could be contracts which can have restricted actions defined on contract.\\n /// auths can be helpful in reducing governance overhead where it's not needed.\\n /// @param authsStatus_ array of structs setting allowed status for an address.\\n /// status true => add auth, false => remove auth\\n function updateAuths(AdminModuleStructs.AddressBool[] calldata authsStatus_) external;\\n\\n /// @notice adds/removes guardians. Only callable by Governance.\\n /// @param guardiansStatus_ array of structs setting allowed status for an address.\\n /// status true => add guardian, false => remove guardian\\n function updateGuardians(AdminModuleStructs.AddressBool[] calldata guardiansStatus_) external;\\n\\n /// @notice changes the revenue collector address (contract that is sent revenue). Only callable by Governance.\\n /// @param revenueCollector_ new revenue collector address\\n function updateRevenueCollector(address revenueCollector_) external;\\n\\n /// @notice changes current status, e.g. for pausing or unpausing all user operations. Only callable by Auths.\\n /// @param newStatus_ new status\\n /// status = 2 -> pause, status = 1 -> resume.\\n function changeStatus(uint256 newStatus_) external;\\n\\n /// @notice update tokens rate data version 1. Only callable by Auths.\\n /// @param tokensRateData_ array of RateDataV1Params with rate data to set for each token\\n function updateRateDataV1s(AdminModuleStructs.RateDataV1Params[] calldata tokensRateData_) external;\\n\\n /// @notice update tokens rate data version 2. Only callable by Auths.\\n /// @param tokensRateData_ array of RateDataV2Params with rate data to set for each token\\n function updateRateDataV2s(AdminModuleStructs.RateDataV2Params[] calldata tokensRateData_) external;\\n\\n /// @notice updates token configs: fee charge on borrowers interest & storage update utilization threshold.\\n /// Only callable by Auths.\\n /// @param tokenConfigs_ contains token address, fee & utilization threshold\\n function updateTokenConfigs(AdminModuleStructs.TokenConfig[] calldata tokenConfigs_) external;\\n\\n /// @notice updates user classes: 0 is for new protocols, 1 is for established protocols.\\n /// Only callable by Auths.\\n /// @param userClasses_ struct array of uint256 value to assign for each user address\\n function updateUserClasses(AdminModuleStructs.AddressUint256[] calldata userClasses_) external;\\n\\n /// @notice sets user supply configs per token basis. Eg: with interest or interest-free and automated limits.\\n /// Only callable by Auths.\\n /// @param userSupplyConfigs_ struct array containing user supply config, see `UserSupplyConfig` struct for more info\\n function updateUserSupplyConfigs(AdminModuleStructs.UserSupplyConfig[] memory userSupplyConfigs_) external;\\n\\n /// @notice setting user borrow configs per token basis. Eg: with interest or interest-free and automated limits.\\n /// Only callable by Auths.\\n /// @param userBorrowConfigs_ struct array containing user borrow config, see `UserBorrowConfig` struct for more info\\n function updateUserBorrowConfigs(AdminModuleStructs.UserBorrowConfig[] memory userBorrowConfigs_) external;\\n\\n /// @notice pause operations for a particular user in class 0 (class 1 users can't be paused by guardians).\\n /// Only callable by Guardians.\\n /// @param user_ address of user to pause operations for\\n /// @param supplyTokens_ token addresses to pause withdrawals for\\n /// @param borrowTokens_ token addresses to pause borrowings for\\n function pauseUser(address user_, address[] calldata supplyTokens_, address[] calldata borrowTokens_) external;\\n\\n /// @notice unpause operations for a particular user in class 0 (class 1 users can't be paused by guardians).\\n /// Only callable by Guardians.\\n /// @param user_ address of user to unpause operations for\\n /// @param supplyTokens_ token addresses to unpause withdrawals for\\n /// @param borrowTokens_ token addresses to unpause borrowings for\\n function unpauseUser(address user_, address[] calldata supplyTokens_, address[] calldata borrowTokens_) external;\\n\\n /// @notice collects revenue for tokens to configured revenueCollector address.\\n /// @param tokens_ array of tokens to collect revenue for\\n /// @dev Note that this can revert if token balance is < revenueAmount (utilization > 100%)\\n function collectRevenue(address[] calldata tokens_) external;\\n\\n /// @notice gets the current updated exchange prices for n tokens and updates all prices, rates related data in storage.\\n /// @param tokens_ tokens to update exchange prices for\\n /// @return supplyExchangePrices_ new supply rates of overall system for each token\\n /// @return borrowExchangePrices_ new borrow rates of overall system for each token\\n function updateExchangePrices(\\n address[] calldata tokens_\\n ) external returns (uint256[] memory supplyExchangePrices_, uint256[] memory borrowExchangePrices_);\\n\\n function readFromStorage(bytes32 slot_) external view returns (uint256 result_);\\n}\\n\\ninterface IFluidVaultT1Factory {\\n function deployVault(address vaultDeploymentLogic_, bytes calldata vaultDeploymentData_) external returns (address vault_);\\n}\\n\\ninterface IFluidVaultT1DeploymentLogic {\\n function vaultT1(\\n address supplyToken_,\\n address borrowToken_\\n ) external;\\n}\\n\\n\\ninterface IFluidVaultT1 {\\n /// @notice updates the Vault oracle to `newOracle_`. Must implement the FluidOracle interface.\\n function updateOracle(address newOracle_) external;\\n\\n /// @notice updates the all Vault core settings according to input params.\\n /// All input values are expected in 1e2 (1% = 100, 100% = 10_000).\\n function updateCoreSettings(\\n uint256 supplyRateMagnifier_,\\n uint256 borrowRateMagnifier_,\\n uint256 collateralFactor_,\\n uint256 liquidationThreshold_,\\n uint256 liquidationMaxLimit_,\\n uint256 withdrawGap_,\\n uint256 liquidationPenalty_,\\n uint256 borrowFee_\\n ) external;\\n\\n /// @notice updates the allowed rebalancer to `newRebalancer_`.\\n function updateRebalancer(address newRebalancer_) external;\\n\\n /// @notice updates the supply rate magnifier to `supplyRateMagnifier_`. Input in 1e2 (1% = 100, 100% = 10_000).\\n function updateSupplyRateMagnifier(uint supplyRateMagnifier_) external;\\n}\\n\\ncontract PayloadIGP12 {\\n uint256 public constant PROPOSAL_ID = 12;\\n\\n address public constant PROPOSER =\\n 0xA45f7bD6A5Ff45D31aaCE6bCD3d426D9328cea01;\\n\\n address public constant PROPOSER_AVO_MULTISIG =\\n 0x059A94A72951c0ae1cc1CE3BF0dB52421bbE8210;\\n\\n IGovernorBravo public constant GOVERNOR =\\n IGovernorBravo(0x0204Cd037B2ec03605CFdFe482D8e257C765fA1B);\\n ITimelock public constant TIMELOCK =\\n ITimelock(0x2386DC45AdDed673317eF068992F19421B481F4c);\\n\\n address public constant TEAM_MULTISIG = \\n 0x4F6F977aCDD1177DCD81aB83074855EcB9C2D49e;\\n\\n address public immutable ADDRESS_THIS;\\n \\n IFluidLiquidityAdmin public constant LIQUIDITY = IFluidLiquidityAdmin(0x52Aa899454998Be5b000Ad077a46Bbe360F4e497);\\n IFluidVaultT1Factory public constant VAULT_T1_FACTORY = IFluidVaultT1Factory(0x324c5Dc1fC42c7a4D43d92df1eBA58a54d13Bf2d);\\n IFluidVaultT1DeploymentLogic public constant VAULT_T1_DEPLOYMENT_LOGIC = IFluidVaultT1DeploymentLogic(0x15f6F562Ae136240AB9F4905cb50aCA54bCbEb5F);\\n\\n address public constant ETH_ADDRESS = 0xEeeeeEeeeEeEeeEeEeEeeEEEeeeeEeeeeeeeEEeE;\\n address public constant WETH_ADDRESS = 0xC02aaA39b223FE8D0A0e5C4F27eAD9083C756Cc2;\\n address public constant WSTETH_ADDRESS = 0x7f39C581F595B53c5cb19bD0b3f8dA6c935E2Ca0;\\n address public constant USDC_ADDRESS = 0xA0b86991c6218b36c1d19D4a2e9Eb0cE3606eB48;\\n address public constant USDT_ADDRESS = 0xdAC17F958D2ee523a2206206994597C13D831ec7;\\n\\n address public constant VAULT_ETH_USDC = address(0xeAbBfca72F8a8bf14C4ac59e69ECB2eB69F0811C);\\n address public constant VAULT_ETH_USDT = address(0xbEC491FeF7B4f666b270F9D5E5C3f443cBf20991);\\n address public constant VAULT_WSTETH_ETH = address(0xA0F83Fc5885cEBc0420ce7C7b139Adc80c4F4D91);\\n address public constant VAULT_WSTETH_USDC = address(0x51197586F6A9e2571868b6ffaef308f3bdfEd3aE);\\n address public constant VAULT_WSTETH_USDT = address(0x1c2bB46f36561bc4F05A94BD50916496aa501078);\\n address public constant F_USDT = 0x5C20B550819128074FD538Edf79791733ccEdd18;\\n address public constant F_USDC = 0x9Fb7b4477576Fe5B32be4C1843aFB1e55F251B33;\\n address public constant F_WETH = 0x90551c1795392094FE6D29B758EcCD233cFAa260;\\n \\n uint256 internal constant X14 = 0x3fff;\\n uint256 internal constant X18 = 0x3ffff;\\n uint256 internal constant X24 = 0xffffff;\\n uint256 internal constant X64 = 0xffffffffffffffff;\\n\\n uint256 internal constant DEFAULT_EXPONENT_SIZE = 8;\\n uint256 internal constant DEFAULT_EXPONENT_MASK = 0xff;\\n\\n constructor() {\\n ADDRESS_THIS = address(this);\\n }\\n\\n function propose(string memory description) external {\\n require(\\n (\\n msg.sender == PROPOSER || \\n msg.sender == TEAM_MULTISIG\\n ) || \\n address(this) == PROPOSER_AVO_MULTISIG,\\n \\\"msg.sender-not-allowed\\\"\\n );\\n\\n uint256 totalActions = 1;\\n address[] memory targets = new address[](totalActions);\\n uint256[] memory values = new uint256[](totalActions);\\n string[] memory signatures = new string[](totalActions);\\n bytes[] memory calldatas = new bytes[](totalActions);\\n\\n // Action 1: call executePayload on timelock contract to execute payload related to Fluid\\n targets[0] = address(TIMELOCK);\\n values[0] = 0;\\n signatures[0] = \\\"executePayload(address,string,bytes)\\\";\\n calldatas[0] = abi.encode(ADDRESS_THIS, \\\"execute()\\\", abi.encode());\\n\\n uint256 proposedId = GOVERNOR.propose(\\n targets,\\n values,\\n signatures,\\n calldatas,\\n description\\n );\\n\\n require(proposedId == PROPOSAL_ID, \\\"PROPOSAL_IS_NOT_SAME\\\");\\n }\\n\\n function execute() external {\\n require(address(this) == address(TIMELOCK), \\\"not-valid-caller\\\");\\n\\n // Action 1: Update supply expand percent for all the protocols on Liquidity.\\n action1();\\n\\n // Action 2: Update borrow expand percent for all the protocols on Liquidity.\\n action2();\\n\\n // Action 3: Remove config handlers for vaults and lending tokens on liquidity. \\n action3();\\n }\\n\\n function verifyProposal() external view {}\\n\\n /***********************************|\\n | Proposal Payload Actions |\\n |__________________________________*/\\n\\n /// @notice Action 1: Update supply expand percent for all the protocols on Liquidity.\\n function action1() internal {\\n AdminModuleStructs.UserSupplyConfig[] memory configs_ = new AdminModuleStructs.UserSupplyConfig[](8);\\n\\n // Update to 20%\\n configs_[0] = getUserSupplyDataAndSetExpandPercent(USDT_ADDRESS, F_USDT, 20 * 1e2);\\n configs_[1] = getUserSupplyDataAndSetExpandPercent(USDC_ADDRESS, F_USDC, 20 * 1e2);\\n configs_[2] = getUserSupplyDataAndSetExpandPercent(ETH_ADDRESS, F_WETH, 20 * 1e2);\\n\\n // Update to 25%\\n configs_[3] = getUserSupplyDataAndSetExpandPercent(ETH_ADDRESS, VAULT_ETH_USDC, 25 * 1e2);\\n configs_[4] = getUserSupplyDataAndSetExpandPercent(ETH_ADDRESS, VAULT_ETH_USDT, 25 * 1e2);\\n configs_[5] = getUserSupplyDataAndSetExpandPercent(WSTETH_ADDRESS, VAULT_WSTETH_USDC, 25 * 1e2);\\n configs_[6] = getUserSupplyDataAndSetExpandPercent(WSTETH_ADDRESS, VAULT_WSTETH_USDT, 25 * 1e2);\\n configs_[7] = getUserSupplyDataAndSetExpandPercent(WSTETH_ADDRESS, VAULT_WSTETH_ETH, 25 * 1e2);\\n\\n LIQUIDITY.updateUserSupplyConfigs(configs_);\\n }\\n\\n /// @notice Action 2: Update borrow expand percent for all the protocols on Liquidity.\\n function action2() internal {\\n AdminModuleStructs.UserBorrowConfig[] memory configs_ = new AdminModuleStructs.UserBorrowConfig[](5);\\n\\n // Update to 20%\\n configs_[0] = getUserBorrowDataAndSetExpandPercent(USDC_ADDRESS, VAULT_ETH_USDC, 20 * 1e2);\\n configs_[1] = getUserBorrowDataAndSetExpandPercent(USDT_ADDRESS, VAULT_ETH_USDT, 20 * 1e2);\\n configs_[2] = getUserBorrowDataAndSetExpandPercent(USDC_ADDRESS, VAULT_WSTETH_USDC, 20 * 1e2);\\n configs_[3] = getUserBorrowDataAndSetExpandPercent(USDT_ADDRESS, VAULT_WSTETH_USDT, 20 * 1e2);\\n configs_[4] = getUserBorrowDataAndSetExpandPercent(ETH_ADDRESS, VAULT_WSTETH_ETH, 20 * 1e2);\\n\\n LIQUIDITY.updateUserBorrowConfigs(configs_);\\n }\\n\\n /// @notice Action 3: Remove config handlers for vaults and lending tokens on liquidity. \\n function action3() internal {\\n AdminModuleStructs.AddressBool[] memory addrBools_ = new AdminModuleStructs.AddressBool[](8);\\n\\n\\n // fToken_fUSDC_LiquidityConfigHandler\\n addrBools_[0] = AdminModuleStructs.AddressBool({\\n addr: 0x02AfbFA971299c2434E7a04565d9f5a1eD6180F1,\\n value: false\\n });\\n\\n // fToken_fUSDT_LiquidityConfigHandler\\n addrBools_[1] = AdminModuleStructs.AddressBool({\\n addr: 0xF45364EC2230c64B1AB0cE1E4c7E63F0a2078F30,\\n value: false\\n });\\n\\n // fToken_fWETH_LiquidityConfigHandler\\n addrBools_[2] = AdminModuleStructs.AddressBool({\\n addr: 0x580f8C04080347F5675CF67C1E90d935463148dC,\\n value: false\\n });\\n\\n // Vault_ETH_USDC_LiquidityConfigHandler\\n addrBools_[3] = AdminModuleStructs.AddressBool({\\n addr: 0xacdf9C61720A4D97Afa7f215ddDD56C2d1019FC9,\\n value: false\\n });\\n\\n // Vault_ETH_USDT_LiquidityConfigHandler\\n addrBools_[4] = AdminModuleStructs.AddressBool({\\n addr: 0x2274F61847703DBA28300BD7a0Fb3f1166Cb0E7C,\\n value: false\\n });\\n\\n // Vault_wstETH_ETH_LiquidityConfigHandler\\n addrBools_[5] = AdminModuleStructs.AddressBool({\\n addr: 0x28D64d5c85E9a0f0a33A481E71842255aeFf0Fe9,\\n value: false\\n });\\n\\n // Vault_wstETH_USDC_LiquidityConfigHandler\\n addrBools_[6] = AdminModuleStructs.AddressBool({\\n addr: 0xa66906140D5d413E40b1AE452B52DD1f162D47cA,\\n value: false\\n });\\n\\n // Vault_wstETH_USDT_LiquidityConfigHandler\\n addrBools_[7] = AdminModuleStructs.AddressBool({\\n addr: 0xB7AE8D080c7C26152e43DD6e8dcA7451BB33Be68,\\n value: false\\n });\\n\\n LIQUIDITY.updateAuths(addrBools_);\\n }\\n\\n\\n /***********************************|\\n | Proposal Payload Helpers |\\n |__________________________________*/\\n\\n function getUserSupplyDataAndSetExpandPercent(\\n address token_,\\n address user_,\\n uint256 expandPercent_\\n ) internal view returns(AdminModuleStructs.UserSupplyConfig memory config_){\\n bytes32 _LIQUDITY_PROTOCOL_SUPPLY_SLOT = LiquiditySlotsLink.calculateDoubleMappingStorageSlot(\\n LiquiditySlotsLink.LIQUIDITY_USER_SUPPLY_DOUBLE_MAPPING_SLOT,\\n user_,\\n token_\\n );\\n\\n uint256 userSupplyData_ = LIQUIDITY.readFromStorage(_LIQUDITY_PROTOCOL_SUPPLY_SLOT); \\n\\n config_ = AdminModuleStructs.UserSupplyConfig({\\n user: user_,\\n token: token_,\\n mode: uint8(userSupplyData_ & 1),\\n expandPercent: expandPercent_,\\n expandDuration: (userSupplyData_ >> LiquiditySlotsLink.BITS_USER_SUPPLY_EXPAND_DURATION) & X24,\\n baseWithdrawalLimit: BigMathMinified.fromBigNumber(\\n (userSupplyData_ >> LiquiditySlotsLink.BITS_USER_SUPPLY_BASE_WITHDRAWAL_LIMIT) & X18,\\n DEFAULT_EXPONENT_SIZE,\\n DEFAULT_EXPONENT_MASK\\n )\\n });\\n }\\n\\n function getUserBorrowDataAndSetExpandPercent(\\n address token_,\\n address user_,\\n uint256 expandPercent_\\n ) internal view returns(AdminModuleStructs.UserBorrowConfig memory config_) {\\n bytes32 _LIQUDITY_PROTOCOL_BORROW_SLOT = LiquiditySlotsLink.calculateDoubleMappingStorageSlot(\\n LiquiditySlotsLink.LIQUIDITY_USER_BORROW_DOUBLE_MAPPING_SLOT,\\n user_,\\n token_\\n );\\n\\n uint256 userBorrowData_ = LIQUIDITY.readFromStorage(_LIQUDITY_PROTOCOL_BORROW_SLOT);\\n\\n config_ = AdminModuleStructs.UserBorrowConfig({\\n user: user_,\\n token: token_,\\n mode: uint8(userBorrowData_ & 1),\\n expandPercent: expandPercent_,\\n expandDuration: (userBorrowData_ >> LiquiditySlotsLink.BITS_USER_BORROW_EXPAND_DURATION) & X24,\\n baseDebtCeiling: BigMathMinified.fromBigNumber(\\n (userBorrowData_ >> LiquiditySlotsLink.BITS_USER_BORROW_BASE_BORROW_LIMIT) & X18,\\n DEFAULT_EXPONENT_SIZE,\\n DEFAULT_EXPONENT_MASK\\n ),\\n maxDebtCeiling: BigMathMinified.fromBigNumber(\\n (userBorrowData_ >> LiquiditySlotsLink.BITS_USER_BORROW_MAX_BORROW_LIMIT) & X18,\\n DEFAULT_EXPONENT_SIZE,\\n DEFAULT_EXPONENT_MASK\\n )\\n });\\n }\\n}\\n\",\"versionPragma\":\">=0.7.0\"},\"contracts/payloads/IGP12/libraries/bigMathMinified.sol\":{\"content\":\"// SPDX-License-Identifier: BUSL-1.1\\npragma solidity 0.8.21;\\n\\n/// @title library that represents a number in BigNumber(coefficient and exponent) format to store in smaller bits.\\n/// @notice the number is divided into two parts: a coefficient and an exponent. This comes at a cost of losing some precision\\n/// at the end of the number because the exponent simply fills it with zeroes. This precision is oftentimes negligible and can\\n/// result in significant gas cost reduction due to storage space reduction.\\n/// Also note, a valid big number is as follows: if the exponent is > 0, then coefficient last bits should be occupied to have max precision.\\n/// @dev roundUp is more like a increase 1, which happens everytime for the same number.\\n/// roundDown simply sets trailing digits after coefficientSize to zero (floor), only once for the same number.\\nlibrary BigMathMinified {\\n /// @dev constants to use for `roundUp` input param to increase readability\\n bool internal constant ROUND_DOWN = false;\\n bool internal constant ROUND_UP = true;\\n\\n /// @dev converts `normal` number to BigNumber with `exponent` and `coefficient` (or precision).\\n /// e.g.:\\n /// 5035703444687813576399599 (normal) = (coefficient[32bits], exponent[8bits])[40bits]\\n /// 5035703444687813576399599 (decimal) => 10000101010010110100000011111011110010100110100000000011100101001101001101011101111 (binary)\\n /// => 10000101010010110100000011111011000000000000000000000000000000000000000000000000000\\n /// ^-------------------- 51(exponent) -------------- ^\\n /// coefficient = 1000,0101,0100,1011,0100,0000,1111,1011 (2236301563)\\n /// exponent = 0011,0011 (51)\\n /// bigNumber = 1000,0101,0100,1011,0100,0000,1111,1011,0011,0011 (572493200179)\\n ///\\n /// @param normal number which needs to be converted into Big Number\\n /// @param coefficientSize at max how many bits of precision there should be (64 = uint64 (64 bits precision))\\n /// @param exponentSize at max how many bits of exponent there should be (8 = uint8 (8 bits exponent))\\n /// @param roundUp signals if result should be rounded down or up\\n /// @return bigNumber converted bigNumber (coefficient << exponent)\\n function toBigNumber(\\n uint256 normal,\\n uint256 coefficientSize,\\n uint256 exponentSize,\\n bool roundUp\\n ) internal pure returns (uint256 bigNumber) {\\n assembly {\\n let lastBit_\\n let number_ := normal\\n if gt(number_, 0xFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFF) {\\n number_ := shr(0x80, number_)\\n lastBit_ := 0x80\\n }\\n if gt(number_, 0xFFFFFFFFFFFFFFFF) {\\n number_ := shr(0x40, number_)\\n lastBit_ := add(lastBit_, 0x40)\\n }\\n if gt(number_, 0xFFFFFFFF) {\\n number_ := shr(0x20, number_)\\n lastBit_ := add(lastBit_, 0x20)\\n }\\n if gt(number_, 0xFFFF) {\\n number_ := shr(0x10, number_)\\n lastBit_ := add(lastBit_, 0x10)\\n }\\n if gt(number_, 0xFF) {\\n number_ := shr(0x8, number_)\\n lastBit_ := add(lastBit_, 0x8)\\n }\\n if gt(number_, 0xF) {\\n number_ := shr(0x4, number_)\\n lastBit_ := add(lastBit_, 0x4)\\n }\\n if gt(number_, 0x3) {\\n number_ := shr(0x2, number_)\\n lastBit_ := add(lastBit_, 0x2)\\n }\\n if gt(number_, 0x1) {\\n lastBit_ := add(lastBit_, 1)\\n }\\n if gt(number_, 0) {\\n lastBit_ := add(lastBit_, 1)\\n }\\n if lt(lastBit_, coefficientSize) {\\n // for throw exception\\n lastBit_ := coefficientSize\\n }\\n let exponent := sub(lastBit_, coefficientSize)\\n let coefficient := shr(exponent, normal)\\n if and(roundUp, gt(exponent, 0)) {\\n // rounding up is only needed if exponent is > 0, as otherwise the coefficient fully holds the original number\\n coefficient := add(coefficient, 1)\\n if eq(shl(coefficientSize, 1), coefficient) {\\n // case were coefficient was e.g. 111, with adding 1 it became 1000 (in binary) and coefficientSize 3 bits\\n // final coefficient would exceed it's size. -> reduce coefficent to 100 and increase exponent by 1.\\n coefficient := shl(sub(coefficientSize, 1), 1)\\n exponent := add(exponent, 1)\\n }\\n }\\n if iszero(lt(exponent, shl(exponentSize, 1))) {\\n // if exponent is >= exponentSize, the normal number is too big to fit within\\n // BigNumber with too small sizes for coefficient and exponent\\n revert(0, 0)\\n }\\n bigNumber := shl(exponentSize, coefficient)\\n bigNumber := add(bigNumber, exponent)\\n }\\n }\\n\\n /// @dev get `normal` number from `bigNumber`, `exponentSize` and `exponentMask`\\n function fromBigNumber(\\n uint256 bigNumber,\\n uint256 exponentSize,\\n uint256 exponentMask\\n ) internal pure returns (uint256 normal) {\\n assembly {\\n let coefficient := shr(exponentSize, bigNumber)\\n let exponent := and(bigNumber, exponentMask)\\n normal := shl(exponent, coefficient)\\n }\\n }\\n\\n /// @dev gets the most significant bit `lastBit` of a `normal` number (length of given number of binary format).\\n /// e.g.\\n /// 5035703444687813576399599 = 10000101010010110100000011111011110010100110100000000011100101001101001101011101111\\n /// lastBit = ^--------------------------------- 83 ----------------------------------------^\\n function mostSignificantBit(uint256 normal) internal pure returns (uint lastBit) {\\n assembly {\\n let number_ := normal\\n if gt(normal, 0xFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFF) {\\n number_ := shr(0x80, number_)\\n lastBit := 0x80\\n }\\n if gt(number_, 0xFFFFFFFFFFFFFFFF) {\\n number_ := shr(0x40, number_)\\n lastBit := add(lastBit, 0x40)\\n }\\n if gt(number_, 0xFFFFFFFF) {\\n number_ := shr(0x20, number_)\\n lastBit := add(lastBit, 0x20)\\n }\\n if gt(number_, 0xFFFF) {\\n number_ := shr(0x10, number_)\\n lastBit := add(lastBit, 0x10)\\n }\\n if gt(number_, 0xFF) {\\n number_ := shr(0x8, number_)\\n lastBit := add(lastBit, 0x8)\\n }\\n if gt(number_, 0xF) {\\n number_ := shr(0x4, number_)\\n lastBit := add(lastBit, 0x4)\\n }\\n if gt(number_, 0x3) {\\n number_ := shr(0x2, number_)\\n lastBit := add(lastBit, 0x2)\\n }\\n if gt(number_, 0x1) {\\n lastBit := add(lastBit, 1)\\n }\\n if gt(number_, 0) {\\n lastBit := add(lastBit, 1)\\n }\\n }\\n }\\n}\",\"versionPragma\":\"0.8.21\"},\"contracts/payloads/IGP12/libraries/liquiditySlotsLink.sol\":{\"content\":\"// SPDX-License-Identifier: BUSL-1.1\\npragma solidity 0.8.21;\\n\\n/// @notice library that helps in reading / working with storage slot data of Fluid Liquidity.\\n/// @dev as all data for Fluid Liquidity is internal, any data must be fetched directly through manual\\n/// slot reading through this library or, if gas usage is less important, through the FluidLiquidityResolver.\\nlibrary LiquiditySlotsLink {\\n /// @dev storage slot for status at Liquidity\\n uint256 internal constant LIQUIDITY_STATUS_SLOT = 1;\\n /// @dev storage slot for auths mapping at Liquidity\\n uint256 internal constant LIQUIDITY_AUTHS_MAPPING_SLOT = 2;\\n /// @dev storage slot for guardians mapping at Liquidity\\n uint256 internal constant LIQUIDITY_GUARDIANS_MAPPING_SLOT = 3;\\n /// @dev storage slot for user class mapping at Liquidity\\n uint256 internal constant LIQUIDITY_USER_CLASS_MAPPING_SLOT = 4;\\n /// @dev storage slot for exchangePricesAndConfig mapping at Liquidity\\n uint256 internal constant LIQUIDITY_EXCHANGE_PRICES_MAPPING_SLOT = 5;\\n /// @dev storage slot for rateData mapping at Liquidity\\n uint256 internal constant LIQUIDITY_RATE_DATA_MAPPING_SLOT = 6;\\n /// @dev storage slot for totalAmounts mapping at Liquidity\\n uint256 internal constant LIQUIDITY_TOTAL_AMOUNTS_MAPPING_SLOT = 7;\\n /// @dev storage slot for user supply double mapping at Liquidity\\n uint256 internal constant LIQUIDITY_USER_SUPPLY_DOUBLE_MAPPING_SLOT = 8;\\n /// @dev storage slot for user borrow double mapping at Liquidity\\n uint256 internal constant LIQUIDITY_USER_BORROW_DOUBLE_MAPPING_SLOT = 9;\\n /// @dev storage slot for listed tokens array at Liquidity\\n uint256 internal constant LIQUIDITY_LISTED_TOKENS_ARRAY_SLOT = 10;\\n\\n // --------------------------------\\n // @dev stacked uint256 storage slots bits position data for each:\\n\\n // ExchangePricesAndConfig\\n uint256 internal constant BITS_EXCHANGE_PRICES_BORROW_RATE = 0;\\n uint256 internal constant BITS_EXCHANGE_PRICES_FEE = 16;\\n uint256 internal constant BITS_EXCHANGE_PRICES_UTILIZATION = 30;\\n uint256 internal constant BITS_EXCHANGE_PRICES_UPDATE_THRESHOLD = 44;\\n uint256 internal constant BITS_EXCHANGE_PRICES_LAST_TIMESTAMP = 58;\\n uint256 internal constant BITS_EXCHANGE_PRICES_SUPPLY_EXCHANGE_PRICE = 91;\\n uint256 internal constant BITS_EXCHANGE_PRICES_BORROW_EXCHANGE_PRICE = 155;\\n uint256 internal constant BITS_EXCHANGE_PRICES_SUPPLY_RATIO = 219;\\n uint256 internal constant BITS_EXCHANGE_PRICES_BORROW_RATIO = 234;\\n\\n // RateData:\\n uint256 internal constant BITS_RATE_DATA_VERSION = 0;\\n // RateData: V1\\n uint256 internal constant BITS_RATE_DATA_V1_RATE_AT_UTILIZATION_ZERO = 4;\\n uint256 internal constant BITS_RATE_DATA_V1_UTILIZATION_AT_KINK = 20;\\n uint256 internal constant BITS_RATE_DATA_V1_RATE_AT_UTILIZATION_KINK = 36;\\n uint256 internal constant BITS_RATE_DATA_V1_RATE_AT_UTILIZATION_MAX = 52;\\n // RateData: V2\\n uint256 internal constant BITS_RATE_DATA_V2_RATE_AT_UTILIZATION_ZERO = 4;\\n uint256 internal constant BITS_RATE_DATA_V2_UTILIZATION_AT_KINK1 = 20;\\n uint256 internal constant BITS_RATE_DATA_V2_RATE_AT_UTILIZATION_KINK1 = 36;\\n uint256 internal constant BITS_RATE_DATA_V2_UTILIZATION_AT_KINK2 = 52;\\n uint256 internal constant BITS_RATE_DATA_V2_RATE_AT_UTILIZATION_KINK2 = 68;\\n uint256 internal constant BITS_RATE_DATA_V2_RATE_AT_UTILIZATION_MAX = 84;\\n\\n // TotalAmounts\\n uint256 internal constant BITS_TOTAL_AMOUNTS_SUPPLY_WITH_INTEREST = 0;\\n uint256 internal constant BITS_TOTAL_AMOUNTS_SUPPLY_INTEREST_FREE = 64;\\n uint256 internal constant BITS_TOTAL_AMOUNTS_BORROW_WITH_INTEREST = 128;\\n uint256 internal constant BITS_TOTAL_AMOUNTS_BORROW_INTEREST_FREE = 192;\\n\\n // UserSupplyData\\n uint256 internal constant BITS_USER_SUPPLY_MODE = 0;\\n uint256 internal constant BITS_USER_SUPPLY_AMOUNT = 1;\\n uint256 internal constant BITS_USER_SUPPLY_PREVIOUS_WITHDRAWAL_LIMIT = 65;\\n uint256 internal constant BITS_USER_SUPPLY_LAST_UPDATE_TIMESTAMP = 129;\\n uint256 internal constant BITS_USER_SUPPLY_EXPAND_PERCENT = 162;\\n uint256 internal constant BITS_USER_SUPPLY_EXPAND_DURATION = 176;\\n uint256 internal constant BITS_USER_SUPPLY_BASE_WITHDRAWAL_LIMIT = 200;\\n uint256 internal constant BITS_USER_SUPPLY_IS_PAUSED = 255;\\n\\n // UserBorrowData\\n uint256 internal constant BITS_USER_BORROW_MODE = 0;\\n uint256 internal constant BITS_USER_BORROW_AMOUNT = 1;\\n uint256 internal constant BITS_USER_BORROW_PREVIOUS_BORROW_LIMIT = 65;\\n uint256 internal constant BITS_USER_BORROW_LAST_UPDATE_TIMESTAMP = 129;\\n uint256 internal constant BITS_USER_BORROW_EXPAND_PERCENT = 162;\\n uint256 internal constant BITS_USER_BORROW_EXPAND_DURATION = 176;\\n uint256 internal constant BITS_USER_BORROW_BASE_BORROW_LIMIT = 200;\\n uint256 internal constant BITS_USER_BORROW_MAX_BORROW_LIMIT = 218;\\n uint256 internal constant BITS_USER_BORROW_IS_PAUSED = 255;\\n\\n // --------------------------------\\n\\n /// @notice Calculating the slot ID for Liquidity contract for single mapping at `slot_` for `key_`\\n function calculateMappingStorageSlot(uint256 slot_, address key_) internal pure returns (bytes32) {\\n return keccak256(abi.encode(key_, slot_));\\n }\\n\\n /// @notice Calculating the slot ID for Liquidity contract for double mapping at `slot_` for `key1_` and `key2_`\\n function calculateDoubleMappingStorageSlot(\\n uint256 slot_,\\n address key1_,\\n address key2_\\n ) internal pure returns (bytes32) {\\n bytes32 intermediateSlot_ = keccak256(abi.encode(key1_, slot_));\\n return keccak256(abi.encode(key2_, intermediateSlot_));\\n 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