Address Contract Partially Verified
Address
0xcAa8ABB72A75C623BECe1f4D5c218F425d47A0D0
Balance
0 ETH
Nonce
1
Code Size
24062 bytes
Creator
0x1A6fCc85...2D52 at tx 0xfa253a76...e8824e
Indexed Transactions
0
Contract Bytecode
24062 bytes
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
Verified Source Code Partial Match
Compiler: v0.8.23+commit.f704f362
EVM: paris
Optimization: Yes (11000 runs)
Address.sol 244 lines
// SPDX-License-Identifier: MIT
// OpenZeppelin Contracts (last updated v4.9.0) (utils/Address.sol)
pragma solidity ^0.8.1;
/**
* @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
*
* Furthermore, `isContract` will also return true if the target contract within
* the same transaction is already scheduled for destruction by `SELFDESTRUCT`,
* which only has an effect at the end of a transaction.
* ====
*
* [IMPORTANT]
* ====
* You shouldn't rely on `isContract` to protect against flash loan attacks!
*
* Preventing calls from contracts is highly discouraged. It breaks composability, breaks support for smart wallets
* like Gnosis Safe, and does not provide security since it can be circumvented by calling from a contract
* constructor.
* ====
*/
function isContract(address account) internal view returns (bool) {
// This method relies on extcodesize/address.code.length, which returns 0
// for contracts in construction, since the code is only stored at the end
// of the constructor execution.
return account.code.length > 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://consensys.net/diligence/blog/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/v0.8.0/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 functionCallWithValue(target, data, 0, "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");
(bool success, bytes memory returndata) = target.call{value: value}(data);
return verifyCallResultFromTarget(target, 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) {
(bool success, bytes memory returndata) = target.staticcall(data);
return verifyCallResultFromTarget(target, 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) {
(bool success, bytes memory returndata) = target.delegatecall(data);
return verifyCallResultFromTarget(target, success, returndata, errorMessage);
}
/**
* @dev Tool to verify that a low level call to smart-contract was successful, and revert (either by bubbling
* the revert reason or using the provided one) in case of unsuccessful call or if target was not a contract.
*
* _Available since v4.8._
*/
function verifyCallResultFromTarget(
address target,
bool success,
bytes memory returndata,
string memory errorMessage
) internal view returns (bytes memory) {
if (success) {
if (returndata.length == 0) {
// only check isContract if the call was successful and the return data is empty
// otherwise we already know that it was a contract
require(isContract(target), "Address: call to non-contract");
}
return returndata;
} else {
_revert(returndata, errorMessage);
}
}
/**
* @dev Tool to verify that a low level call was successful, and revert if it wasn't, either by bubbling the
* revert reason or 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 {
_revert(returndata, errorMessage);
}
}
function _revert(bytes memory returndata, string memory errorMessage) private pure {
// 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
/// @solidity memory-safe-assembly
assembly {
let returndata_size := mload(returndata)
revert(add(32, returndata), returndata_size)
}
} else {
revert(errorMessage);
}
}
}
Context.sol 24 lines
// 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;
}
}
Strings.sol 85 lines
// SPDX-License-Identifier: MIT
// OpenZeppelin Contracts (last updated v4.9.0) (utils/Strings.sol)
pragma solidity ^0.8.0;
import "./math/Math.sol";
import "./math/SignedMath.sol";
/**
* @dev String operations.
*/
library Strings {
bytes16 private constant _SYMBOLS = "0123456789abcdef";
uint8 private constant _ADDRESS_LENGTH = 20;
/**
* @dev Converts a `uint256` to its ASCII `string` decimal representation.
*/
function toString(uint256 value) internal pure returns (string memory) {
unchecked {
uint256 length = Math.log10(value) + 1;
string memory buffer = new string(length);
uint256 ptr;
/// @solidity memory-safe-assembly
assembly {
ptr := add(buffer, add(32, length))
}
while (true) {
ptr--;
/// @solidity memory-safe-assembly
assembly {
mstore8(ptr, byte(mod(value, 10), _SYMBOLS))
}
value /= 10;
if (value == 0) break;
}
return buffer;
}
}
/**
* @dev Converts a `int256` to its ASCII `string` decimal representation.
*/
function toString(int256 value) internal pure returns (string memory) {
return string(abi.encodePacked(value < 0 ? "-" : "", toString(SignedMath.abs(value))));
}
/**
* @dev Converts a `uint256` to its ASCII `string` hexadecimal representation.
*/
function toHexString(uint256 value) internal pure returns (string memory) {
unchecked {
return toHexString(value, Math.log256(value) + 1);
}
}
/**
* @dev Converts a `uint256` to its ASCII `string` hexadecimal representation with fixed length.
*/
function toHexString(uint256 value, uint256 length) internal pure returns (string memory) {
bytes memory buffer = new bytes(2 * length + 2);
buffer[0] = "0";
buffer[1] = "x";
for (uint256 i = 2 * length + 1; i > 1; --i) {
buffer[i] = _SYMBOLS[value & 0xf];
value >>= 4;
}
require(value == 0, "Strings: hex length insufficient");
return string(buffer);
}
/**
* @dev Converts an `address` with fixed length of 20 bytes to its not checksummed ASCII `string` hexadecimal representation.
*/
function toHexString(address addr) internal pure returns (string memory) {
return toHexString(uint256(uint160(addr)), _ADDRESS_LENGTH);
}
/**
* @dev Returns true if the two strings are equal.
*/
function equal(string memory a, string memory b) internal pure returns (bool) {
return keccak256(bytes(a)) == keccak256(bytes(b));
}
}
Counters.sol 43 lines
// SPDX-License-Identifier: MIT
// OpenZeppelin Contracts v4.4.1 (utils/Counters.sol)
pragma solidity ^0.8.0;
/**
* @title Counters
* @author Matt Condon (@shrugs)
* @dev Provides counters that can only be incremented, decremented or reset. This can be used e.g. to track the number
* of elements in a mapping, issuing ERC721 ids, or counting request ids.
*
* Include with `using Counters for Counters.Counter;`
*/
library Counters {
struct Counter {
// This variable should never be directly accessed by users of the library: interactions must be restricted to
// the library's function. As of Solidity v0.5.2, this cannot be enforced, though there is a proposal to add
// this feature: see https://github.com/ethereum/solidity/issues/4637
uint256 _value; // default: 0
}
function current(Counter storage counter) internal view returns (uint256) {
return counter._value;
}
function increment(Counter storage counter) internal {
unchecked {
counter._value += 1;
}
}
function decrement(Counter storage counter) internal {
uint256 value = counter._value;
require(value > 0, "Counter: decrement overflow");
unchecked {
counter._value = value - 1;
}
}
function reset(Counter storage counter) internal {
counter._value = 0;
}
}
Math.sol 339 lines
// SPDX-License-Identifier: MIT
// OpenZeppelin Contracts (last updated v4.9.0) (utils/math/Math.sol)
pragma solidity ^0.8.0;
/**
* @dev Standard math utilities missing in the Solidity language.
*/
library Math {
enum Rounding {
Down, // Toward negative infinity
Up, // Toward infinity
Zero // Toward zero
}
/**
* @dev Returns the largest of two numbers.
*/
function max(uint256 a, uint256 b) internal pure returns (uint256) {
return a > b ? a : b;
}
/**
* @dev Returns the smallest of two numbers.
*/
function min(uint256 a, uint256 b) internal pure returns (uint256) {
return a < b ? 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.
return (a & b) + (a ^ b) / 2;
}
/**
* @dev Returns the ceiling of the division of two numbers.
*
* This differs from standard division with `/` in that it rounds up instead
* of rounding down.
*/
function ceilDiv(uint256 a, uint256 b) internal pure returns (uint256) {
// (a + b - 1) / b can overflow on addition, so we distribute.
return a == 0 ? 0 : (a - 1) / b + 1;
}
/**
* @notice Calculates floor(x * y / denominator) with full precision. Throws if result overflows a uint256 or denominator == 0
* @dev Original credit to Remco Bloemen under MIT license (https://xn--2-umb.com/21/muldiv)
* with further edits by Uniswap Labs also under MIT license.
*/
function mulDiv(uint256 x, uint256 y, uint256 denominator) internal pure returns (uint256 result) {
unchecked {
// 512-bit multiply [prod1 prod0] = x * y. Compute the product mod 2^256 and mod 2^256 - 1, then use
// use the Chinese Remainder Theorem to reconstruct the 512 bit result. The result is stored in two 256
// variables such that product = prod1 * 2^256 + prod0.
uint256 prod0; // Least significant 256 bits of the product
uint256 prod1; // Most significant 256 bits of the product
assembly {
let mm := mulmod(x, y, not(0))
prod0 := mul(x, y)
prod1 := sub(sub(mm, prod0), lt(mm, prod0))
}
// Handle non-overflow cases, 256 by 256 division.
if (prod1 == 0) {
// Solidity will revert if denominator == 0, unlike the div opcode on its own.
// The surrounding unchecked block does not change this fact.
// See https://docs.soliditylang.org/en/latest/control-structures.html#checked-or-unchecked-arithmetic.
return prod0 / denominator;
}
// Make sure the result is less than 2^256. Also prevents denominator == 0.
require(denominator > prod1, "Math: mulDiv overflow");
///////////////////////////////////////////////
// 512 by 256 division.
///////////////////////////////////////////////
// Make division exact by subtracting the remainder from [prod1 prod0].
uint256 remainder;
assembly {
// Compute remainder using mulmod.
remainder := mulmod(x, y, denominator)
// Subtract 256 bit number from 512 bit number.
prod1 := sub(prod1, gt(remainder, prod0))
prod0 := sub(prod0, remainder)
}
// Factor powers of two out of denominator and compute largest power of two divisor of denominator. Always >= 1.
// See https://cs.stackexchange.com/q/138556/92363.
// Does not overflow because the denominator cannot be zero at this stage in the function.
uint256 twos = denominator & (~denominator + 1);
assembly {
// Divide denominator by twos.
denominator := div(denominator, twos)
// Divide [prod1 prod0] by twos.
prod0 := div(prod0, twos)
// Flip twos such that it is 2^256 / twos. If twos is zero, then it becomes one.
twos := add(div(sub(0, twos), twos), 1)
}
// Shift in bits from prod1 into prod0.
prod0 |= prod1 * twos;
// Invert denominator mod 2^256. Now that denominator is an odd number, it has an inverse modulo 2^256 such
// that denominator * inv = 1 mod 2^256. Compute the inverse by starting with a seed that is correct for
// four bits. That is, denominator * inv = 1 mod 2^4.
uint256 inverse = (3 * denominator) ^ 2;
// Use the Newton-Raphson iteration to improve the precision. Thanks to Hensel's lifting lemma, this also works
// in modular arithmetic, doubling the correct bits in each step.
inverse *= 2 - denominator * inverse; // inverse mod 2^8
inverse *= 2 - denominator * inverse; // inverse mod 2^16
inverse *= 2 - denominator * inverse; // inverse mod 2^32
inverse *= 2 - denominator * inverse; // inverse mod 2^64
inverse *= 2 - denominator * inverse; // inverse mod 2^128
inverse *= 2 - denominator * inverse; // inverse mod 2^256
// Because the division is now exact we can divide by multiplying with the modular inverse of denominator.
// This will give us the correct result modulo 2^256. Since the preconditions guarantee that the outcome is
// less than 2^256, this is the final result. We don't need to compute the high bits of the result and prod1
// is no longer required.
result = prod0 * inverse;
return result;
}
}
/**
* @notice Calculates x * y / denominator with full precision, following the selected rounding direction.
*/
function mulDiv(uint256 x, uint256 y, uint256 denominator, Rounding rounding) internal pure returns (uint256) {
uint256 result = mulDiv(x, y, denominator);
if (rounding == Rounding.Up && mulmod(x, y, denominator) > 0) {
result += 1;
}
return result;
}
/**
* @dev Returns the square root of a number. If the number is not a perfect square, the value is rounded down.
*
* Inspired by Henry S. Warren, Jr.'s "Hacker's Delight" (Chapter 11).
*/
function sqrt(uint256 a) internal pure returns (uint256) {
if (a == 0) {
return 0;
}
// For our first guess, we get the biggest power of 2 which is smaller than the square root of the target.
//
// We know that the "msb" (most significant bit) of our target number `a` is a power of 2 such that we have
// `msb(a) <= a < 2*msb(a)`. This value can be written `msb(a)=2**k` with `k=log2(a)`.
//
// This can be rewritten `2**log2(a) <= a < 2**(log2(a) + 1)`
// → `sqrt(2**k) <= sqrt(a) < sqrt(2**(k+1))`
// → `2**(k/2) <= sqrt(a) < 2**((k+1)/2) <= 2**(k/2 + 1)`
//
// Consequently, `2**(log2(a) / 2)` is a good first approximation of `sqrt(a)` with at least 1 correct bit.
uint256 result = 1 << (log2(a) >> 1);
// At this point `result` is an estimation with one bit of precision. We know the true value is a uint128,
// since it is the square root of a uint256. Newton's method converges quadratically (precision doubles at
// every iteration). We thus need at most 7 iteration to turn our partial result with one bit of precision
// into the expected uint128 result.
unchecked {
result = (result + a / result) >> 1;
result = (result + a / result) >> 1;
result = (result + a / result) >> 1;
result = (result + a / result) >> 1;
result = (result + a / result) >> 1;
result = (result + a / result) >> 1;
result = (result + a / result) >> 1;
return min(result, a / result);
}
}
/**
* @notice Calculates sqrt(a), following the selected rounding direction.
*/
function sqrt(uint256 a, Rounding rounding) internal pure returns (uint256) {
unchecked {
uint256 result = sqrt(a);
return result + (rounding == Rounding.Up && result * result < a ? 1 : 0);
}
}
/**
* @dev Return the log in base 2, rounded down, of a positive value.
* Returns 0 if given 0.
*/
function log2(uint256 value) internal pure returns (uint256) {
uint256 result = 0;
unchecked {
if (value >> 128 > 0) {
value >>= 128;
result += 128;
}
if (value >> 64 > 0) {
value >>= 64;
result += 64;
}
if (value >> 32 > 0) {
value >>= 32;
result += 32;
}
if (value >> 16 > 0) {
value >>= 16;
result += 16;
}
if (value >> 8 > 0) {
value >>= 8;
result += 8;
}
if (value >> 4 > 0) {
value >>= 4;
result += 4;
}
if (value >> 2 > 0) {
value >>= 2;
result += 2;
}
if (value >> 1 > 0) {
result += 1;
}
}
return result;
}
/**
* @dev Return the log in base 2, following the selected rounding direction, of a positive value.
* Returns 0 if given 0.
*/
function log2(uint256 value, Rounding rounding) internal pure returns (uint256) {
unchecked {
uint256 result = log2(value);
return result + (rounding == Rounding.Up && 1 << result < value ? 1 : 0);
}
}
/**
* @dev Return the log in base 10, rounded down, of a positive value.
* Returns 0 if given 0.
*/
function log10(uint256 value) internal pure returns (uint256) {
uint256 result = 0;
unchecked {
if (value >= 10 ** 64) {
value /= 10 ** 64;
result += 64;
}
if (value >= 10 ** 32) {
value /= 10 ** 32;
result += 32;
}
if (value >= 10 ** 16) {
value /= 10 ** 16;
result += 16;
}
if (value >= 10 ** 8) {
value /= 10 ** 8;
result += 8;
}
if (value >= 10 ** 4) {
value /= 10 ** 4;
result += 4;
}
if (value >= 10 ** 2) {
value /= 10 ** 2;
result += 2;
}
if (value >= 10 ** 1) {
result += 1;
}
}
return result;
}
/**
* @dev Return the log in base 10, following the selected rounding direction, of a positive value.
* Returns 0 if given 0.
*/
function log10(uint256 value, Rounding rounding) internal pure returns (uint256) {
unchecked {
uint256 result = log10(value);
return result + (rounding == Rounding.Up && 10 ** result < value ? 1 : 0);
}
}
/**
* @dev Return the log in base 256, rounded down, of a positive value.
* Returns 0 if given 0.
*
* Adding one to the result gives the number of pairs of hex symbols needed to represent `value` as a hex string.
*/
function log256(uint256 value) internal pure returns (uint256) {
uint256 result = 0;
unchecked {
if (value >> 128 > 0) {
value >>= 128;
result += 16;
}
if (value >> 64 > 0) {
value >>= 64;
result += 8;
}
if (value >> 32 > 0) {
value >>= 32;
result += 4;
}
if (value >> 16 > 0) {
value >>= 16;
result += 2;
}
if (value >> 8 > 0) {
result += 1;
}
}
return result;
}
/**
* @dev Return the log in base 256, following the selected rounding direction, of a positive value.
* Returns 0 if given 0.
*/
function log256(uint256 value, Rounding rounding) internal pure returns (uint256) {
unchecked {
uint256 result = log256(value);
return result + (rounding == Rounding.Up && 1 << (result << 3) < value ? 1 : 0);
}
}
}
ERC20.sol 365 lines
// SPDX-License-Identifier: MIT
// OpenZeppelin Contracts (last updated v4.9.0) (token/ERC20/ERC20.sol)
pragma solidity ^0.8.0;
import "./IERC20.sol";
import "./extensions/IERC20Metadata.sol";
import "../../utils/Context.sol";
/**
* @dev Implementation of the {IERC20} interface.
*
* This implementation is agnostic to the way tokens are created. This means
* that a supply mechanism has to be added in a derived contract using {_mint}.
* For a generic mechanism see {ERC20PresetMinterPauser}.
*
* TIP: For a detailed writeup see our guide
* https://forum.openzeppelin.com/t/how-to-implement-erc20-supply-mechanisms/226[How
* to implement supply mechanisms].
*
* The default value of {decimals} is 18. To change this, you should override
* this function so it returns a different value.
*
* We have followed general OpenZeppelin Contracts guidelines: functions revert
* instead returning `false` on failure. This behavior is nonetheless
* conventional and does not conflict with the expectations of ERC20
* applications.
*
* Additionally, an {Approval} event is emitted on calls to {transferFrom}.
* This allows applications to reconstruct the allowance for all accounts just
* by listening to said events. Other implementations of the EIP may not emit
* these events, as it isn't required by the specification.
*
* Finally, the non-standard {decreaseAllowance} and {increaseAllowance}
* functions have been added to mitigate the well-known issues around setting
* allowances. See {IERC20-approve}.
*/
contract ERC20 is Context, IERC20, IERC20Metadata {
mapping(address => uint256) private _balances;
mapping(address => mapping(address => uint256)) private _allowances;
uint256 private _totalSupply;
string private _name;
string private _symbol;
/**
* @dev Sets the values for {name} and {symbol}.
*
* All two of these values are immutable: they can only be set once during
* construction.
*/
constructor(string memory name_, string memory symbol_) {
_name = name_;
_symbol = symbol_;
}
/**
* @dev Returns the name of the token.
*/
function name() public view virtual override returns (string memory) {
return _name;
}
/**
* @dev Returns the symbol of the token, usually a shorter version of the
* name.
*/
function symbol() public view virtual override returns (string memory) {
return _symbol;
}
/**
* @dev Returns the number of decimals used to get its user representation.
* For example, if `decimals` equals `2`, a balance of `505` tokens should
* be displayed to a user as `5.05` (`505 / 10 ** 2`).
*
* Tokens usually opt for a value of 18, imitating the relationship between
* Ether and Wei. This is the default value returned by this function, unless
* it's overridden.
*
* NOTE: This information is only used for _display_ purposes: it in
* no way affects any of the arithmetic of the contract, including
* {IERC20-balanceOf} and {IERC20-transfer}.
*/
function decimals() public view virtual override returns (uint8) {
return 18;
}
/**
* @dev See {IERC20-totalSupply}.
*/
function totalSupply() public view virtual override returns (uint256) {
return _totalSupply;
}
/**
* @dev See {IERC20-balanceOf}.
*/
function balanceOf(address account) public view virtual override returns (uint256) {
return _balances[account];
}
/**
* @dev See {IERC20-transfer}.
*
* Requirements:
*
* - `to` cannot be the zero address.
* - the caller must have a balance of at least `amount`.
*/
function transfer(address to, uint256 amount) public virtual override returns (bool) {
address owner = _msgSender();
_transfer(owner, to, amount);
return true;
}
/**
* @dev See {IERC20-allowance}.
*/
function allowance(address owner, address spender) public view virtual override returns (uint256) {
return _allowances[owner][spender];
}
/**
* @dev See {IERC20-approve}.
*
* NOTE: If `amount` is the maximum `uint256`, the allowance is not updated on
* `transferFrom`. This is semantically equivalent to an infinite approval.
*
* Requirements:
*
* - `spender` cannot be the zero address.
*/
function approve(address spender, uint256 amount) public virtual override returns (bool) {
address owner = _msgSender();
_approve(owner, spender, amount);
return true;
}
/**
* @dev See {IERC20-transferFrom}.
*
* Emits an {Approval} event indicating the updated allowance. This is not
* required by the EIP. See the note at the beginning of {ERC20}.
*
* NOTE: Does not update the allowance if the current allowance
* is the maximum `uint256`.
*
* Requirements:
*
* - `from` and `to` cannot be the zero address.
* - `from` must have a balance of at least `amount`.
* - the caller must have allowance for ``from``'s tokens of at least
* `amount`.
*/
function transferFrom(address from, address to, uint256 amount) public virtual override returns (bool) {
address spender = _msgSender();
_spendAllowance(from, spender, amount);
_transfer(from, to, amount);
return true;
}
/**
* @dev Atomically increases the allowance granted to `spender` by the caller.
*
* This is an alternative to {approve} that can be used as a mitigation for
* problems described in {IERC20-approve}.
*
* Emits an {Approval} event indicating the updated allowance.
*
* Requirements:
*
* - `spender` cannot be the zero address.
*/
function increaseAllowance(address spender, uint256 addedValue) public virtual returns (bool) {
address owner = _msgSender();
_approve(owner, spender, allowance(owner, spender) + addedValue);
return true;
}
/**
* @dev Atomically decreases the allowance granted to `spender` by the caller.
*
* This is an alternative to {approve} that can be used as a mitigation for
* problems described in {IERC20-approve}.
*
* Emits an {Approval} event indicating the updated allowance.
*
* Requirements:
*
* - `spender` cannot be the zero address.
* - `spender` must have allowance for the caller of at least
* `subtractedValue`.
*/
function decreaseAllowance(address spender, uint256 subtractedValue) public virtual returns (bool) {
address owner = _msgSender();
uint256 currentAllowance = allowance(owner, spender);
require(currentAllowance >= subtractedValue, "ERC20: decreased allowance below zero");
unchecked {
_approve(owner, spender, currentAllowance - subtractedValue);
}
return true;
}
/**
* @dev Moves `amount` of tokens from `from` to `to`.
*
* This internal function is equivalent to {transfer}, and can be used to
* e.g. implement automatic token fees, slashing mechanisms, etc.
*
* Emits a {Transfer} event.
*
* Requirements:
*
* - `from` cannot be the zero address.
* - `to` cannot be the zero address.
* - `from` must have a balance of at least `amount`.
*/
function _transfer(address from, address to, uint256 amount) internal virtual {
require(from != address(0), "ERC20: transfer from the zero address");
require(to != address(0), "ERC20: transfer to the zero address");
_beforeTokenTransfer(from, to, amount);
uint256 fromBalance = _balances[from];
require(fromBalance >= amount, "ERC20: transfer amount exceeds balance");
unchecked {
_balances[from] = fromBalance - amount;
// Overflow not possible: the sum of all balances is capped by totalSupply, and the sum is preserved by
// decrementing then incrementing.
_balances[to] += amount;
}
emit Transfer(from, to, amount);
_afterTokenTransfer(from, to, amount);
}
/** @dev Creates `amount` tokens and assigns them to `account`, increasing
* the total supply.
*
* Emits a {Transfer} event with `from` set to the zero address.
*
* Requirements:
*
* - `account` cannot be the zero address.
*/
function _mint(address account, uint256 amount) internal virtual {
require(account != address(0), "ERC20: mint to the zero address");
_beforeTokenTransfer(address(0), account, amount);
_totalSupply += amount;
unchecked {
// Overflow not possible: balance + amount is at most totalSupply + amount, which is checked above.
_balances[account] += amount;
}
emit Transfer(address(0), account, amount);
_afterTokenTransfer(address(0), account, amount);
}
/**
* @dev Destroys `amount` tokens from `account`, reducing the
* total supply.
*
* Emits a {Transfer} event with `to` set to the zero address.
*
* Requirements:
*
* - `account` cannot be the zero address.
* - `account` must have at least `amount` tokens.
*/
function _burn(address account, uint256 amount) internal virtual {
require(account != address(0), "ERC20: burn from the zero address");
_beforeTokenTransfer(account, address(0), amount);
uint256 accountBalance = _balances[account];
require(accountBalance >= amount, "ERC20: burn amount exceeds balance");
unchecked {
_balances[account] = accountBalance - amount;
// Overflow not possible: amount <= accountBalance <= totalSupply.
_totalSupply -= amount;
}
emit Transfer(account, address(0), amount);
_afterTokenTransfer(account, address(0), amount);
}
/**
* @dev Sets `amount` as the allowance of `spender` over the `owner` s tokens.
*
* This internal function is equivalent to `approve`, and can be used to
* e.g. set automatic allowances for certain subsystems, etc.
*
* Emits an {Approval} event.
*
* Requirements:
*
* - `owner` cannot be the zero address.
* - `spender` cannot be the zero address.
*/
function _approve(address owner, address spender, uint256 amount) internal virtual {
require(owner != address(0), "ERC20: approve from the zero address");
require(spender != address(0), "ERC20: approve to the zero address");
_allowances[owner][spender] = amount;
emit Approval(owner, spender, amount);
}
/**
* @dev Updates `owner` s allowance for `spender` based on spent `amount`.
*
* Does not update the allowance amount in case of infinite allowance.
* Revert if not enough allowance is available.
*
* Might emit an {Approval} event.
*/
function _spendAllowance(address owner, address spender, uint256 amount) internal virtual {
uint256 currentAllowance = allowance(owner, spender);
if (currentAllowance != type(uint256).max) {
require(currentAllowance >= amount, "ERC20: insufficient allowance");
unchecked {
_approve(owner, spender, currentAllowance - amount);
}
}
}
/**
* @dev Hook that is called before any transfer of tokens. This includes
* minting and burning.
*
* Calling conditions:
*
* - when `from` and `to` are both non-zero, `amount` of ``from``'s tokens
* will be transferred to `to`.
* - when `from` is zero, `amount` tokens will be minted for `to`.
* - when `to` is zero, `amount` of ``from``'s tokens will be burned.
* - `from` and `to` are never both zero.
*
* To learn more about hooks, head to xref:ROOT:extending-contracts.adoc#using-hooks[Using Hooks].
*/
function _beforeTokenTransfer(address from, address to, uint256 amount) internal virtual {}
/**
* @dev Hook that is called after any transfer of tokens. This includes
* minting and burning.
*
* Calling conditions:
*
* - when `from` and `to` are both non-zero, `amount` of ``from``'s tokens
* has been transferred to `to`.
* - when `from` is zero, `amount` tokens have been minted for `to`.
* - when `to` is zero, `amount` of ``from``'s tokens have been burned.
* - `from` and `to` are never both zero.
*
* To learn more about hooks, head to xref:ROOT:extending-contracts.adoc#using-hooks[Using Hooks].
*/
function _afterTokenTransfer(address from, address to, uint256 amount) internal virtual {}
}
StorageSlot.sol 138 lines
// SPDX-License-Identifier: MIT
// OpenZeppelin Contracts (last updated v4.9.0) (utils/StorageSlot.sol)
// This file was procedurally generated from scripts/generate/templates/StorageSlot.js.
pragma solidity ^0.8.0;
/**
* @dev Library for reading and writing primitive types to specific storage slots.
*
* Storage slots are often used to avoid storage conflict when dealing with upgradeable contracts.
* This library helps with reading and writing to such slots without the need for inline assembly.
*
* The functions in this library return Slot structs that contain a `value` member that can be used to read or write.
*
* Example usage to set ERC1967 implementation slot:
* ```solidity
* contract ERC1967 {
* bytes32 internal constant _IMPLEMENTATION_SLOT = 0x360894a13ba1a3210667c828492db98dca3e2076cc3735a920a3ca505d382bbc;
*
* function _getImplementation() internal view returns (address) {
* return StorageSlot.getAddressSlot(_IMPLEMENTATION_SLOT).value;
* }
*
* function _setImplementation(address newImplementation) internal {
* require(Address.isContract(newImplementation), "ERC1967: new implementation is not a contract");
* StorageSlot.getAddressSlot(_IMPLEMENTATION_SLOT).value = newImplementation;
* }
* }
* ```
*
* _Available since v4.1 for `address`, `bool`, `bytes32`, `uint256`._
* _Available since v4.9 for `string`, `bytes`._
*/
library StorageSlot {
struct AddressSlot {
address value;
}
struct BooleanSlot {
bool value;
}
struct Bytes32Slot {
bytes32 value;
}
struct Uint256Slot {
uint256 value;
}
struct StringSlot {
string value;
}
struct BytesSlot {
bytes value;
}
/**
* @dev Returns an `AddressSlot` with member `value` located at `slot`.
*/
function getAddressSlot(bytes32 slot) internal pure returns (AddressSlot storage r) {
/// @solidity memory-safe-assembly
assembly {
r.slot := slot
}
}
/**
* @dev Returns an `BooleanSlot` with member `value` located at `slot`.
*/
function getBooleanSlot(bytes32 slot) internal pure returns (BooleanSlot storage r) {
/// @solidity memory-safe-assembly
assembly {
r.slot := slot
}
}
/**
* @dev Returns an `Bytes32Slot` with member `value` located at `slot`.
*/
function getBytes32Slot(bytes32 slot) internal pure returns (Bytes32Slot storage r) {
/// @solidity memory-safe-assembly
assembly {
r.slot := slot
}
}
/**
* @dev Returns an `Uint256Slot` with member `value` located at `slot`.
*/
function getUint256Slot(bytes32 slot) internal pure returns (Uint256Slot storage r) {
/// @solidity memory-safe-assembly
assembly {
r.slot := slot
}
}
/**
* @dev Returns an `StringSlot` with member `value` located at `slot`.
*/
function getStringSlot(bytes32 slot) internal pure returns (StringSlot storage r) {
/// @solidity memory-safe-assembly
assembly {
r.slot := slot
}
}
/**
* @dev Returns an `StringSlot` representation of the string storage pointer `store`.
*/
function getStringSlot(string storage store) internal pure returns (StringSlot storage r) {
/// @solidity memory-safe-assembly
assembly {
r.slot := store.slot
}
}
/**
* @dev Returns an `BytesSlot` with member `value` located at `slot`.
*/
function getBytesSlot(bytes32 slot) internal pure returns (BytesSlot storage r) {
/// @solidity memory-safe-assembly
assembly {
r.slot := slot
}
}
/**
* @dev Returns an `BytesSlot` representation of the bytes storage pointer `store`.
*/
function getBytesSlot(bytes storage store) internal pure returns (BytesSlot storage r) {
/// @solidity memory-safe-assembly
assembly {
r.slot := store.slot
}
}
}
IERC20.sol 78 lines
// SPDX-License-Identifier: MIT
// OpenZeppelin Contracts (last updated v4.9.0) (token/ERC20/IERC20.sol)
pragma solidity ^0.8.0;
/**
* @dev Interface of the ERC20 standard as defined in the EIP.
*/
interface IERC20 {
/**
* @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);
/**
* @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 `to`.
*
* Returns a boolean value indicating whether the operation succeeded.
*
* Emits a {Transfer} event.
*/
function transfer(address to, 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 `from` to `to` 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 from, address to, uint256 amount) external returns (bool);
}
ShortStrings.sol 122 lines
// SPDX-License-Identifier: MIT
// OpenZeppelin Contracts (last updated v4.9.0) (utils/ShortStrings.sol)
pragma solidity ^0.8.8;
import "./StorageSlot.sol";
// | string | 0xAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA |
// | length | 0x BB |
type ShortString is bytes32;
/**
* @dev This library provides functions to convert short memory strings
* into a `ShortString` type that can be used as an immutable variable.
*
* Strings of arbitrary length can be optimized using this library if
* they are short enough (up to 31 bytes) by packing them with their
* length (1 byte) in a single EVM word (32 bytes). Additionally, a
* fallback mechanism can be used for every other case.
*
* Usage example:
*
* ```solidity
* contract Named {
* using ShortStrings for *;
*
* ShortString private immutable _name;
* string private _nameFallback;
*
* constructor(string memory contractName) {
* _name = contractName.toShortStringWithFallback(_nameFallback);
* }
*
* function name() external view returns (string memory) {
* return _name.toStringWithFallback(_nameFallback);
* }
* }
* ```
*/
library ShortStrings {
// Used as an identifier for strings longer than 31 bytes.
bytes32 private constant _FALLBACK_SENTINEL = 0x00000000000000000000000000000000000000000000000000000000000000FF;
error StringTooLong(string str);
error InvalidShortString();
/**
* @dev Encode a string of at most 31 chars into a `ShortString`.
*
* This will trigger a `StringTooLong` error is the input string is too long.
*/
function toShortString(string memory str) internal pure returns (ShortString) {
bytes memory bstr = bytes(str);
if (bstr.length > 31) {
revert StringTooLong(str);
}
return ShortString.wrap(bytes32(uint256(bytes32(bstr)) | bstr.length));
}
/**
* @dev Decode a `ShortString` back to a "normal" string.
*/
function toString(ShortString sstr) internal pure returns (string memory) {
uint256 len = byteLength(sstr);
// using `new string(len)` would work locally but is not memory safe.
string memory str = new string(32);
/// @solidity memory-safe-assembly
assembly {
mstore(str, len)
mstore(add(str, 0x20), sstr)
}
return str;
}
/**
* @dev Return the length of a `ShortString`.
*/
function byteLength(ShortString sstr) internal pure returns (uint256) {
uint256 result = uint256(ShortString.unwrap(sstr)) & 0xFF;
if (result > 31) {
revert InvalidShortString();
}
return result;
}
/**
* @dev Encode a string into a `ShortString`, or write it to storage if it is too long.
*/
function toShortStringWithFallback(string memory value, string storage store) internal returns (ShortString) {
if (bytes(value).length < 32) {
return toShortString(value);
} else {
StorageSlot.getStringSlot(store).value = value;
return ShortString.wrap(_FALLBACK_SENTINEL);
}
}
/**
* @dev Decode a string that was encoded to `ShortString` or written to storage using {setWithFallback}.
*/
function toStringWithFallback(ShortString value, string storage store) internal pure returns (string memory) {
if (ShortString.unwrap(value) != _FALLBACK_SENTINEL) {
return toString(value);
} else {
return store;
}
}
/**
* @dev Return the length of a string that was encoded to `ShortString` or written to storage using {setWithFallback}.
*
* WARNING: This will return the "byte length" of the string. This may not reflect the actual length in terms of
* actual characters as the UTF-8 encoding of a single character can span over multiple bytes.
*/
function byteLengthWithFallback(ShortString value, string storage store) internal view returns (uint256) {
if (ShortString.unwrap(value) != _FALLBACK_SENTINEL) {
return byteLength(value);
} else {
return bytes(store).length;
}
}
}
IERC5267.sol 28 lines
// SPDX-License-Identifier: MIT
// OpenZeppelin Contracts (last updated v4.9.0) (interfaces/IERC5267.sol)
pragma solidity ^0.8.0;
interface IERC5267 {
/**
* @dev MAY be emitted to signal that the domain could have changed.
*/
event EIP712DomainChanged();
/**
* @dev returns the fields and values that describe the domain separator used by this contract for EIP-712
* signature.
*/
function eip712Domain()
external
view
returns (
bytes1 fields,
string memory name,
string memory version,
uint256 chainId,
address verifyingContract,
bytes32 salt,
uint256[] memory extensions
);
}
IWETH.sol 34 lines
// SPDX-License-Identifier: GPL-3.0-or-later
/*
* MIT License
* ===========
*
* Permission is hereby granted, free of charge, to any person obtaining a copy
* of this software and associated documentation files (the "Software"), to deal
* in the Software without restriction, including without limitation the rights
* to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
* copies of the Software, and to permit persons to whom the Software is
* furnished to do so, subject to the following conditions:
*
* The above copyright notice and this permission notice shall be included in all
* copies or substantial portions of the Software.
*
* THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
* IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
* FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
* AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
* LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
* OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
*/
pragma solidity ^0.8.0;
import "@openzeppelin/contracts/token/ERC20/IERC20.sol";
interface IWETH is IERC20 {
event Deposit(address indexed dst, uint256 wad);
event Withdrawal(address indexed src, uint256 wad);
function deposit() external payable;
function withdraw(uint256 wad) external;
}
SignedMath.sol 43 lines
// SPDX-License-Identifier: MIT
// OpenZeppelin Contracts (last updated v4.8.0) (utils/math/SignedMath.sol)
pragma solidity ^0.8.0;
/**
* @dev Standard signed math utilities missing in the Solidity language.
*/
library SignedMath {
/**
* @dev Returns the largest of two signed numbers.
*/
function max(int256 a, int256 b) internal pure returns (int256) {
return a > b ? a : b;
}
/**
* @dev Returns the smallest of two signed numbers.
*/
function min(int256 a, int256 b) internal pure returns (int256) {
return a < b ? a : b;
}
/**
* @dev Returns the average of two signed numbers without overflow.
* The result is rounded towards zero.
*/
function average(int256 a, int256 b) internal pure returns (int256) {
// Formula from the book "Hacker's Delight"
int256 x = (a & b) + ((a ^ b) >> 1);
return x + (int256(uint256(x) >> 255) & (a ^ b));
}
/**
* @dev Returns the absolute unsigned value of a signed value.
*/
function abs(int256 n) internal pure returns (uint256) {
unchecked {
// must be unchecked in order to support `n = type(int256).min`
return uint256(n >= 0 ? n : -n);
}
}
}
IPGauge.sol 11 lines
// SPDX-License-Identifier: GPL-3.0-or-later
pragma solidity ^0.8.0;
interface IPGauge {
function totalActiveSupply() external view returns (uint256);
function activeBalance(address user) external view returns (uint256);
// only available for newer factories. please check the verified contracts
event RedeemRewards(address indexed user, uint256[] rewardsOut);
}
IPMarket.sol 93 lines
// SPDX-License-Identifier: GPL-3.0-or-later
pragma solidity ^0.8.0;
import "@openzeppelin/contracts/token/ERC20/extensions/IERC20Metadata.sol";
import "./IPPrincipalToken.sol";
import "./IPYieldToken.sol";
import "./IStandardizedYield.sol";
import "./IPGauge.sol";
import "../core/Market/MarketMathCore.sol";
interface IPMarket is IERC20Metadata, IPGauge {
event Mint(address indexed receiver, uint256 netLpMinted, uint256 netSyUsed, uint256 netPtUsed);
event Burn(
address indexed receiverSy,
address indexed receiverPt,
uint256 netLpBurned,
uint256 netSyOut,
uint256 netPtOut
);
event Swap(
address indexed caller,
address indexed receiver,
int256 netPtOut,
int256 netSyOut,
uint256 netSyFee,
uint256 netSyToReserve
);
event UpdateImpliedRate(uint256 indexed timestamp, uint256 lnLastImpliedRate);
event IncreaseObservationCardinalityNext(
uint16 observationCardinalityNextOld,
uint16 observationCardinalityNextNew
);
function mint(
address receiver,
uint256 netSyDesired,
uint256 netPtDesired
) external returns (uint256 netLpOut, uint256 netSyUsed, uint256 netPtUsed);
function burn(
address receiverSy,
address receiverPt,
uint256 netLpToBurn
) external returns (uint256 netSyOut, uint256 netPtOut);
function swapExactPtForSy(
address receiver,
uint256 exactPtIn,
bytes calldata data
) external returns (uint256 netSyOut, uint256 netSyFee);
function swapSyForExactPt(
address receiver,
uint256 exactPtOut,
bytes calldata data
) external returns (uint256 netSyIn, uint256 netSyFee);
function redeemRewards(address user) external returns (uint256[] memory);
function readState(address router) external view returns (MarketState memory market);
function observe(uint32[] memory secondsAgos) external view returns (uint216[] memory lnImpliedRateCumulative);
function increaseObservationsCardinalityNext(uint16 cardinalityNext) external;
function readTokens() external view returns (IStandardizedYield _SY, IPPrincipalToken _PT, IPYieldToken _YT);
function getRewardTokens() external view returns (address[] memory);
function isExpired() external view returns (bool);
function expiry() external view returns (uint256);
function observations(
uint256 index
) external view returns (uint32 blockTimestamp, uint216 lnImpliedRateCumulative, bool initialized);
function _storage()
external
view
returns (
int128 totalPt,
int128 totalSy,
uint96 lastLnImpliedRate,
uint16 observationIndex,
uint16 observationCardinality,
uint16 observationCardinalityNext
);
}
IPVeToken.sol 19 lines
// SPDX-License-Identifier: GPL-3.0-or-later
pragma solidity ^0.8.0;
interface IPVeToken {
// ============= USER INFO =============
function balanceOf(address user) external view returns (uint128);
function positionData(address user) external view returns (uint128 amount, uint128 expiry);
// ============= META DATA =============
function totalSupplyStored() external view returns (uint128);
function totalSupplyCurrent() external returns (uint128);
function totalSupplyAndBalanceCurrent(address user) external returns (uint128, uint128);
}
ECDSA.sol 217 lines
// SPDX-License-Identifier: MIT
// OpenZeppelin Contracts (last updated v4.9.0) (utils/cryptography/ECDSA.sol)
pragma solidity ^0.8.0;
import "../Strings.sol";
/**
* @dev Elliptic Curve Digital Signature Algorithm (ECDSA) operations.
*
* These functions can be used to verify that a message was signed by the holder
* of the private keys of a given address.
*/
library ECDSA {
enum RecoverError {
NoError,
InvalidSignature,
InvalidSignatureLength,
InvalidSignatureS,
InvalidSignatureV // Deprecated in v4.8
}
function _throwError(RecoverError error) private pure {
if (error == RecoverError.NoError) {
return; // no error: do nothing
} else if (error == RecoverError.InvalidSignature) {
revert("ECDSA: invalid signature");
} else if (error == RecoverError.InvalidSignatureLength) {
revert("ECDSA: invalid signature length");
} else if (error == RecoverError.InvalidSignatureS) {
revert("ECDSA: invalid signature 's' value");
}
}
/**
* @dev Returns the address that signed a hashed message (`hash`) with
* `signature` or error string. This address can then be used for verification purposes.
*
* The `ecrecover` EVM opcode allows for malleable (non-unique) signatures:
* this function rejects them by requiring the `s` value to be in the lower
* half order, and the `v` value to be either 27 or 28.
*
* IMPORTANT: `hash` _must_ be the result of a hash operation for the
* verification to be secure: it is possible to craft signatures that
* recover to arbitrary addresses for non-hashed data. A safe way to ensure
* this is by receiving a hash of the original message (which may otherwise
* be too long), and then calling {toEthSignedMessageHash} on it.
*
* Documentation for signature generation:
* - with https://web3js.readthedocs.io/en/v1.3.4/web3-eth-accounts.html#sign[Web3.js]
* - with https://docs.ethers.io/v5/api/signer/#Signer-signMessage[ethers]
*
* _Available since v4.3._
*/
function tryRecover(bytes32 hash, bytes memory signature) internal pure returns (address, RecoverError) {
if (signature.length == 65) {
bytes32 r;
bytes32 s;
uint8 v;
// ecrecover takes the signature parameters, and the only way to get them
// currently is to use assembly.
/// @solidity memory-safe-assembly
assembly {
r := mload(add(signature, 0x20))
s := mload(add(signature, 0x40))
v := byte(0, mload(add(signature, 0x60)))
}
return tryRecover(hash, v, r, s);
} else {
return (address(0), RecoverError.InvalidSignatureLength);
}
}
/**
* @dev Returns the address that signed a hashed message (`hash`) with
* `signature`. This address can then be used for verification purposes.
*
* The `ecrecover` EVM opcode allows for malleable (non-unique) signatures:
* this function rejects them by requiring the `s` value to be in the lower
* half order, and the `v` value to be either 27 or 28.
*
* IMPORTANT: `hash` _must_ be the result of a hash operation for the
* verification to be secure: it is possible to craft signatures that
* recover to arbitrary addresses for non-hashed data. A safe way to ensure
* this is by receiving a hash of the original message (which may otherwise
* be too long), and then calling {toEthSignedMessageHash} on it.
*/
function recover(bytes32 hash, bytes memory signature) internal pure returns (address) {
(address recovered, RecoverError error) = tryRecover(hash, signature);
_throwError(error);
return recovered;
}
/**
* @dev Overload of {ECDSA-tryRecover} that receives the `r` and `vs` short-signature fields separately.
*
* See https://eips.ethereum.org/EIPS/eip-2098[EIP-2098 short signatures]
*
* _Available since v4.3._
*/
function tryRecover(bytes32 hash, bytes32 r, bytes32 vs) internal pure returns (address, RecoverError) {
bytes32 s = vs & bytes32(0x7fffffffffffffffffffffffffffffffffffffffffffffffffffffffffffffff);
uint8 v = uint8((uint256(vs) >> 255) + 27);
return tryRecover(hash, v, r, s);
}
/**
* @dev Overload of {ECDSA-recover} that receives the `r and `vs` short-signature fields separately.
*
* _Available since v4.2._
*/
function recover(bytes32 hash, bytes32 r, bytes32 vs) internal pure returns (address) {
(address recovered, RecoverError error) = tryRecover(hash, r, vs);
_throwError(error);
return recovered;
}
/**
* @dev Overload of {ECDSA-tryRecover} that receives the `v`,
* `r` and `s` signature fields separately.
*
* _Available since v4.3._
*/
function tryRecover(bytes32 hash, uint8 v, bytes32 r, bytes32 s) internal pure returns (address, RecoverError) {
// EIP-2 still allows signature malleability for ecrecover(). Remove this possibility and make the signature
// unique. Appendix F in the Ethereum Yellow paper (https://ethereum.github.io/yellowpaper/paper.pdf), defines
// the valid range for s in (301): 0 < s < secp256k1n ÷ 2 + 1, and for v in (302): v ∈ {27, 28}. Most
// signatures from current libraries generate a unique signature with an s-value in the lower half order.
//
// If your library generates malleable signatures, such as s-values in the upper range, calculate a new s-value
// with 0xFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFEBAAEDCE6AF48A03BBFD25E8CD0364141 - s1 and flip v from 27 to 28 or
// vice versa. If your library also generates signatures with 0/1 for v instead 27/28, add 27 to v to accept
// these malleable signatures as well.
if (uint256(s) > 0x7FFFFFFFFFFFFFFFFFFFFFFFFFFFFFFF5D576E7357A4501DDFE92F46681B20A0) {
return (address(0), RecoverError.InvalidSignatureS);
}
// If the signature is valid (and not malleable), return the signer address
address signer = ecrecover(hash, v, r, s);
if (signer == address(0)) {
return (address(0), RecoverError.InvalidSignature);
}
return (signer, RecoverError.NoError);
}
/**
* @dev Overload of {ECDSA-recover} that receives the `v`,
* `r` and `s` signature fields separately.
*/
function recover(bytes32 hash, uint8 v, bytes32 r, bytes32 s) internal pure returns (address) {
(address recovered, RecoverError error) = tryRecover(hash, v, r, s);
_throwError(error);
return recovered;
}
/**
* @dev Returns an Ethereum Signed Message, created from a `hash`. This
* produces hash corresponding to the one signed with the
* https://eth.wiki/json-rpc/API#eth_sign[`eth_sign`]
* JSON-RPC method as part of EIP-191.
*
* See {recover}.
*/
function toEthSignedMessageHash(bytes32 hash) internal pure returns (bytes32 message) {
// 32 is the length in bytes of hash,
// enforced by the type signature above
/// @solidity memory-safe-assembly
assembly {
mstore(0x00, "\x19Ethereum Signed Message:\n32")
mstore(0x1c, hash)
message := keccak256(0x00, 0x3c)
}
}
/**
* @dev Returns an Ethereum Signed Message, created from `s`. This
* produces hash corresponding to the one signed with the
* https://eth.wiki/json-rpc/API#eth_sign[`eth_sign`]
* JSON-RPC method as part of EIP-191.
*
* See {recover}.
*/
function toEthSignedMessageHash(bytes memory s) internal pure returns (bytes32) {
return keccak256(abi.encodePacked("\x19Ethereum Signed Message:\n", Strings.toString(s.length), s));
}
/**
* @dev Returns an Ethereum Signed Typed Data, created from a
* `domainSeparator` and a `structHash`. This produces hash corresponding
* to the one signed with the
* https://eips.ethereum.org/EIPS/eip-712[`eth_signTypedData`]
* JSON-RPC method as part of EIP-712.
*
* See {recover}.
*/
function toTypedDataHash(bytes32 domainSeparator, bytes32 structHash) internal pure returns (bytes32 data) {
/// @solidity memory-safe-assembly
assembly {
let ptr := mload(0x40)
mstore(ptr, "\x19\x01")
mstore(add(ptr, 0x02), domainSeparator)
mstore(add(ptr, 0x22), structHash)
data := keccak256(ptr, 0x42)
}
}
/**
* @dev Returns an Ethereum Signed Data with intended validator, created from a
* `validator` and `data` according to the version 0 of EIP-191.
*
* See {recover}.
*/
function toDataWithIntendedValidatorHash(address validator, bytes memory data) internal pure returns (bytes32) {
return keccak256(abi.encodePacked("\x19\x00", validator, data));
}
}
OracleLib.sol 199 lines
// SPDX-License-Identifier: GPL-3.0-or-later
pragma solidity ^0.8.0;
import "../libraries/Errors.sol";
/// Adapted from UniswapV3's Oracle
library OracleLib {
struct Observation {
uint32 blockTimestamp;
uint216 lnImpliedRateCumulative;
bool initialized;
// 1 SLOT = 256 bits
}
function transform(
Observation memory last,
uint32 blockTimestamp,
uint96 lnImpliedRate
) public pure returns (Observation memory) {
return
Observation({
blockTimestamp: blockTimestamp,
lnImpliedRateCumulative: last.lnImpliedRateCumulative +
uint216(lnImpliedRate) *
(blockTimestamp - last.blockTimestamp),
initialized: true
});
}
function initialize(
Observation[65535] storage self,
uint32 time
) public returns (uint16 cardinality, uint16 cardinalityNext) {
self[0] = Observation({blockTimestamp: time, lnImpliedRateCumulative: 0, initialized: true});
return (1, 1);
}
function write(
Observation[65535] storage self,
uint16 index,
uint32 blockTimestamp,
uint96 lnImpliedRate,
uint16 cardinality,
uint16 cardinalityNext
) public returns (uint16 indexUpdated, uint16 cardinalityUpdated) {
Observation memory last = self[index];
// early return if we've already written an observation this block
if (last.blockTimestamp == blockTimestamp) return (index, cardinality);
// if the conditions are right, we can bump the cardinality
if (cardinalityNext > cardinality && index == (cardinality - 1)) {
cardinalityUpdated = cardinalityNext;
} else {
cardinalityUpdated = cardinality;
}
indexUpdated = (index + 1) % cardinalityUpdated;
self[indexUpdated] = transform(last, blockTimestamp, lnImpliedRate);
}
function grow(Observation[65535] storage self, uint16 current, uint16 next) public returns (uint16) {
if (current == 0) revert Errors.OracleUninitialized();
// no-op if the passed next value isn't greater than the current next value
if (next <= current) return current;
// store in each slot to prevent fresh SSTOREs in swaps
// this data will not be used because the initialized boolean is still false
for (uint16 i = current; i != next; ) {
self[i].blockTimestamp = 1;
unchecked {
++i;
}
}
return next;
}
function binarySearch(
Observation[65535] storage self,
uint32 target,
uint16 index,
uint16 cardinality
) public view returns (Observation memory beforeOrAt, Observation memory atOrAfter) {
uint256 l = (index + 1) % cardinality; // oldest observation
uint256 r = l + cardinality - 1; // newest observation
uint256 i;
while (true) {
i = (l + r) / 2;
beforeOrAt = self[i % cardinality];
// we've landed on an uninitialized observation, keep searching higher (more recently)
if (!beforeOrAt.initialized) {
l = i + 1;
continue;
}
atOrAfter = self[(i + 1) % cardinality];
bool targetAtOrAfter = beforeOrAt.blockTimestamp <= target;
// check if we've found the answer!
if (targetAtOrAfter && target <= atOrAfter.blockTimestamp) break;
if (!targetAtOrAfter) r = i - 1;
else l = i + 1;
}
}
function getSurroundingObservations(
Observation[65535] storage self,
uint32 target,
uint96 lnImpliedRate,
uint16 index,
uint16 cardinality
) public view returns (Observation memory beforeOrAt, Observation memory atOrAfter) {
// optimistically set before to the newest observation
beforeOrAt = self[index];
// if the target is chronologically at or after the newest observation, we can early return
if (beforeOrAt.blockTimestamp <= target) {
if (beforeOrAt.blockTimestamp == target) {
// if newest observation equals target, we're in the same block, so we can ignore atOrAfter
return (beforeOrAt, atOrAfter);
} else {
// otherwise, we need to transform
return (beforeOrAt, transform(beforeOrAt, target, lnImpliedRate));
}
}
// now, set beforeOrAt to the oldest observation
beforeOrAt = self[(index + 1) % cardinality];
if (!beforeOrAt.initialized) beforeOrAt = self[0];
// ensure that the target is chronologically at or after the oldest observation
if (target < beforeOrAt.blockTimestamp) revert Errors.OracleTargetTooOld(target, beforeOrAt.blockTimestamp);
// if we've reached this point, we have to binary search
return binarySearch(self, target, index, cardinality);
}
function observeSingle(
Observation[65535] storage self,
uint32 time,
uint32 secondsAgo,
uint96 lnImpliedRate,
uint16 index,
uint16 cardinality
) public view returns (uint216 lnImpliedRateCumulative) {
if (secondsAgo == 0) {
Observation memory last = self[index];
if (last.blockTimestamp != time) {
return transform(last, time, lnImpliedRate).lnImpliedRateCumulative;
}
return last.lnImpliedRateCumulative;
}
uint32 target = time - secondsAgo;
(Observation memory beforeOrAt, Observation memory atOrAfter) = getSurroundingObservations(
self,
target,
lnImpliedRate,
index,
cardinality
);
if (target == beforeOrAt.blockTimestamp) {
// we're at the left boundary
return beforeOrAt.lnImpliedRateCumulative;
} else if (target == atOrAfter.blockTimestamp) {
// we're at the right boundary
return atOrAfter.lnImpliedRateCumulative;
} else {
// we're in the middle
return (beforeOrAt.lnImpliedRateCumulative +
uint216(
(uint256(atOrAfter.lnImpliedRateCumulative - beforeOrAt.lnImpliedRateCumulative) *
(target - beforeOrAt.blockTimestamp)) / (atOrAfter.blockTimestamp - beforeOrAt.blockTimestamp)
));
}
}
function observe(
Observation[65535] storage self,
uint32 time,
uint32[] memory secondsAgos,
uint96 lnImpliedRate,
uint16 index,
uint16 cardinality
) public view returns (uint216[] memory lnImpliedRateCumulative) {
if (cardinality == 0) revert Errors.OracleZeroCardinality();
lnImpliedRateCumulative = new uint216[](secondsAgos.length);
for (uint256 i = 0; i < lnImpliedRateCumulative.length; ++i) {
lnImpliedRateCumulative[i] = observeSingle(self, time, secondsAgos[i], lnImpliedRate, index, cardinality);
}
}
}
Errors.sol 180 lines
// SPDX-License-Identifier: GPL-3.0-or-later
pragma solidity ^0.8.0;
library Errors {
// BulkSeller
error BulkInsufficientSyForTrade(uint256 currentAmount, uint256 requiredAmount);
error BulkInsufficientTokenForTrade(uint256 currentAmount, uint256 requiredAmount);
error BulkInSufficientSyOut(uint256 actualSyOut, uint256 requiredSyOut);
error BulkInSufficientTokenOut(uint256 actualTokenOut, uint256 requiredTokenOut);
error BulkInsufficientSyReceived(uint256 actualBalance, uint256 requiredBalance);
error BulkNotMaintainer();
error BulkNotAdmin();
error BulkSellerAlreadyExisted(address token, address SY, address bulk);
error BulkSellerInvalidToken(address token, address SY);
error BulkBadRateTokenToSy(uint256 actualRate, uint256 currentRate, uint256 eps);
error BulkBadRateSyToToken(uint256 actualRate, uint256 currentRate, uint256 eps);
// APPROX
error ApproxFail();
error ApproxParamsInvalid(uint256 guessMin, uint256 guessMax, uint256 eps);
error ApproxBinarySearchInputInvalid(
uint256 approxGuessMin,
uint256 approxGuessMax,
uint256 minGuessMin,
uint256 maxGuessMax
);
// MARKET + MARKET MATH CORE
error MarketExpired();
error MarketZeroAmountsInput();
error MarketZeroAmountsOutput();
error MarketZeroLnImpliedRate();
error MarketInsufficientPtForTrade(int256 currentAmount, int256 requiredAmount);
error MarketInsufficientPtReceived(uint256 actualBalance, uint256 requiredBalance);
error MarketInsufficientSyReceived(uint256 actualBalance, uint256 requiredBalance);
error MarketZeroTotalPtOrTotalAsset(int256 totalPt, int256 totalAsset);
error MarketExchangeRateBelowOne(int256 exchangeRate);
error MarketProportionMustNotEqualOne();
error MarketRateScalarBelowZero(int256 rateScalar);
error MarketScalarRootBelowZero(int256 scalarRoot);
error MarketProportionTooHigh(int256 proportion, int256 maxProportion);
error OracleUninitialized();
error OracleTargetTooOld(uint32 target, uint32 oldest);
error OracleZeroCardinality();
error MarketFactoryExpiredPt();
error MarketFactoryInvalidPt();
error MarketFactoryMarketExists();
error MarketFactoryLnFeeRateRootTooHigh(uint80 lnFeeRateRoot, uint256 maxLnFeeRateRoot);
error MarketFactoryOverriddenFeeTooHigh(uint80 overriddenFee, uint256 marketLnFeeRateRoot);
error MarketFactoryReserveFeePercentTooHigh(uint8 reserveFeePercent, uint8 maxReserveFeePercent);
error MarketFactoryZeroTreasury();
error MarketFactoryInitialAnchorTooLow(int256 initialAnchor, int256 minInitialAnchor);
error MFNotPendleMarket(address addr);
// ROUTER
error RouterInsufficientLpOut(uint256 actualLpOut, uint256 requiredLpOut);
error RouterInsufficientSyOut(uint256 actualSyOut, uint256 requiredSyOut);
error RouterInsufficientPtOut(uint256 actualPtOut, uint256 requiredPtOut);
error RouterInsufficientYtOut(uint256 actualYtOut, uint256 requiredYtOut);
error RouterInsufficientPYOut(uint256 actualPYOut, uint256 requiredPYOut);
error RouterInsufficientTokenOut(uint256 actualTokenOut, uint256 requiredTokenOut);
error RouterInsufficientSyRepay(uint256 actualSyRepay, uint256 requiredSyRepay);
error RouterInsufficientPtRepay(uint256 actualPtRepay, uint256 requiredPtRepay);
error RouterNotAllSyUsed(uint256 netSyDesired, uint256 netSyUsed);
error RouterTimeRangeZero();
error RouterCallbackNotPendleMarket(address caller);
error RouterInvalidAction(bytes4 selector);
error RouterInvalidFacet(address facet);
error RouterKyberSwapDataZero();
error SimulationResults(bool success, bytes res);
// YIELD CONTRACT
error YCExpired();
error YCNotExpired();
error YieldContractInsufficientSy(uint256 actualSy, uint256 requiredSy);
error YCNothingToRedeem();
error YCPostExpiryDataNotSet();
error YCNoFloatingSy();
// YieldFactory
error YCFactoryInvalidExpiry();
error YCFactoryYieldContractExisted();
error YCFactoryZeroExpiryDivisor();
error YCFactoryZeroTreasury();
error YCFactoryInterestFeeRateTooHigh(uint256 interestFeeRate, uint256 maxInterestFeeRate);
error YCFactoryRewardFeeRateTooHigh(uint256 newRewardFeeRate, uint256 maxRewardFeeRate);
// SY
error SYInvalidTokenIn(address token);
error SYInvalidTokenOut(address token);
error SYZeroDeposit();
error SYZeroRedeem();
error SYInsufficientSharesOut(uint256 actualSharesOut, uint256 requiredSharesOut);
error SYInsufficientTokenOut(uint256 actualTokenOut, uint256 requiredTokenOut);
// SY-specific
error SYQiTokenMintFailed(uint256 errCode);
error SYQiTokenRedeemFailed(uint256 errCode);
error SYQiTokenRedeemRewardsFailed(uint256 rewardAccruedType0, uint256 rewardAccruedType1);
error SYQiTokenBorrowRateTooHigh(uint256 borrowRate, uint256 borrowRateMax);
error SYCurveInvalidPid();
error SYCurve3crvPoolNotFound();
error SYApeDepositAmountTooSmall(uint256 amountDeposited);
error SYBalancerInvalidPid();
error SYInvalidRewardToken(address token);
error SYStargateRedeemCapExceeded(uint256 amountLpDesired, uint256 amountLpRedeemable);
error SYBalancerReentrancy();
error NotFromTrustedRemote(uint16 srcChainId, bytes path);
// Liquidity Mining
error VCInactivePool(address pool);
error VCPoolAlreadyActive(address pool);
error VCZeroVePendle(address user);
error VCExceededMaxWeight(uint256 totalWeight, uint256 maxWeight);
error VCEpochNotFinalized(uint256 wTime);
error VCPoolAlreadyAddAndRemoved(address pool);
error VEInvalidNewExpiry(uint256 newExpiry);
error VEExceededMaxLockTime();
error VEInsufficientLockTime();
error VENotAllowedReduceExpiry();
error VEZeroAmountLocked();
error VEPositionNotExpired();
error VEZeroPosition();
error VEZeroSlope(uint128 bias, uint128 slope);
error VEReceiveOldSupply(uint256 msgTime);
error GCNotPendleMarket(address caller);
error GCNotVotingController(address caller);
error InvalidWTime(uint256 wTime);
error ExpiryInThePast(uint256 expiry);
error ChainNotSupported(uint256 chainId);
error FDTotalAmountFundedNotMatch(uint256 actualTotalAmount, uint256 expectedTotalAmount);
error FDEpochLengthMismatch();
error FDInvalidPool(address pool);
error FDPoolAlreadyExists(address pool);
error FDInvalidNewFinishedEpoch(uint256 oldFinishedEpoch, uint256 newFinishedEpoch);
error FDInvalidStartEpoch(uint256 startEpoch);
error FDInvalidWTimeFund(uint256 lastFunded, uint256 wTime);
error FDFutureFunding(uint256 lastFunded, uint256 currentWTime);
error BDInvalidEpoch(uint256 epoch, uint256 startTime);
// Cross-Chain
error MsgNotFromSendEndpoint(uint16 srcChainId, bytes path);
error MsgNotFromReceiveEndpoint(address sender);
error InsufficientFeeToSendMsg(uint256 currentFee, uint256 requiredFee);
error ApproxDstExecutionGasNotSet();
error InvalidRetryData();
// GENERIC MSG
error ArrayLengthMismatch();
error ArrayEmpty();
error ArrayOutOfBounds();
error ZeroAddress();
error FailedToSendEther();
error InvalidMerkleProof();
error OnlyLayerZeroEndpoint();
error OnlyYT();
error OnlyYCFactory();
error OnlyWhitelisted();
// Swap Aggregator
error SAInsufficientTokenIn(address tokenIn, uint256 amountExpected, uint256 amountActual);
error UnsupportedSelector(uint256 aggregatorType, bytes4 selector);
}
IPMarketV3.sol 8 lines
// SPDX-License-Identifier: GPL-3.0-or-later
pragma solidity ^0.8.0;
import "./IPMarket.sol";
interface IPMarketV3 is IPMarket {
function getNonOverrideLnFeeRateRoot() external view returns (uint80);
}
EIP712.sol 142 lines
// SPDX-License-Identifier: MIT
// OpenZeppelin Contracts (last updated v4.9.0) (utils/cryptography/EIP712.sol)
pragma solidity ^0.8.8;
import "./ECDSA.sol";
import "../ShortStrings.sol";
import "../../interfaces/IERC5267.sol";
/**
* @dev https://eips.ethereum.org/EIPS/eip-712[EIP 712] is a standard for hashing and signing of typed structured data.
*
* The encoding specified in the EIP is very generic, and such a generic implementation in Solidity is not feasible,
* thus this contract does not implement the encoding itself. Protocols need to implement the type-specific encoding
* they need in their contracts using a combination of `abi.encode` and `keccak256`.
*
* This contract implements the EIP 712 domain separator ({_domainSeparatorV4}) that is used as part of the encoding
* scheme, and the final step of the encoding to obtain the message digest that is then signed via ECDSA
* ({_hashTypedDataV4}).
*
* The implementation of the domain separator was designed to be as efficient as possible while still properly updating
* the chain id to protect against replay attacks on an eventual fork of the chain.
*
* NOTE: This contract implements the version of the encoding known as "v4", as implemented by the JSON RPC method
* https://docs.metamask.io/guide/signing-data.html[`eth_signTypedDataV4` in MetaMask].
*
* NOTE: In the upgradeable version of this contract, the cached values will correspond to the address, and the domain
* separator of the implementation contract. This will cause the `_domainSeparatorV4` function to always rebuild the
* separator from the immutable values, which is cheaper than accessing a cached version in cold storage.
*
* _Available since v3.4._
*
* @custom:oz-upgrades-unsafe-allow state-variable-immutable state-variable-assignment
*/
abstract contract EIP712 is IERC5267 {
using ShortStrings for *;
bytes32 private constant _TYPE_HASH =
keccak256("EIP712Domain(string name,string version,uint256 chainId,address verifyingContract)");
// Cache the domain separator as an immutable value, but also store the chain id that it corresponds to, in order to
// invalidate the cached domain separator if the chain id changes.
bytes32 private immutable _cachedDomainSeparator;
uint256 private immutable _cachedChainId;
address private immutable _cachedThis;
bytes32 private immutable _hashedName;
bytes32 private immutable _hashedVersion;
ShortString private immutable _name;
ShortString private immutable _version;
string private _nameFallback;
string private _versionFallback;
/**
* @dev Initializes the domain separator and parameter caches.
*
* The meaning of `name` and `version` is specified in
* https://eips.ethereum.org/EIPS/eip-712#definition-of-domainseparator[EIP 712]:
*
* - `name`: the user readable name of the signing domain, i.e. the name of the DApp or the protocol.
* - `version`: the current major version of the signing domain.
*
* NOTE: These parameters cannot be changed except through a xref:learn::upgrading-smart-contracts.adoc[smart
* contract upgrade].
*/
constructor(string memory name, string memory version) {
_name = name.toShortStringWithFallback(_nameFallback);
_version = version.toShortStringWithFallback(_versionFallback);
_hashedName = keccak256(bytes(name));
_hashedVersion = keccak256(bytes(version));
_cachedChainId = block.chainid;
_cachedDomainSeparator = _buildDomainSeparator();
_cachedThis = address(this);
}
/**
* @dev Returns the domain separator for the current chain.
*/
function _domainSeparatorV4() internal view returns (bytes32) {
if (address(this) == _cachedThis && block.chainid == _cachedChainId) {
return _cachedDomainSeparator;
} else {
return _buildDomainSeparator();
}
}
function _buildDomainSeparator() private view returns (bytes32) {
return keccak256(abi.encode(_TYPE_HASH, _hashedName, _hashedVersion, block.chainid, address(this)));
}
/**
* @dev Given an already https://eips.ethereum.org/EIPS/eip-712#definition-of-hashstruct[hashed struct], this
* function returns the hash of the fully encoded EIP712 message for this domain.
*
* This hash can be used together with {ECDSA-recover} to obtain the signer of a message. For example:
*
* ```solidity
* bytes32 digest = _hashTypedDataV4(keccak256(abi.encode(
* keccak256("Mail(address to,string contents)"),
* mailTo,
* keccak256(bytes(mailContents))
* )));
* address signer = ECDSA.recover(digest, signature);
* ```
*/
function _hashTypedDataV4(bytes32 structHash) internal view virtual returns (bytes32) {
return ECDSA.toTypedDataHash(_domainSeparatorV4(), structHash);
}
/**
* @dev See {EIP-5267}.
*
* _Available since v4.9._
*/
function eip712Domain()
public
view
virtual
override
returns (
bytes1 fields,
string memory name,
string memory version,
uint256 chainId,
address verifyingContract,
bytes32 salt,
uint256[] memory extensions
)
{
return (
hex"0f", // 01111
_name.toStringWithFallback(_nameFallback),
_version.toStringWithFallback(_versionFallback),
block.chainid,
address(this),
bytes32(0),
new uint256[](0)
);
}
}
PendleERC20.sol 319 lines
// SPDX-License-Identifier: GPL-3.0-or-later
// OpenZeppelin Contracts (last updated v4.6.0) (token/ERC20/ERC20.sol)
pragma solidity ^0.8.0;
import "@openzeppelin/contracts/token/ERC20/IERC20.sol";
import "@openzeppelin/contracts/token/ERC20/extensions/IERC20Metadata.sol";
import "@openzeppelin/contracts/utils/Context.sol";
/**
* @dev Pendle's ERC20 implementation, modified from @openzeppelin implementation
* Changes are:
* - comes with built-in reentrancy protection, storage-packed with totalSupply variable
* - delete increaseAllowance / decreaseAllowance
* - add nonReentrancy protection to transfer / transferFrom functions
* - allow decimals to be passed in
* - block self-transfer by default
*/
// solhint-disable
contract PendleERC20 is Context, IERC20, IERC20Metadata {
uint8 private constant _NOT_ENTERED = 1;
uint8 private constant _ENTERED = 2;
mapping(address => uint256) private _balances;
mapping(address => mapping(address => uint256)) private _allowances;
uint248 private _totalSupply;
uint8 private _status;
string private _name;
string private _symbol;
uint8 public immutable decimals;
/**
* @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;
}
/**
* @dev Sets the values for {name}, {symbol} and {decimals}.
*
* All three of these values are immutable: they can only be set once during
* construction.
*/
constructor(string memory name_, string memory symbol_, uint8 decimals_) {
_name = name_;
_symbol = symbol_;
decimals = decimals_;
_status = _NOT_ENTERED;
}
/**
* @dev Returns the name of the token.
*/
function name() public view virtual override returns (string memory) {
return _name;
}
/**
* @dev Returns the symbol of the token, usually a shorter version of the
* name.
*/
function symbol() public view virtual override returns (string memory) {
return _symbol;
}
/**
* @dev See {IERC20-totalSupply}.
*/
function totalSupply() public view virtual override returns (uint256) {
return _totalSupply;
}
/**
* @dev See {IERC20-balanceOf}.
*/
function balanceOf(address account) public view virtual override returns (uint256) {
return _balances[account];
}
/**
* @dev See {IERC20-transfer}.
*
* Requirements:
*
* - `to` cannot be the zero address.
* - the caller must have a balance of at least `amount`.
*/
function transfer(address to, uint256 amount) external virtual override nonReentrant returns (bool) {
address owner = _msgSender();
_transfer(owner, to, amount);
return true;
}
/**
* @dev See {IERC20-allowance}.
*/
function allowance(address owner, address spender) public view virtual override returns (uint256) {
return _allowances[owner][spender];
}
/**
* @dev See {IERC20-approve}.
*
* NOTE: If `amount` is the maximum `uint256`, the allowance is not updated on
* `transferFrom`. This is semantically equivalent to an infinite approval.
*
* Requirements:
*
* - `spender` cannot be the zero address.
*/
function approve(address spender, uint256 amount) external virtual override returns (bool) {
address owner = _msgSender();
_approve(owner, spender, amount);
return true;
}
/**
* @dev See {IERC20-transferFrom}.
*
* Emits an {Approval} event indicating the updated allowance. This is not
* required by the EIP. See the note at the beginning of {ERC20}.
*
* NOTE: Does not update the allowance if the current allowance
* is the maximum `uint256`.
*
* Requirements:
*
* - `from` and `to` cannot be the zero address.
* - `from` must have a balance of at least `amount`.
* - the caller must have allowance for ``from``'s tokens of at least
* `amount`.
*/
function transferFrom(
address from,
address to,
uint256 amount
) external virtual override nonReentrant returns (bool) {
address spender = _msgSender();
_spendAllowance(from, spender, amount);
_transfer(from, to, amount);
return true;
}
/**
* @dev Moves `amount` of tokens from `sender` to `recipient`.
*
* This internal function is equivalent to {transfer}, and can be used to
* e.g. implement automatic token fees, slashing mechanisms, etc.
*
* Emits a {Transfer} event.
*
* Requirements:
*
* - `from` cannot be the zero address.
* - `to` cannot be the zero address.
* - `from` must have a balance of at least `amount`.
*/
function _transfer(address from, address to, uint256 amount) internal virtual {
require(from != address(0), "ERC20: transfer from the zero address");
require(to != address(0), "ERC20: transfer to the zero address");
require(from != to, "ERC20: transfer to self");
_beforeTokenTransfer(from, to, amount);
uint256 fromBalance = _balances[from];
require(fromBalance >= amount, "ERC20: transfer amount exceeds balance");
unchecked {
_balances[from] = fromBalance - amount;
}
_balances[to] += amount;
emit Transfer(from, to, amount);
_afterTokenTransfer(from, to, amount);
}
/** @dev Creates `amount` tokens and assigns them to `account`, increasing
* the total supply.
*
* Emits a {Transfer} event with `from` set to the zero address.
*
* Requirements:
*
* - `account` cannot be the zero address.
*/
function _mint(address account, uint256 amount) internal virtual {
require(account != address(0), "ERC20: mint to the zero address");
_beforeTokenTransfer(address(0), account, amount);
_totalSupply += toUint248(amount);
_balances[account] += amount;
emit Transfer(address(0), account, amount);
_afterTokenTransfer(address(0), account, amount);
}
/**
* @dev Destroys `amount` tokens from `account`, reducing the
* total supply.
*
* Emits a {Transfer} event with `to` set to the zero address.
*
* Requirements:
*
* - `account` cannot be the zero address.
* - `account` must have at least `amount` tokens.
*/
function _burn(address account, uint256 amount) internal virtual {
require(account != address(0), "ERC20: burn from the zero address");
_beforeTokenTransfer(account, address(0), amount);
uint256 accountBalance = _balances[account];
require(accountBalance >= amount, "ERC20: burn amount exceeds balance");
unchecked {
_balances[account] = accountBalance - amount;
}
_totalSupply -= toUint248(amount);
emit Transfer(account, address(0), amount);
_afterTokenTransfer(account, address(0), amount);
}
/**
* @dev Sets `amount` as the allowance of `spender` over the `owner` s tokens.
*
* This internal function is equivalent to `approve`, and can be used to
* e.g. set automatic allowances for certain subsystems, etc.
*
* Emits an {Approval} event.
*
* Requirements:
*
* - `owner` cannot be the zero address.
* - `spender` cannot be the zero address.
*/
function _approve(address owner, address spender, uint256 amount) internal virtual {
require(owner != address(0), "ERC20: approve from the zero address");
require(spender != address(0), "ERC20: approve to the zero address");
_allowances[owner][spender] = amount;
emit Approval(owner, spender, amount);
}
/**
* @dev Updates `owner` s allowance for `spender` based on spent `amount`.
*
* Does not update the allowance amount in case of infinite allowance.
* Revert if not enough allowance is available.
*
* Might emit an {Approval} event.
*/
function _spendAllowance(address owner, address spender, uint256 amount) internal virtual {
uint256 currentAllowance = allowance(owner, spender);
if (currentAllowance != type(uint256).max) {
require(currentAllowance >= amount, "ERC20: insufficient allowance");
unchecked {
_approve(owner, spender, currentAllowance - amount);
}
}
}
/**
* @dev Hook that is called before any transfer of tokens. This includes
* minting and burning.
*
* Calling conditions:
*
* - when `from` and `to` are both non-zero, `amount` of ``from``'s tokens
* will be transferred to `to`.
* - when `from` is zero, `amount` tokens will be minted for `to`.
* - when `to` is zero, `amount` of ``from``'s tokens will be burned.
* - `from` and `to` are never both zero.
*
* To learn more about hooks, head to xref:ROOT:extending-contracts.adoc#using-hooks[Using Hooks].
*/
function _beforeTokenTransfer(address from, address to, uint256 amount) internal virtual {}
/**
* @dev Hook that is called after any transfer of tokens. This includes
* minting and burning.
*
* Calling conditions:
*
* - when `from` and `to` are both non-zero, `amount` of ``from``'s tokens
* has been transferred to `to`.
* - when `from` is zero, `amount` tokens have been minted for `to`.
* - when `to` is zero, `amount` of ``from``'s tokens have been burned.
* - `from` and `to` are never both zero.
*
* To learn more about hooks, head to xref:ROOT:extending-contracts.adoc#using-hooks[Using Hooks].
*/
function _afterTokenTransfer(address from, address to, uint256 amount) internal virtual {}
function toUint248(uint256 x) internal virtual returns (uint248) {
require(x <= type(uint248).max); // signed, lim = bit-1
return uint248(x);
}
}
PendleGauge.sol 116 lines
// SPDX-License-Identifier: GPL-3.0-or-later
pragma solidity ^0.8.0;
import "../../interfaces/IPGauge.sol";
import "../../interfaces/IPVeToken.sol";
import "../../interfaces/IPGaugeController.sol";
import "../../interfaces/IStandardizedYield.sol";
import "../RewardManager/RewardManager.sol";
/**
Invariants to maintain:
- before any changes to active balance, updateAndDistributeRewards() must be called
*/
abstract contract PendleGauge is RewardManager, IPGauge {
using PMath for uint256;
using SafeERC20 for IERC20;
using ArrayLib for address[];
address private immutable SY;
uint256 internal constant TOKENLESS_PRODUCTION = 40;
address internal immutable PENDLE;
IPVeToken internal immutable vePENDLE;
address internal immutable gaugeController;
uint256 public totalActiveSupply;
mapping(address => uint256) public activeBalance;
constructor(address _SY, address _vePendle, address _gaugeController) {
SY = _SY;
vePENDLE = IPVeToken(_vePendle);
gaugeController = _gaugeController;
PENDLE = IPGaugeController(gaugeController).pendle();
}
/**
* @dev Since rewardShares is based on activeBalance, user's activeBalance must be updated AFTER
rewards is updated
* @dev It's intended to have user's activeBalance updated when rewards is redeemed
*/
function _redeemRewards(address user) internal virtual returns (uint256[] memory rewardsOut) {
_updateAndDistributeRewards(user);
_updateUserActiveBalance(user);
rewardsOut = _doTransferOutRewards(user, user);
emit RedeemRewards(user, rewardsOut);
}
function _updateUserActiveBalance(address user) internal virtual {
_updateUserActiveBalanceForTwo(user, address(0));
}
function _updateUserActiveBalanceForTwo(address user1, address user2) internal virtual {
if (user1 != address(0) && user1 != address(this)) _updateUserActiveBalancePrivate(user1);
if (user2 != address(0) && user2 != address(this)) _updateUserActiveBalancePrivate(user2);
}
/**
* @dev should only be callable from `_updateUserActiveBalanceForTwo` to guarantee user != address(0) && user != address(this)
*/
function _updateUserActiveBalancePrivate(address user) private {
assert(user != address(0) && user != address(this));
uint256 lpBalance = _stakedBalance(user);
uint256 veBoostedLpBalance = _calcVeBoostedLpBalance(user, lpBalance);
uint256 newActiveBalance = PMath.min(veBoostedLpBalance, lpBalance);
totalActiveSupply = totalActiveSupply - activeBalance[user] + newActiveBalance;
activeBalance[user] = newActiveBalance;
}
function _calcVeBoostedLpBalance(address user, uint256 lpBalance) internal virtual returns (uint256) {
(uint256 vePendleSupply, uint256 vePendleBalance) = vePENDLE.totalSupplyAndBalanceCurrent(user);
// Inspired by Curve's Gauge
uint256 veBoostedLpBalance = (lpBalance * TOKENLESS_PRODUCTION) / 100;
if (vePendleSupply > 0) {
veBoostedLpBalance +=
(((_totalStaked() * vePendleBalance) / vePendleSupply) * (100 - TOKENLESS_PRODUCTION)) /
100;
}
return veBoostedLpBalance;
}
function _redeemExternalReward() internal virtual override {
IStandardizedYield(SY).claimRewards(address(this));
IPGaugeController(gaugeController).redeemMarketReward();
}
function _stakedBalance(address user) internal view virtual returns (uint256);
function _totalStaked() internal view virtual returns (uint256);
function _rewardSharesTotal() internal view virtual override returns (uint256) {
return totalActiveSupply;
}
function _rewardSharesUser(address user) internal view virtual override returns (uint256) {
return activeBalance[user];
}
function _getRewardTokens() internal view virtual override returns (address[] memory) {
address[] memory SYRewards = IStandardizedYield(SY).getRewardTokens();
if (SYRewards.contains(PENDLE)) return SYRewards;
return SYRewards.append(PENDLE);
}
function _beforeTokenTransfer(address from, address to, uint256) internal virtual {
_updateAndDistributeRewardsForTwo(from, to);
}
function _afterTokenTransfer(address from, address to, uint256) internal virtual {
_updateUserActiveBalanceForTwo(from, to);
}
}
ArrayLib.sol 108 lines
// SPDX-License-Identifier: GPL-3.0-or-later
pragma solidity ^0.8.0;
library ArrayLib {
function sum(uint256[] memory input) internal pure returns (uint256) {
uint256 value = 0;
for (uint256 i = 0; i < input.length; ) {
value += input[i];
unchecked {
i++;
}
}
return value;
}
/// @notice return index of the element if found, else return uint256.max
function find(address[] memory array, address element) internal pure returns (uint256 index) {
uint256 length = array.length;
for (uint256 i = 0; i < length; ) {
if (array[i] == element) return i;
unchecked {
i++;
}
}
return type(uint256).max;
}
function append(address[] memory inp, address element) internal pure returns (address[] memory out) {
uint256 length = inp.length;
out = new address[](length + 1);
for (uint256 i = 0; i < length; ) {
out[i] = inp[i];
unchecked {
i++;
}
}
out[length] = element;
}
/**
* @dev This function assumes a and b each contains unidentical elements
* @param a array of addresses a
* @param b array of addresses b
* @return out Concatenation of a and b containing unidentical elements
*/
function merge(address[] memory a, address[] memory b) internal pure returns (address[] memory out) {
unchecked {
uint256 countUnidenticalB = 0;
bool[] memory isUnidentical = new bool[](b.length);
for (uint256 i = 0; i < b.length; ++i) {
if (!contains(a, b[i])) {
countUnidenticalB++;
isUnidentical[i] = true;
}
}
out = new address[](a.length + countUnidenticalB);
for (uint256 i = 0; i < a.length; ++i) {
out[i] = a[i];
}
uint256 id = a.length;
for (uint256 i = 0; i < b.length; ++i) {
if (isUnidentical[i]) {
out[id++] = b[i];
}
}
}
}
// various version of contains
function contains(address[] memory array, address element) internal pure returns (bool) {
uint256 length = array.length;
for (uint256 i = 0; i < length; ) {
if (array[i] == element) return true;
unchecked {
i++;
}
}
return false;
}
function contains(bytes4[] memory array, bytes4 element) internal pure returns (bool) {
uint256 length = array.length;
for (uint256 i = 0; i < length; ) {
if (array[i] == element) return true;
unchecked {
i++;
}
}
return false;
}
function create(address a) internal pure returns (address[] memory res) {
res = new address[](1);
res[0] = a;
}
function create(address a, address b) internal pure returns (address[] memory res) {
res = new address[](2);
res[0] = a;
res[1] = b;
}
function create(uint256 a) internal pure returns (uint256[] memory res) {
res = new uint256[](1);
res[0] = a;
}
}
IPYieldToken.sol 62 lines
// SPDX-License-Identifier: GPL-3.0-or-later
pragma solidity ^0.8.0;
import "@openzeppelin/contracts/token/ERC20/extensions/IERC20Metadata.sol";
import "./IRewardManager.sol";
import "./IPInterestManagerYT.sol";
interface IPYieldToken is IERC20Metadata, IRewardManager, IPInterestManagerYT {
event NewInterestIndex(uint256 indexed newIndex);
event Mint(
address indexed caller,
address indexed receiverPT,
address indexed receiverYT,
uint256 amountSyToMint,
uint256 amountPYOut
);
event Burn(address indexed caller, address indexed receiver, uint256 amountPYToRedeem, uint256 amountSyOut);
event RedeemRewards(address indexed user, uint256[] amountRewardsOut);
event RedeemInterest(address indexed user, uint256 interestOut);
event CollectRewardFee(address indexed rewardToken, uint256 amountRewardFee);
function mintPY(address receiverPT, address receiverYT) external returns (uint256 amountPYOut);
function redeemPY(address receiver) external returns (uint256 amountSyOut);
function redeemPYMulti(
address[] calldata receivers,
uint256[] calldata amountPYToRedeems
) external returns (uint256[] memory amountSyOuts);
function redeemDueInterestAndRewards(
address user,
bool redeemInterest,
bool redeemRewards
) external returns (uint256 interestOut, uint256[] memory rewardsOut);
function rewardIndexesCurrent() external returns (uint256[] memory);
function pyIndexCurrent() external returns (uint256);
function pyIndexStored() external view returns (uint256);
function getRewardTokens() external view returns (address[] memory);
function SY() external view returns (address);
function PT() external view returns (address);
function factory() external view returns (address);
function expiry() external view returns (uint256);
function isExpired() external view returns (bool);
function doCacheIndexSameBlock() external view returns (bool);
function pyIndexLastUpdatedBlock() external view returns (uint128);
}
SafeERC20.sol 143 lines
// SPDX-License-Identifier: MIT
// OpenZeppelin Contracts (last updated v4.9.3) (token/ERC20/utils/SafeERC20.sol)
pragma solidity ^0.8.0;
import "../IERC20.sol";
import "../extensions/IERC20Permit.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;
/**
* @dev Transfer `value` amount of `token` from the calling contract to `to`. If `token` returns no value,
* non-reverting calls are assumed to be successful.
*/
function safeTransfer(IERC20 token, address to, uint256 value) internal {
_callOptionalReturn(token, abi.encodeWithSelector(token.transfer.selector, to, value));
}
/**
* @dev Transfer `value` amount of `token` from `from` to `to`, spending the approval given by `from` to the
* calling contract. If `token` returns no value, non-reverting calls are assumed to be successful.
*/
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));
}
/**
* @dev Increase the calling contract's allowance toward `spender` by `value`. If `token` returns no value,
* non-reverting calls are assumed to be successful.
*/
function safeIncreaseAllowance(IERC20 token, address spender, uint256 value) internal {
uint256 oldAllowance = token.allowance(address(this), spender);
_callOptionalReturn(token, abi.encodeWithSelector(token.approve.selector, spender, oldAllowance + value));
}
/**
* @dev Decrease the calling contract's allowance toward `spender` by `value`. If `token` returns no value,
* non-reverting calls are assumed to be successful.
*/
function safeDecreaseAllowance(IERC20 token, address spender, uint256 value) internal {
unchecked {
uint256 oldAllowance = token.allowance(address(this), spender);
require(oldAllowance >= value, "SafeERC20: decreased allowance below zero");
_callOptionalReturn(token, abi.encodeWithSelector(token.approve.selector, spender, oldAllowance - value));
}
}
/**
* @dev Set the calling contract's allowance toward `spender` to `value`. If `token` returns no value,
* non-reverting calls are assumed to be successful. Meant to be used with tokens that require the approval
* to be set to zero before setting it to a non-zero value, such as USDT.
*/
function forceApprove(IERC20 token, address spender, uint256 value) internal {
bytes memory approvalCall = abi.encodeWithSelector(token.approve.selector, spender, value);
if (!_callOptionalReturnBool(token, approvalCall)) {
_callOptionalReturn(token, abi.encodeWithSelector(token.approve.selector, spender, 0));
_callOptionalReturn(token, approvalCall);
}
}
/**
* @dev Use a ERC-2612 signature to set the `owner` approval toward `spender` on `token`.
* Revert on invalid signature.
*/
function safePermit(
IERC20Permit token,
address owner,
address spender,
uint256 value,
uint256 deadline,
uint8 v,
bytes32 r,
bytes32 s
) internal {
uint256 nonceBefore = token.nonces(owner);
token.permit(owner, spender, value, deadline, v, r, s);
uint256 nonceAfter = token.nonces(owner);
require(nonceAfter == nonceBefore + 1, "SafeERC20: permit did not succeed");
}
/**
* @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");
require(returndata.length == 0 || abi.decode(returndata, (bool)), "SafeERC20: ERC20 operation did not succeed");
}
/**
* @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).
*
* This is a variant of {_callOptionalReturn} that silents catches all reverts and returns a bool instead.
*/
function _callOptionalReturnBool(IERC20 token, bytes memory data) private returns (bool) {
// 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 cannot use {Address-functionCall} here since this should return false
// and not revert is the subcall reverts.
(bool success, bytes memory returndata) = address(token).call(data);
return
success && (returndata.length == 0 || abi.decode(returndata, (bool))) && Address.isContract(address(token));
}
}
PMath.sol 184 lines
// SPDX-License-Identifier: GPL-3.0-or-later
// This program is free software: you can redistribute it and/or modify
// it under the terms of the GNU General Public License as published by
// the Free Software Foundation, either version 3 of the License, or
// (at your option) any later version.
// This program is distributed in the hope that it will be useful,
// but WITHOUT ANY WARRANTY; without even the implied warranty of
// MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
// GNU General Public License for more details.
// You should have received a copy of the GNU General Public License
// along with this program. If not, see <http://www.gnu.org/licenses/>.
pragma solidity ^0.8.0;
/* solhint-disable private-vars-leading-underscore, reason-string */
library PMath {
uint256 internal constant ONE = 1e18; // 18 decimal places
int256 internal constant IONE = 1e18; // 18 decimal places
function subMax0(uint256 a, uint256 b) internal pure returns (uint256) {
unchecked {
return (a >= b ? a - b : 0);
}
}
function subNoNeg(int256 a, int256 b) internal pure returns (int256) {
require(a >= b, "negative");
return a - b; // no unchecked since if b is very negative, a - b might overflow
}
function mulDown(uint256 a, uint256 b) internal pure returns (uint256) {
uint256 product = a * b;
unchecked {
return product / ONE;
}
}
function mulDown(int256 a, int256 b) internal pure returns (int256) {
int256 product = a * b;
unchecked {
return product / IONE;
}
}
function divDown(uint256 a, uint256 b) internal pure returns (uint256) {
uint256 aInflated = a * ONE;
unchecked {
return aInflated / b;
}
}
function divDown(int256 a, int256 b) internal pure returns (int256) {
int256 aInflated = a * IONE;
unchecked {
return aInflated / b;
}
}
function rawDivUp(uint256 a, uint256 b) internal pure returns (uint256) {
return (a + b - 1) / b;
}
// @author Uniswap
function sqrt(uint256 y) internal pure returns (uint256 z) {
if (y > 3) {
z = y;
uint256 x = y / 2 + 1;
while (x < z) {
z = x;
x = (y / x + x) / 2;
}
} else if (y != 0) {
z = 1;
}
}
function square(uint256 x) internal pure returns (uint256) {
return x * x;
}
function squareDown(uint256 x) internal pure returns (uint256) {
return mulDown(x, x);
}
function abs(int256 x) internal pure returns (uint256) {
return uint256(x > 0 ? x : -x);
}
function neg(int256 x) internal pure returns (int256) {
return x * (-1);
}
function neg(uint256 x) internal pure returns (int256) {
return Int(x) * (-1);
}
function max(uint256 x, uint256 y) internal pure returns (uint256) {
return (x > y ? x : y);
}
function max(int256 x, int256 y) internal pure returns (int256) {
return (x > y ? x : y);
}
function min(uint256 x, uint256 y) internal pure returns (uint256) {
return (x < y ? x : y);
}
function min(int256 x, int256 y) internal pure returns (int256) {
return (x < y ? x : y);
}
/*///////////////////////////////////////////////////////////////
SIGNED CASTS
//////////////////////////////////////////////////////////////*/
function Int(uint256 x) internal pure returns (int256) {
require(x <= uint256(type(int256).max));
return int256(x);
}
function Int128(int256 x) internal pure returns (int128) {
require(type(int128).min <= x && x <= type(int128).max);
return int128(x);
}
function Int128(uint256 x) internal pure returns (int128) {
return Int128(Int(x));
}
/*///////////////////////////////////////////////////////////////
UNSIGNED CASTS
//////////////////////////////////////////////////////////////*/
function Uint(int256 x) internal pure returns (uint256) {
require(x >= 0);
return uint256(x);
}
function Uint32(uint256 x) internal pure returns (uint32) {
require(x <= type(uint32).max);
return uint32(x);
}
function Uint64(uint256 x) internal pure returns (uint64) {
require(x <= type(uint64).max);
return uint64(x);
}
function Uint112(uint256 x) internal pure returns (uint112) {
require(x <= type(uint112).max);
return uint112(x);
}
function Uint96(uint256 x) internal pure returns (uint96) {
require(x <= type(uint96).max);
return uint96(x);
}
function Uint128(uint256 x) internal pure returns (uint128) {
require(x <= type(uint128).max);
return uint128(x);
}
function Uint192(uint256 x) internal pure returns (uint192) {
require(x <= type(uint192).max);
return uint192(x);
}
function isAApproxB(uint256 a, uint256 b, uint256 eps) internal pure returns (bool) {
return mulDown(b, ONE - eps) <= a && a <= mulDown(b, ONE + eps);
}
function isAGreaterApproxB(uint256 a, uint256 b, uint256 eps) internal pure returns (bool) {
return a >= b && a <= mulDown(b, ONE + eps);
}
function isASmallerApproxB(uint256 a, uint256 b, uint256 eps) internal pure returns (bool) {
return a <= b && a >= mulDown(b, ONE - eps);
}
}
IRewardManager.sol 6 lines
// SPDX-License-Identifier: GPL-3.0-or-later
pragma solidity ^0.8.0;
interface IRewardManager {
function userReward(address token, address user) external view returns (uint128 index, uint128 accrued);
}
MarketMathCore.sol 417 lines
// SPDX-License-Identifier: GPL-3.0-or-later
pragma solidity ^0.8.0;
import "../libraries/math/PMath.sol";
import "../libraries/math/LogExpMath.sol";
import "../StandardizedYield/PYIndex.sol";
import "../libraries/MiniHelpers.sol";
import "../libraries/Errors.sol";
struct MarketState {
int256 totalPt;
int256 totalSy;
int256 totalLp;
address treasury;
/// immutable variables ///
int256 scalarRoot;
uint256 expiry;
/// fee data ///
uint256 lnFeeRateRoot;
uint256 reserveFeePercent; // base 100
/// last trade data ///
uint256 lastLnImpliedRate;
}
// params that are expensive to compute, therefore we pre-compute them
struct MarketPreCompute {
int256 rateScalar;
int256 totalAsset;
int256 rateAnchor;
int256 feeRate;
}
// solhint-disable ordering
library MarketMathCore {
using PMath for uint256;
using PMath for int256;
using LogExpMath for int256;
using PYIndexLib for PYIndex;
int256 internal constant MINIMUM_LIQUIDITY = 10 ** 3;
int256 internal constant PERCENTAGE_DECIMALS = 100;
uint256 internal constant DAY = 86400;
uint256 internal constant IMPLIED_RATE_TIME = 365 * DAY;
int256 internal constant MAX_MARKET_PROPORTION = (1e18 * 96) / 100;
using PMath for uint256;
using PMath for int256;
/*///////////////////////////////////////////////////////////////
UINT FUNCTIONS TO PROXY TO CORE FUNCTIONS
//////////////////////////////////////////////////////////////*/
function addLiquidity(
MarketState memory market,
uint256 syDesired,
uint256 ptDesired,
uint256 blockTime
) internal pure returns (uint256 lpToReserve, uint256 lpToAccount, uint256 syUsed, uint256 ptUsed) {
(int256 _lpToReserve, int256 _lpToAccount, int256 _syUsed, int256 _ptUsed) = addLiquidityCore(
market,
syDesired.Int(),
ptDesired.Int(),
blockTime
);
lpToReserve = _lpToReserve.Uint();
lpToAccount = _lpToAccount.Uint();
syUsed = _syUsed.Uint();
ptUsed = _ptUsed.Uint();
}
function removeLiquidity(
MarketState memory market,
uint256 lpToRemove
) internal pure returns (uint256 netSyToAccount, uint256 netPtToAccount) {
(int256 _syToAccount, int256 _ptToAccount) = removeLiquidityCore(market, lpToRemove.Int());
netSyToAccount = _syToAccount.Uint();
netPtToAccount = _ptToAccount.Uint();
}
function swapExactPtForSy(
MarketState memory market,
PYIndex index,
uint256 exactPtToMarket,
uint256 blockTime
) internal pure returns (uint256 netSyToAccount, uint256 netSyFee, uint256 netSyToReserve) {
(int256 _netSyToAccount, int256 _netSyFee, int256 _netSyToReserve) = executeTradeCore(
market,
index,
exactPtToMarket.neg(),
blockTime
);
netSyToAccount = _netSyToAccount.Uint();
netSyFee = _netSyFee.Uint();
netSyToReserve = _netSyToReserve.Uint();
}
function swapSyForExactPt(
MarketState memory market,
PYIndex index,
uint256 exactPtToAccount,
uint256 blockTime
) internal pure returns (uint256 netSyToMarket, uint256 netSyFee, uint256 netSyToReserve) {
(int256 _netSyToAccount, int256 _netSyFee, int256 _netSyToReserve) = executeTradeCore(
market,
index,
exactPtToAccount.Int(),
blockTime
);
netSyToMarket = _netSyToAccount.neg().Uint();
netSyFee = _netSyFee.Uint();
netSyToReserve = _netSyToReserve.Uint();
}
/*///////////////////////////////////////////////////////////////
CORE FUNCTIONS
//////////////////////////////////////////////////////////////*/
function addLiquidityCore(
MarketState memory market,
int256 syDesired,
int256 ptDesired,
uint256 blockTime
) internal pure returns (int256 lpToReserve, int256 lpToAccount, int256 syUsed, int256 ptUsed) {
/// ------------------------------------------------------------
/// CHECKS
/// ------------------------------------------------------------
if (syDesired == 0 || ptDesired == 0) revert Errors.MarketZeroAmountsInput();
if (MiniHelpers.isExpired(market.expiry, blockTime)) revert Errors.MarketExpired();
/// ------------------------------------------------------------
/// MATH
/// ------------------------------------------------------------
if (market.totalLp == 0) {
lpToAccount = PMath.sqrt((syDesired * ptDesired).Uint()).Int() - MINIMUM_LIQUIDITY;
lpToReserve = MINIMUM_LIQUIDITY;
syUsed = syDesired;
ptUsed = ptDesired;
} else {
int256 netLpByPt = (ptDesired * market.totalLp) / market.totalPt;
int256 netLpBySy = (syDesired * market.totalLp) / market.totalSy;
if (netLpByPt < netLpBySy) {
lpToAccount = netLpByPt;
ptUsed = ptDesired;
syUsed = (market.totalSy * lpToAccount) / market.totalLp;
} else {
lpToAccount = netLpBySy;
syUsed = syDesired;
ptUsed = (market.totalPt * lpToAccount) / market.totalLp;
}
}
if (lpToAccount <= 0) revert Errors.MarketZeroAmountsOutput();
/// ------------------------------------------------------------
/// WRITE
/// ------------------------------------------------------------
market.totalSy += syUsed;
market.totalPt += ptUsed;
market.totalLp += lpToAccount + lpToReserve;
}
function removeLiquidityCore(
MarketState memory market,
int256 lpToRemove
) internal pure returns (int256 netSyToAccount, int256 netPtToAccount) {
/// ------------------------------------------------------------
/// CHECKS
/// ------------------------------------------------------------
if (lpToRemove == 0) revert Errors.MarketZeroAmountsInput();
/// ------------------------------------------------------------
/// MATH
/// ------------------------------------------------------------
netSyToAccount = (lpToRemove * market.totalSy) / market.totalLp;
netPtToAccount = (lpToRemove * market.totalPt) / market.totalLp;
if (netSyToAccount == 0 && netPtToAccount == 0) revert Errors.MarketZeroAmountsOutput();
/// ------------------------------------------------------------
/// WRITE
/// ------------------------------------------------------------
market.totalLp = market.totalLp.subNoNeg(lpToRemove);
market.totalPt = market.totalPt.subNoNeg(netPtToAccount);
market.totalSy = market.totalSy.subNoNeg(netSyToAccount);
}
function executeTradeCore(
MarketState memory market,
PYIndex index,
int256 netPtToAccount,
uint256 blockTime
) internal pure returns (int256 netSyToAccount, int256 netSyFee, int256 netSyToReserve) {
/// ------------------------------------------------------------
/// CHECKS
/// ------------------------------------------------------------
if (MiniHelpers.isExpired(market.expiry, blockTime)) revert Errors.MarketExpired();
if (market.totalPt <= netPtToAccount)
revert Errors.MarketInsufficientPtForTrade(market.totalPt, netPtToAccount);
/// ------------------------------------------------------------
/// MATH
/// ------------------------------------------------------------
MarketPreCompute memory comp = getMarketPreCompute(market, index, blockTime);
(netSyToAccount, netSyFee, netSyToReserve) = calcTrade(market, comp, index, netPtToAccount);
/// ------------------------------------------------------------
/// WRITE
/// ------------------------------------------------------------
_setNewMarketStateTrade(market, comp, index, netPtToAccount, netSyToAccount, netSyToReserve, blockTime);
}
function getMarketPreCompute(
MarketState memory market,
PYIndex index,
uint256 blockTime
) internal pure returns (MarketPreCompute memory res) {
if (MiniHelpers.isExpired(market.expiry, blockTime)) revert Errors.MarketExpired();
uint256 timeToExpiry = market.expiry - blockTime;
res.rateScalar = _getRateScalar(market, timeToExpiry);
res.totalAsset = index.syToAsset(market.totalSy);
if (market.totalPt == 0 || res.totalAsset == 0)
revert Errors.MarketZeroTotalPtOrTotalAsset(market.totalPt, res.totalAsset);
res.rateAnchor = _getRateAnchor(
market.totalPt,
market.lastLnImpliedRate,
res.totalAsset,
res.rateScalar,
timeToExpiry
);
res.feeRate = _getExchangeRateFromImpliedRate(market.lnFeeRateRoot, timeToExpiry);
}
function calcTrade(
MarketState memory market,
MarketPreCompute memory comp,
PYIndex index,
int256 netPtToAccount
) internal pure returns (int256 netSyToAccount, int256 netSyFee, int256 netSyToReserve) {
int256 preFeeExchangeRate = _getExchangeRate(
market.totalPt,
comp.totalAsset,
comp.rateScalar,
comp.rateAnchor,
netPtToAccount
);
int256 preFeeAssetToAccount = netPtToAccount.divDown(preFeeExchangeRate).neg();
int256 fee = comp.feeRate;
if (netPtToAccount > 0) {
int256 postFeeExchangeRate = preFeeExchangeRate.divDown(fee);
if (postFeeExchangeRate < PMath.IONE) revert Errors.MarketExchangeRateBelowOne(postFeeExchangeRate);
fee = preFeeAssetToAccount.mulDown(PMath.IONE - fee);
} else {
fee = ((preFeeAssetToAccount * (PMath.IONE - fee)) / fee).neg();
}
int256 netAssetToReserve = (fee * market.reserveFeePercent.Int()) / PERCENTAGE_DECIMALS;
int256 netAssetToAccount = preFeeAssetToAccount - fee;
netSyToAccount = netAssetToAccount < 0
? index.assetToSyUp(netAssetToAccount)
: index.assetToSy(netAssetToAccount);
netSyFee = index.assetToSy(fee);
netSyToReserve = index.assetToSy(netAssetToReserve);
}
function _setNewMarketStateTrade(
MarketState memory market,
MarketPreCompute memory comp,
PYIndex index,
int256 netPtToAccount,
int256 netSyToAccount,
int256 netSyToReserve,
uint256 blockTime
) internal pure {
uint256 timeToExpiry = market.expiry - blockTime;
market.totalPt = market.totalPt.subNoNeg(netPtToAccount);
market.totalSy = market.totalSy.subNoNeg(netSyToAccount + netSyToReserve);
market.lastLnImpliedRate = _getLnImpliedRate(
market.totalPt,
index.syToAsset(market.totalSy),
comp.rateScalar,
comp.rateAnchor,
timeToExpiry
);
if (market.lastLnImpliedRate == 0) revert Errors.MarketZeroLnImpliedRate();
}
function _getRateAnchor(
int256 totalPt,
uint256 lastLnImpliedRate,
int256 totalAsset,
int256 rateScalar,
uint256 timeToExpiry
) internal pure returns (int256 rateAnchor) {
int256 newExchangeRate = _getExchangeRateFromImpliedRate(lastLnImpliedRate, timeToExpiry);
if (newExchangeRate < PMath.IONE) revert Errors.MarketExchangeRateBelowOne(newExchangeRate);
{
int256 proportion = totalPt.divDown(totalPt + totalAsset);
int256 lnProportion = _logProportion(proportion);
rateAnchor = newExchangeRate - lnProportion.divDown(rateScalar);
}
}
/// @notice Calculates the current market implied rate.
/// @return lnImpliedRate the implied rate
function _getLnImpliedRate(
int256 totalPt,
int256 totalAsset,
int256 rateScalar,
int256 rateAnchor,
uint256 timeToExpiry
) internal pure returns (uint256 lnImpliedRate) {
// This will check for exchange rates < PMath.IONE
int256 exchangeRate = _getExchangeRate(totalPt, totalAsset, rateScalar, rateAnchor, 0);
// exchangeRate >= 1 so its ln >= 0
uint256 lnRate = exchangeRate.ln().Uint();
lnImpliedRate = (lnRate * IMPLIED_RATE_TIME) / timeToExpiry;
}
/// @notice Converts an implied rate to an exchange rate given a time to expiry. The
/// formula is E = e^rt
function _getExchangeRateFromImpliedRate(
uint256 lnImpliedRate,
uint256 timeToExpiry
) internal pure returns (int256 exchangeRate) {
uint256 rt = (lnImpliedRate * timeToExpiry) / IMPLIED_RATE_TIME;
exchangeRate = LogExpMath.exp(rt.Int());
}
function _getExchangeRate(
int256 totalPt,
int256 totalAsset,
int256 rateScalar,
int256 rateAnchor,
int256 netPtToAccount
) internal pure returns (int256 exchangeRate) {
int256 numerator = totalPt.subNoNeg(netPtToAccount);
int256 proportion = (numerator.divDown(totalPt + totalAsset));
if (proportion > MAX_MARKET_PROPORTION)
revert Errors.MarketProportionTooHigh(proportion, MAX_MARKET_PROPORTION);
int256 lnProportion = _logProportion(proportion);
exchangeRate = lnProportion.divDown(rateScalar) + rateAnchor;
if (exchangeRate < PMath.IONE) revert Errors.MarketExchangeRateBelowOne(exchangeRate);
}
function _logProportion(int256 proportion) internal pure returns (int256 res) {
if (proportion == PMath.IONE) revert Errors.MarketProportionMustNotEqualOne();
int256 logitP = proportion.divDown(PMath.IONE - proportion);
res = logitP.ln();
}
function _getRateScalar(MarketState memory market, uint256 timeToExpiry) internal pure returns (int256 rateScalar) {
rateScalar = (market.scalarRoot * IMPLIED_RATE_TIME.Int()) / timeToExpiry.Int();
if (rateScalar <= 0) revert Errors.MarketRateScalarBelowZero(rateScalar);
}
function setInitialLnImpliedRate(
MarketState memory market,
PYIndex index,
int256 initialAnchor,
uint256 blockTime
) internal pure {
/// ------------------------------------------------------------
/// CHECKS
/// ------------------------------------------------------------
if (MiniHelpers.isExpired(market.expiry, blockTime)) revert Errors.MarketExpired();
/// ------------------------------------------------------------
/// MATH
/// ------------------------------------------------------------
int256 totalAsset = index.syToAsset(market.totalSy);
uint256 timeToExpiry = market.expiry - blockTime;
int256 rateScalar = _getRateScalar(market, timeToExpiry);
/// ------------------------------------------------------------
/// WRITE
/// ------------------------------------------------------------
market.lastLnImpliedRate = _getLnImpliedRate(
market.totalPt,
totalAsset,
rateScalar,
initialAnchor,
timeToExpiry
);
}
}
MiniHelpers.sol 16 lines
// SPDX-License-Identifier: GPL-3.0-or-later
pragma solidity ^0.8.0;
library MiniHelpers {
function isCurrentlyExpired(uint256 expiry) internal view returns (bool) {
return (expiry <= block.timestamp);
}
function isExpired(uint256 expiry, uint256 blockTime) internal pure returns (bool) {
return (expiry <= blockTime);
}
function isTimeInThePast(uint256 timestamp) internal view returns (bool) {
return (timestamp <= block.timestamp); // same definition as isCurrentlyExpired
}
}
TokenHelper.sol 71 lines
// SPDX-License-Identifier: GPL-3.0-or-later
pragma solidity ^0.8.0;
import "@openzeppelin/contracts/token/ERC20/extensions/IERC20Metadata.sol";
import "@openzeppelin/contracts/token/ERC20/utils/SafeERC20.sol";
import "../../interfaces/IWETH.sol";
abstract contract TokenHelper {
using SafeERC20 for IERC20;
address internal constant NATIVE = address(0);
uint256 internal constant LOWER_BOUND_APPROVAL = type(uint96).max / 2; // some tokens use 96 bits for approval
function _transferIn(address token, address from, uint256 amount) internal {
if (token == NATIVE) require(msg.value == amount, "eth mismatch");
else if (amount != 0) IERC20(token).safeTransferFrom(from, address(this), amount);
}
function _transferFrom(IERC20 token, address from, address to, uint256 amount) internal {
if (amount != 0) token.safeTransferFrom(from, to, amount);
}
function _transferOut(address token, address to, uint256 amount) internal {
if (amount == 0) return;
if (token == NATIVE) {
(bool success, ) = to.call{value: amount}("");
require(success, "eth send failed");
} else {
IERC20(token).safeTransfer(to, amount);
}
}
function _transferOut(address[] memory tokens, address to, uint256[] memory amounts) internal {
uint256 numTokens = tokens.length;
require(numTokens == amounts.length, "length mismatch");
for (uint256 i = 0; i < numTokens; ) {
_transferOut(tokens[i], to, amounts[i]);
unchecked {
i++;
}
}
}
function _selfBalance(address token) internal view returns (uint256) {
return (token == NATIVE) ? address(this).balance : IERC20(token).balanceOf(address(this));
}
function _selfBalance(IERC20 token) internal view returns (uint256) {
return token.balanceOf(address(this));
}
/// @notice Approves the stipulated contract to spend the given allowance in the given token
/// @dev PLS PAY ATTENTION to tokens that requires the approval to be set to 0 before changing it
function _safeApprove(address token, address to, uint256 value) internal {
(bool success, bytes memory data) = token.call(abi.encodeWithSelector(IERC20.approve.selector, to, value));
require(success && (data.length == 0 || abi.decode(data, (bool))), "Safe Approve");
}
function _safeApproveInf(address token, address to) internal {
if (token == NATIVE) return;
if (IERC20(token).allowance(address(this), to) < LOWER_BOUND_APPROVAL) {
_safeApprove(token, to, 0);
_safeApprove(token, to, type(uint256).max);
}
}
function _wrap_unwrap_ETH(address tokenIn, address tokenOut, uint256 netTokenIn) internal {
if (tokenIn == NATIVE) IWETH(tokenOut).deposit{value: netTokenIn}();
else IWETH(tokenIn).withdraw(netTokenIn);
}
}
IPPrincipalToken.sol 21 lines
// SPDX-License-Identifier: GPL-3.0-or-later
pragma solidity ^0.8.0;
import "@openzeppelin/contracts/token/ERC20/extensions/IERC20Metadata.sol";
interface IPPrincipalToken is IERC20Metadata {
function burnByYT(address user, uint256 amount) external;
function mintByYT(address user, uint256 amount) external;
function initialize(address _YT) external;
function SY() external view returns (address);
function YT() external view returns (address);
function factory() external view returns (address);
function expiry() external view returns (uint256);
function isExpired() external view returns (bool);
}
draft-EIP712.sol 8 lines
// SPDX-License-Identifier: MIT // OpenZeppelin Contracts (last updated v4.8.0) (utils/cryptography/draft-EIP712.sol) pragma solidity ^0.8.0; // EIP-712 is Final as of 2022-08-11. This file is deprecated. import "./EIP712.sol";
PendleERC20Permit.sol 80 lines
// SPDX-License-Identifier: GPL-3.0-or-later
// OpenZeppelin Contracts (last updated v4.6.0) (token/ERC20/ERC20.sol)
pragma solidity ^0.8.0;
import "./PendleERC20.sol";
import "@openzeppelin/contracts/token/ERC20/IERC20.sol";
import "@openzeppelin/contracts/token/ERC20/extensions/IERC20Metadata.sol";
import "@openzeppelin/contracts/utils/Context.sol";
import "@openzeppelin/contracts/token/ERC20/extensions/draft-ERC20Permit.sol";
import "@openzeppelin/contracts/utils/cryptography/draft-EIP712.sol";
import "@openzeppelin/contracts/utils/cryptography/ECDSA.sol";
import "@openzeppelin/contracts/utils/Counters.sol";
/// @dev forked from OZ's ERC20Permit
contract PendleERC20Permit is PendleERC20, IERC20Permit, EIP712 {
using Counters for Counters.Counter;
mapping(address => Counters.Counter) private _nonces;
// solhint-disable-next-line var-name-mixedcase
bytes32 private constant _PERMIT_TYPEHASH =
keccak256("Permit(address owner,address spender,uint256 value,uint256 nonce,uint256 deadline)");
constructor(
string memory name_,
string memory symbol_,
uint8 decimals_
) PendleERC20(name_, symbol_, decimals_) EIP712(name_, "1") {}
/**
* @dev See {IERC20Permit-permit}.
*/
function permit(
address owner,
address spender,
uint256 value,
uint256 deadline,
uint8 v,
bytes32 r,
bytes32 s
) public virtual override {
require(block.timestamp <= deadline, "ERC20Permit: expired deadline");
bytes32 structHash = keccak256(abi.encode(_PERMIT_TYPEHASH, owner, spender, value, _useNonce(owner), deadline));
bytes32 hash = _hashTypedDataV4(structHash);
address signer = ECDSA.recover(hash, v, r, s);
require(signer == owner, "ERC20Permit: invalid signature");
_approve(owner, spender, value);
}
/**
* @dev See {IERC20Permit-nonces}.
*/
function nonces(address owner) public view virtual override returns (uint256) {
return _nonces[owner].current();
}
/**
* @dev See {IERC20Permit-DOMAIN_SEPARATOR}.
*/
// solhint-disable-next-line func-name-mixedcase
function DOMAIN_SEPARATOR() external view override returns (bytes32) {
return _domainSeparatorV4();
}
/**
* @dev "Consume a nonce": return the current value and increment.
*
* _Available since v4.1._
*/
function _useNonce(address owner) internal virtual returns (uint256 current) {
Counters.Counter storage nonce = _nonces[owner];
current = nonce.current();
nonce.increment();
}
}
IPGaugeController.sol 20 lines
// SPDX-License-Identifier: GPL-3.0-or-later
pragma solidity ^0.8.0;
interface IPGaugeController {
event MarketClaimReward(address indexed market, uint256 amount);
event ReceiveVotingResults(uint128 indexed wTime, address[] markets, uint256[] pendleAmounts);
event UpdateMarketReward(address indexed market, uint256 pendlePerSec, uint256 incentiveEndsAt);
function fundPendle(uint256 amount) external;
function withdrawPendle(uint256 amount) external;
function pendle() external returns (address);
function redeemMarketReward() external;
function rewardData(address pool) external view returns (uint128 pendlePerSec, uint128, uint128, uint128);
}
IPMarketFactoryV3.sol 24 lines
// SPDX-License-Identifier: GPL-3.0-or-later
pragma solidity ^0.8.0;
interface IPMarketFactoryV3 {
event SetOverriddenFee(address indexed router, address indexed market, uint80 lnFeeRateRoot);
event CreateNewMarket(
address indexed market,
address indexed PT,
int256 scalarRoot,
int256 initialAnchor,
uint256 lnFeeRateRoot
);
event NewTreasuryAndFeeReserve(address indexed treasury, uint8 reserveFeePercent);
function isValidMarket(address market) external view returns (bool);
// If this is changed, change the readState function in market as well
function getMarketConfig(
address market,
address router
) external view returns (address treasury, uint80 overriddenFee, uint8 reserveFeePercent);
}
PendleMarketV3.sol 360 lines
// SPDX-License-Identifier: GPL-3.0-or-later
pragma solidity ^0.8.17;
import "../../../interfaces/IPMarketV3.sol";
import "../../../interfaces/IPMarketFactoryV3.sol";
import "../../../interfaces/IPMarketSwapCallback.sol";
import "../../erc20/PendleERC20Permit.sol";
import "../PendleGauge.sol";
import "../OracleLib.sol";
/**
Invariance to maintain:
- Internal balances totalPt & totalSy not interfered by people transferring tokens in directly
- address(0) & address(this) should never have any rewards & activeBalance accounting done. This is
guaranteed by address(0) & address(this) check in each updateForTwo function
*/
contract PendleMarketV3 is PendleERC20Permit, PendleGauge, IPMarketV3 {
using PMath for uint256;
using PMath for int256;
using MarketMathCore for MarketState;
using SafeERC20 for IERC20;
using PYIndexLib for IPYieldToken;
using OracleLib for OracleLib.Observation[65535];
struct MarketStorage {
int128 totalPt;
int128 totalSy;
// 1 SLOT = 256 bits
uint96 lastLnImpliedRate;
uint16 observationIndex;
uint16 observationCardinality;
uint16 observationCardinalityNext;
// 1 SLOT = 144 bits
}
string private constant NAME = "Pendle Market";
string private constant SYMBOL = "PENDLE-LPT";
IPPrincipalToken internal immutable PT;
IStandardizedYield internal immutable SY;
IPYieldToken internal immutable YT;
address public immutable factory;
uint256 public immutable expiry;
int256 internal immutable scalarRoot;
int256 internal immutable initialAnchor;
uint80 internal immutable lnFeeRateRoot;
MarketStorage public _storage;
OracleLib.Observation[65535] public observations;
modifier notExpired() {
if (isExpired()) revert Errors.MarketExpired();
_;
}
constructor(
address _PT,
int256 _scalarRoot,
int256 _initialAnchor,
uint80 _lnFeeRateRoot,
address _vePendle,
address _gaugeController
) PendleERC20Permit(NAME, SYMBOL, 18) PendleGauge(IPPrincipalToken(_PT).SY(), _vePendle, _gaugeController) {
PT = IPPrincipalToken(_PT);
SY = IStandardizedYield(PT.SY());
YT = IPYieldToken(PT.YT());
(_storage.observationCardinality, _storage.observationCardinalityNext) = observations.initialize(
uint32(block.timestamp)
);
if (_scalarRoot <= 0) revert Errors.MarketScalarRootBelowZero(_scalarRoot);
scalarRoot = _scalarRoot;
initialAnchor = _initialAnchor;
lnFeeRateRoot = _lnFeeRateRoot;
expiry = IPPrincipalToken(_PT).expiry();
factory = msg.sender;
}
/**
* @notice PendleMarket allows users to provide in PT & SY in exchange for LPs, which
* will grant LP holders more exchange fee over time
* @dev will mint as much LP as possible such that the corresponding SY and PT used do
* not exceed `netSyDesired` and `netPtDesired`, respectively
* @dev PT and SY should be transferred to this contract prior to calling
* @dev will revert if PT is expired
*/
function mint(
address receiver,
uint256 netSyDesired,
uint256 netPtDesired
) external nonReentrant notExpired returns (uint256 netLpOut, uint256 netSyUsed, uint256 netPtUsed) {
MarketState memory market = readState(msg.sender);
PYIndex index = YT.newIndex();
uint256 lpToReserve;
(lpToReserve, netLpOut, netSyUsed, netPtUsed) = market.addLiquidity(
netSyDesired,
netPtDesired,
block.timestamp
);
// initializing the market
if (lpToReserve != 0) {
market.setInitialLnImpliedRate(index, initialAnchor, block.timestamp);
_mint(address(1), lpToReserve);
}
_mint(receiver, netLpOut);
_writeState(market);
if (_selfBalance(SY) < market.totalSy.Uint())
revert Errors.MarketInsufficientSyReceived(_selfBalance(SY), market.totalSy.Uint());
if (_selfBalance(PT) < market.totalPt.Uint())
revert Errors.MarketInsufficientPtReceived(_selfBalance(PT), market.totalPt.Uint());
emit Mint(receiver, netLpOut, netSyUsed, netPtUsed);
}
/**
* @notice LP Holders can burn their LP to receive back SY & PT proportionally
* to their share of the market
*/
function burn(
address receiverSy,
address receiverPt,
uint256 netLpToBurn
) external nonReentrant returns (uint256 netSyOut, uint256 netPtOut) {
MarketState memory market = readState(msg.sender);
_burn(address(this), netLpToBurn);
(netSyOut, netPtOut) = market.removeLiquidity(netLpToBurn);
if (receiverSy != address(this)) IERC20(SY).safeTransfer(receiverSy, netSyOut);
if (receiverPt != address(this)) IERC20(PT).safeTransfer(receiverPt, netPtOut);
_writeState(market);
emit Burn(receiverSy, receiverPt, netLpToBurn, netSyOut, netPtOut);
}
/**
* @notice Pendle Market allows swaps between PT & SY it is holding. This function
* aims to swap an exact amount of PT to SY.
* @dev steps working of this contract
- The outcome amount of SY will be precomputed by MarketMathLib
- Release the calculated amount of SY to receiver
- Callback to msg.sender if data.length > 0
- Ensure exactPtIn amount of PT has been transferred to this address
* @dev will revert if PT is expired
* @param data bytes data to be sent in the callback (if any)
*/
function swapExactPtForSy(
address receiver,
uint256 exactPtIn,
bytes calldata data
) external nonReentrant notExpired returns (uint256 netSyOut, uint256 netSyFee) {
MarketState memory market = readState(msg.sender);
uint256 netSyToReserve;
(netSyOut, netSyFee, netSyToReserve) = market.swapExactPtForSy(YT.newIndex(), exactPtIn, block.timestamp);
if (receiver != address(this)) IERC20(SY).safeTransfer(receiver, netSyOut);
IERC20(SY).safeTransfer(market.treasury, netSyToReserve);
_writeState(market);
if (data.length > 0) {
IPMarketSwapCallback(msg.sender).swapCallback(exactPtIn.neg(), netSyOut.Int(), data);
}
if (_selfBalance(PT) < market.totalPt.Uint())
revert Errors.MarketInsufficientPtReceived(_selfBalance(PT), market.totalPt.Uint());
emit Swap(msg.sender, receiver, exactPtIn.neg(), netSyOut.Int(), netSyFee, netSyToReserve);
}
/**
* @notice Pendle Market allows swaps between PT & SY it is holding. This function
* aims to swap SY for an exact amount of PT.
* @dev steps working of this function
- The exact outcome amount of PT will be transferred to receiver
- Callback to msg.sender if data.length > 0
- Ensure the calculated required amount of SY is transferred to this address
* @dev will revert if PT is expired
* @param data bytes data to be sent in the callback (if any)
*/
function swapSyForExactPt(
address receiver,
uint256 exactPtOut,
bytes calldata data
) external nonReentrant notExpired returns (uint256 netSyIn, uint256 netSyFee) {
MarketState memory market = readState(msg.sender);
uint256 netSyToReserve;
(netSyIn, netSyFee, netSyToReserve) = market.swapSyForExactPt(YT.newIndex(), exactPtOut, block.timestamp);
if (receiver != address(this)) IERC20(PT).safeTransfer(receiver, exactPtOut);
IERC20(SY).safeTransfer(market.treasury, netSyToReserve);
_writeState(market);
if (data.length > 0) {
IPMarketSwapCallback(msg.sender).swapCallback(exactPtOut.Int(), netSyIn.neg(), data);
}
// have received enough SY
if (_selfBalance(SY) < market.totalSy.Uint())
revert Errors.MarketInsufficientSyReceived(_selfBalance(SY), market.totalSy.Uint());
emit Swap(msg.sender, receiver, exactPtOut.Int(), netSyIn.neg(), netSyFee, netSyToReserve);
}
/// @notice forces balances to match reserves
function skim() external nonReentrant {
MarketState memory market = readState(msg.sender);
uint256 excessPt = _selfBalance(PT) - market.totalPt.Uint();
uint256 excessSy = _selfBalance(SY) - market.totalSy.Uint();
if (excessPt != 0) IERC20(PT).safeTransfer(market.treasury, excessPt);
if (excessSy != 0) IERC20(SY).safeTransfer(market.treasury, excessSy);
}
/**
* @notice redeems the user's reward
* @return amount of reward token redeemed, in the same order as `getRewardTokens()`
*/
function redeemRewards(address user) external nonReentrant returns (uint256[] memory) {
return _redeemRewards(user);
}
/// @notice returns the list of reward tokens
function getRewardTokens() external view returns (address[] memory) {
return _getRewardTokens();
}
/*///////////////////////////////////////////////////////////////
ORACLE
//////////////////////////////////////////////////////////////*/
function observe(uint32[] memory secondsAgos) external view returns (uint216[] memory lnImpliedRateCumulative) {
return
observations.observe(
uint32(block.timestamp),
secondsAgos,
_storage.lastLnImpliedRate,
_storage.observationIndex,
_storage.observationCardinality
);
}
function increaseObservationsCardinalityNext(uint16 cardinalityNext) external nonReentrant {
uint16 cardinalityNextOld = _storage.observationCardinalityNext;
uint16 cardinalityNextNew = observations.grow(cardinalityNextOld, cardinalityNext);
if (cardinalityNextOld != cardinalityNextNew) {
_storage.observationCardinalityNext = cardinalityNextNew;
emit IncreaseObservationCardinalityNext(cardinalityNextOld, cardinalityNextNew);
}
}
/*///////////////////////////////////////////////////////////////
READ/WRITE STATES
//////////////////////////////////////////////////////////////*/
/**
* @notice read the state of the market from storage into memory for gas-efficient manipulation
*/
function readState(address router) public view returns (MarketState memory market) {
market.totalPt = _storage.totalPt;
market.totalSy = _storage.totalSy;
market.totalLp = totalSupply().Int();
uint80 overriddenFee;
(market.treasury, overriddenFee, market.reserveFeePercent) = IPMarketFactoryV3(factory).getMarketConfig(
address(this),
router
);
market.lnFeeRateRoot = overriddenFee == 0 ? lnFeeRateRoot : overriddenFee;
market.scalarRoot = scalarRoot;
market.expiry = expiry;
market.lastLnImpliedRate = _storage.lastLnImpliedRate;
}
/// @notice write back the state of the market from memory to storage
function _writeState(MarketState memory market) internal {
uint96 lastLnImpliedRate96 = market.lastLnImpliedRate.Uint96();
int128 totalPt128 = market.totalPt.Int128();
int128 totalSy128 = market.totalSy.Int128();
(uint16 observationIndex, uint16 observationCardinality) = observations.write(
_storage.observationIndex,
uint32(block.timestamp),
_storage.lastLnImpliedRate,
_storage.observationCardinality,
_storage.observationCardinalityNext
);
_storage.totalPt = totalPt128;
_storage.totalSy = totalSy128;
_storage.lastLnImpliedRate = lastLnImpliedRate96;
_storage.observationIndex = observationIndex;
_storage.observationCardinality = observationCardinality;
emit UpdateImpliedRate(block.timestamp, market.lastLnImpliedRate);
}
function getNonOverrideLnFeeRateRoot() external view returns (uint80) {
return lnFeeRateRoot;
}
/*///////////////////////////////////////////////////////////////
TRIVIAL FUNCTIONS
//////////////////////////////////////////////////////////////*/
function readTokens() external view returns (IStandardizedYield _SY, IPPrincipalToken _PT, IPYieldToken _YT) {
_SY = SY;
_PT = PT;
_YT = YT;
}
function isExpired() public view returns (bool) {
return MiniHelpers.isCurrentlyExpired(expiry);
}
/*///////////////////////////////////////////////////////////////
PENDLE GAUGE - RELATED
//////////////////////////////////////////////////////////////*/
function _stakedBalance(address user) internal view override returns (uint256) {
return balanceOf(user);
}
function _totalStaked() internal view override returns (uint256) {
return totalSupply();
}
// solhint-disable-next-line ordering
function _beforeTokenTransfer(
address from,
address to,
uint256 amount
) internal override(PendleERC20, PendleGauge) {
PendleGauge._beforeTokenTransfer(from, to, amount);
}
// solhint-disable-next-line ordering
function _afterTokenTransfer(address from, address to, uint256 amount) internal override(PendleERC20, PendleGauge) {
PendleGauge._afterTokenTransfer(from, to, amount);
}
}
IStandardizedYield.sol 167 lines
// SPDX-License-Identifier: GPL-3.0-or-later
/*
* MIT License
* ===========
*
* Permission is hereby granted, free of charge, to any person obtaining a copy
* of this software and associated documentation files (the "Software"), to deal
* in the Software without restriction, including without limitation the rights
* to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
* copies of the Software, and to permit persons to whom the Software is
* furnished to do so, subject to the following conditions:
*
* The above copyright notice and this permission notice shall be included in all
* copies or substantial portions of the Software.
*
* THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
* IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
* FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
* AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
* LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
* OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
*/
pragma solidity ^0.8.0;
import "@openzeppelin/contracts/token/ERC20/extensions/IERC20Metadata.sol";
interface IStandardizedYield is IERC20Metadata {
/// @dev Emitted when any base tokens is deposited to mint shares
event Deposit(
address indexed caller,
address indexed receiver,
address indexed tokenIn,
uint256 amountDeposited,
uint256 amountSyOut
);
/// @dev Emitted when any shares are redeemed for base tokens
event Redeem(
address indexed caller,
address indexed receiver,
address indexed tokenOut,
uint256 amountSyToRedeem,
uint256 amountTokenOut
);
/// @dev check `assetInfo()` for more information
enum AssetType {
TOKEN,
LIQUIDITY
}
/// @dev Emitted when (`user`) claims their rewards
event ClaimRewards(address indexed user, address[] rewardTokens, uint256[] rewardAmounts);
/**
* @notice mints an amount of shares by depositing a base token.
* @param receiver shares recipient address
* @param tokenIn address of the base tokens to mint shares
* @param amountTokenToDeposit amount of base tokens to be transferred from (`msg.sender`)
* @param minSharesOut reverts if amount of shares minted is lower than this
* @return amountSharesOut amount of shares minted
* @dev Emits a {Deposit} event
*
* Requirements:
* - (`tokenIn`) must be a valid base token.
*/
function deposit(
address receiver,
address tokenIn,
uint256 amountTokenToDeposit,
uint256 minSharesOut
) external payable returns (uint256 amountSharesOut);
/**
* @notice redeems an amount of base tokens by burning some shares
* @param receiver recipient address
* @param amountSharesToRedeem amount of shares to be burned
* @param tokenOut address of the base token to be redeemed
* @param minTokenOut reverts if amount of base token redeemed is lower than this
* @param burnFromInternalBalance if true, burns from balance of `address(this)`, otherwise burns from `msg.sender`
* @return amountTokenOut amount of base tokens redeemed
* @dev Emits a {Redeem} event
*
* Requirements:
* - (`tokenOut`) must be a valid base token.
*/
function redeem(
address receiver,
uint256 amountSharesToRedeem,
address tokenOut,
uint256 minTokenOut,
bool burnFromInternalBalance
) external returns (uint256 amountTokenOut);
/**
* @notice exchangeRate * syBalance / 1e18 must return the asset balance of the account
* @notice vice-versa, if a user uses some amount of tokens equivalent to X asset, the amount of sy
he can mint must be X * exchangeRate / 1e18
* @dev SYUtils's assetToSy & syToAsset should be used instead of raw multiplication
& division
*/
function exchangeRate() external view returns (uint256 res);
/**
* @notice claims reward for (`user`)
* @param user the user receiving their rewards
* @return rewardAmounts an array of reward amounts in the same order as `getRewardTokens`
* @dev
* Emits a `ClaimRewards` event
* See {getRewardTokens} for list of reward tokens
*/
function claimRewards(address user) external returns (uint256[] memory rewardAmounts);
/**
* @notice get the amount of unclaimed rewards for (`user`)
* @param user the user to check for
* @return rewardAmounts an array of reward amounts in the same order as `getRewardTokens`
*/
function accruedRewards(address user) external view returns (uint256[] memory rewardAmounts);
function rewardIndexesCurrent() external returns (uint256[] memory indexes);
function rewardIndexesStored() external view returns (uint256[] memory indexes);
/**
* @notice returns the list of reward token addresses
*/
function getRewardTokens() external view returns (address[] memory);
/**
* @notice returns the address of the underlying yield token
*/
function yieldToken() external view returns (address);
/**
* @notice returns all tokens that can mint this SY
*/
function getTokensIn() external view returns (address[] memory res);
/**
* @notice returns all tokens that can be redeemed by this SY
*/
function getTokensOut() external view returns (address[] memory res);
function isValidTokenIn(address token) external view returns (bool);
function isValidTokenOut(address token) external view returns (bool);
function previewDeposit(
address tokenIn,
uint256 amountTokenToDeposit
) external view returns (uint256 amountSharesOut);
function previewRedeem(
address tokenOut,
uint256 amountSharesToRedeem
) external view returns (uint256 amountTokenOut);
/**
* @notice This function contains information to interpret what the asset is
* @return assetType the type of the asset (0 for ERC20 tokens, 1 for AMM liquidity tokens,
2 for bridged yield bearing tokens like wstETH, rETH on Arbi whose the underlying asset doesn't exist on the chain)
* @return assetAddress the address of the asset
* @return assetDecimals the decimals of the asset
*/
function assetInfo() external view returns (AssetType assetType, address assetAddress, uint8 assetDecimals);
}
PYIndex.sol 50 lines
// SPDX-License-Identifier: GPL-3.0-or-later
pragma solidity ^0.8.0;
import "../../interfaces/IPYieldToken.sol";
import "../../interfaces/IPPrincipalToken.sol";
import "./SYUtils.sol";
import "../libraries/math/PMath.sol";
type PYIndex is uint256;
library PYIndexLib {
using PMath for uint256;
using PMath for int256;
function newIndex(IPYieldToken YT) internal returns (PYIndex) {
return PYIndex.wrap(YT.pyIndexCurrent());
}
function syToAsset(PYIndex index, uint256 syAmount) internal pure returns (uint256) {
return SYUtils.syToAsset(PYIndex.unwrap(index), syAmount);
}
function assetToSy(PYIndex index, uint256 assetAmount) internal pure returns (uint256) {
return SYUtils.assetToSy(PYIndex.unwrap(index), assetAmount);
}
function assetToSyUp(PYIndex index, uint256 assetAmount) internal pure returns (uint256) {
return SYUtils.assetToSyUp(PYIndex.unwrap(index), assetAmount);
}
function syToAssetUp(PYIndex index, uint256 syAmount) internal pure returns (uint256) {
uint256 _index = PYIndex.unwrap(index);
return SYUtils.syToAssetUp(_index, syAmount);
}
function syToAsset(PYIndex index, int256 syAmount) internal pure returns (int256) {
int256 sign = syAmount < 0 ? int256(-1) : int256(1);
return sign * (SYUtils.syToAsset(PYIndex.unwrap(index), syAmount.abs())).Int();
}
function assetToSy(PYIndex index, int256 assetAmount) internal pure returns (int256) {
int256 sign = assetAmount < 0 ? int256(-1) : int256(1);
return sign * (SYUtils.assetToSy(PYIndex.unwrap(index), assetAmount.abs())).Int();
}
function assetToSyUp(PYIndex index, int256 assetAmount) internal pure returns (int256) {
int256 sign = assetAmount < 0 ? int256(-1) : int256(1);
return sign * (SYUtils.assetToSyUp(PYIndex.unwrap(index), assetAmount.abs())).Int();
}
}
SYUtils.sol 22 lines
// SPDX-License-Identifier: GPL-3.0-or-later
pragma solidity ^0.8.0;
library SYUtils {
uint256 internal constant ONE = 1e18;
function syToAsset(uint256 exchangeRate, uint256 syAmount) internal pure returns (uint256) {
return (syAmount * exchangeRate) / ONE;
}
function syToAssetUp(uint256 exchangeRate, uint256 syAmount) internal pure returns (uint256) {
return (syAmount * exchangeRate + ONE - 1) / ONE;
}
function assetToSy(uint256 exchangeRate, uint256 assetAmount) internal pure returns (uint256) {
return (assetAmount * ONE) / exchangeRate;
}
function assetToSyUp(uint256 exchangeRate, uint256 assetAmount) internal pure returns (uint256) {
return (assetAmount * ONE + exchangeRate - 1) / exchangeRate;
}
}
LogExpMath.sol 495 lines
// SPDX-License-Identifier: GPL-3.0-or-later
// Permission is hereby granted, free of charge, to any person obtaining a copy of this software and associated
// documentation files (the “Software”), to deal in the Software without restriction, including without limitation the
// rights to use, copy, modify, merge, publish, distribute, sublicense, and/or sell copies of the Software, and to
// permit persons to whom the Software is furnished to do so, subject to the following conditions:
// The above copyright notice and this permission notice shall be included in all copies or substantial portions of the
// Software.
// THE SOFTWARE IS PROVIDED “AS IS”, WITHOUT WARRANTY OF ANY KIND, EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE
// WARRANTIES OF MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR
// COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR
// OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE SOFTWARE.
pragma solidity ^0.8.0;
/* solhint-disable */
/**
* @dev Exponentiation and logarithm functions for 18 decimal fixed point numbers (both base and exponent/argument).
*
* Exponentiation and logarithm with arbitrary bases (x^y and log_x(y)) are implemented by conversion to natural
* exponentiation and logarithm (where the base is Euler's number).
*
* @author Fernando Martinelli - @fernandomartinelli
* @author Sergio Yuhjtman - @sergioyuhjtman
* @author Daniel Fernandez - @dmf7z
*/
library LogExpMath {
// All fixed point multiplications and divisions are inlined. This means we need to divide by ONE when multiplying
// two numbers, and multiply by ONE when dividing them.
// All arguments and return values are 18 decimal fixed point numbers.
int256 constant ONE_18 = 1e18;
// Internally, intermediate values are computed with higher precision as 20 decimal fixed point numbers, and in the
// case of ln36, 36 decimals.
int256 constant ONE_20 = 1e20;
int256 constant ONE_36 = 1e36;
// The domain of natural exponentiation is bound by the word size and number of decimals used.
//
// Because internally the result will be stored using 20 decimals, the largest possible result is
// (2^255 - 1) / 10^20, which makes the largest exponent ln((2^255 - 1) / 10^20) = 130.700829182905140221.
// The smallest possible result is 10^(-18), which makes largest negative argument
// ln(10^(-18)) = -41.446531673892822312.
// We use 130.0 and -41.0 to have some safety margin.
int256 constant MAX_NATURAL_EXPONENT = 130e18;
int256 constant MIN_NATURAL_EXPONENT = -41e18;
// Bounds for ln_36's argument. Both ln(0.9) and ln(1.1) can be represented with 36 decimal places in a fixed point
// 256 bit integer.
int256 constant LN_36_LOWER_BOUND = ONE_18 - 1e17;
int256 constant LN_36_UPPER_BOUND = ONE_18 + 1e17;
uint256 constant MILD_EXPONENT_BOUND = 2 ** 254 / uint256(ONE_20);
// 18 decimal constants
int256 constant x0 = 128000000000000000000; // 2ˆ7
int256 constant a0 = 38877084059945950922200000000000000000000000000000000000; // eˆ(x0) (no decimals)
int256 constant x1 = 64000000000000000000; // 2ˆ6
int256 constant a1 = 6235149080811616882910000000; // eˆ(x1) (no decimals)
// 20 decimal constants
int256 constant x2 = 3200000000000000000000; // 2ˆ5
int256 constant a2 = 7896296018268069516100000000000000; // eˆ(x2)
int256 constant x3 = 1600000000000000000000; // 2ˆ4
int256 constant a3 = 888611052050787263676000000; // eˆ(x3)
int256 constant x4 = 800000000000000000000; // 2ˆ3
int256 constant a4 = 298095798704172827474000; // eˆ(x4)
int256 constant x5 = 400000000000000000000; // 2ˆ2
int256 constant a5 = 5459815003314423907810; // eˆ(x5)
int256 constant x6 = 200000000000000000000; // 2ˆ1
int256 constant a6 = 738905609893065022723; // eˆ(x6)
int256 constant x7 = 100000000000000000000; // 2ˆ0
int256 constant a7 = 271828182845904523536; // eˆ(x7)
int256 constant x8 = 50000000000000000000; // 2ˆ-1
int256 constant a8 = 164872127070012814685; // eˆ(x8)
int256 constant x9 = 25000000000000000000; // 2ˆ-2
int256 constant a9 = 128402541668774148407; // eˆ(x9)
int256 constant x10 = 12500000000000000000; // 2ˆ-3
int256 constant a10 = 113314845306682631683; // eˆ(x10)
int256 constant x11 = 6250000000000000000; // 2ˆ-4
int256 constant a11 = 106449445891785942956; // eˆ(x11)
/**
* @dev Natural exponentiation (e^x) with signed 18 decimal fixed point exponent.
*
* Reverts if `x` is smaller than MIN_NATURAL_EXPONENT, or larger than `MAX_NATURAL_EXPONENT`.
*/
function exp(int256 x) internal pure returns (int256) {
unchecked {
require(x >= MIN_NATURAL_EXPONENT && x <= MAX_NATURAL_EXPONENT, "Invalid exponent");
if (x < 0) {
// We only handle positive exponents: e^(-x) is computed as 1 / e^x. We can safely make x positive since it
// fits in the signed 256 bit range (as it is larger than MIN_NATURAL_EXPONENT).
// Fixed point division requires multiplying by ONE_18.
return ((ONE_18 * ONE_18) / exp(-x));
}
// First, we use the fact that e^(x+y) = e^x * e^y to decompose x into a sum of powers of two, which we call x_n,
// where x_n == 2^(7 - n), and e^x_n = a_n has been precomputed. We choose the first x_n, x0, to equal 2^7
// because all larger powers are larger than MAX_NATURAL_EXPONENT, and therefore not present in the
// decomposition.
// At the end of this process we will have the product of all e^x_n = a_n that apply, and the remainder of this
// decomposition, which will be lower than the smallest x_n.
// exp(x) = k_0 * a_0 * k_1 * a_1 * ... + k_n * a_n * exp(remainder), where each k_n equals either 0 or 1.
// We mutate x by subtracting x_n, making it the remainder of the decomposition.
// The first two a_n (e^(2^7) and e^(2^6)) are too large if stored as 18 decimal numbers, and could cause
// intermediate overflows. Instead we store them as plain integers, with 0 decimals.
// Additionally, x0 + x1 is larger than MAX_NATURAL_EXPONENT, which means they will not both be present in the
// decomposition.
// For each x_n, we test if that term is present in the decomposition (if x is larger than it), and if so deduct
// it and compute the accumulated product.
int256 firstAN;
if (x >= x0) {
x -= x0;
firstAN = a0;
} else if (x >= x1) {
x -= x1;
firstAN = a1;
} else {
firstAN = 1; // One with no decimal places
}
// We now transform x into a 20 decimal fixed point number, to have enhanced precision when computing the
// smaller terms.
x *= 100;
// `product` is the accumulated product of all a_n (except a0 and a1), which starts at 20 decimal fixed point
// one. Recall that fixed point multiplication requires dividing by ONE_20.
int256 product = ONE_20;
if (x >= x2) {
x -= x2;
product = (product * a2) / ONE_20;
}
if (x >= x3) {
x -= x3;
product = (product * a3) / ONE_20;
}
if (x >= x4) {
x -= x4;
product = (product * a4) / ONE_20;
}
if (x >= x5) {
x -= x5;
product = (product * a5) / ONE_20;
}
if (x >= x6) {
x -= x6;
product = (product * a6) / ONE_20;
}
if (x >= x7) {
x -= x7;
product = (product * a7) / ONE_20;
}
if (x >= x8) {
x -= x8;
product = (product * a8) / ONE_20;
}
if (x >= x9) {
x -= x9;
product = (product * a9) / ONE_20;
}
// x10 and x11 are unnecessary here since we have high enough precision already.
// Now we need to compute e^x, where x is small (in particular, it is smaller than x9). We use the Taylor series
// expansion for e^x: 1 + x + (x^2 / 2!) + (x^3 / 3!) + ... + (x^n / n!).
int256 seriesSum = ONE_20; // The initial one in the sum, with 20 decimal places.
int256 term; // Each term in the sum, where the nth term is (x^n / n!).
// The first term is simply x.
term = x;
seriesSum += term;
// Each term (x^n / n!) equals the previous one times x, divided by n. Since x is a fixed point number,
// multiplying by it requires dividing by ONE_20, but dividing by the non-fixed point n values does not.
term = ((term * x) / ONE_20) / 2;
seriesSum += term;
term = ((term * x) / ONE_20) / 3;
seriesSum += term;
term = ((term * x) / ONE_20) / 4;
seriesSum += term;
term = ((term * x) / ONE_20) / 5;
seriesSum += term;
term = ((term * x) / ONE_20) / 6;
seriesSum += term;
term = ((term * x) / ONE_20) / 7;
seriesSum += term;
term = ((term * x) / ONE_20) / 8;
seriesSum += term;
term = ((term * x) / ONE_20) / 9;
seriesSum += term;
term = ((term * x) / ONE_20) / 10;
seriesSum += term;
term = ((term * x) / ONE_20) / 11;
seriesSum += term;
term = ((term * x) / ONE_20) / 12;
seriesSum += term;
// 12 Taylor terms are sufficient for 18 decimal precision.
// We now have the first a_n (with no decimals), and the product of all other a_n present, and the Taylor
// approximation of the exponentiation of the remainder (both with 20 decimals). All that remains is to multiply
// all three (one 20 decimal fixed point multiplication, dividing by ONE_20, and one integer multiplication),
// and then drop two digits to return an 18 decimal value.
return (((product * seriesSum) / ONE_20) * firstAN) / 100;
}
}
/**
* @dev Natural logarithm (ln(a)) with signed 18 decimal fixed point argument.
*/
function ln(int256 a) internal pure returns (int256) {
unchecked {
// The real natural logarithm is not defined for negative numbers or zero.
require(a > 0, "out of bounds");
if (LN_36_LOWER_BOUND < a && a < LN_36_UPPER_BOUND) {
return _ln_36(a) / ONE_18;
} else {
return _ln(a);
}
}
}
/**
* @dev Exponentiation (x^y) with unsigned 18 decimal fixed point base and exponent.
*
* Reverts if ln(x) * y is smaller than `MIN_NATURAL_EXPONENT`, or larger than `MAX_NATURAL_EXPONENT`.
*/
function pow(uint256 x, uint256 y) internal pure returns (uint256) {
unchecked {
if (y == 0) {
// We solve the 0^0 indetermination by making it equal one.
return uint256(ONE_18);
}
if (x == 0) {
return 0;
}
// Instead of computing x^y directly, we instead rely on the properties of logarithms and exponentiation to
// arrive at that r`esult. In particular, exp(ln(x)) = x, and ln(x^y) = y * ln(x). This means
// x^y = exp(y * ln(x)).
// The ln function takes a signed value, so we need to make sure x fits in the signed 256 bit range.
require(x < 2 ** 255, "x out of bounds");
int256 x_int256 = int256(x);
// We will compute y * ln(x) in a single step. Depending on the value of x, we can either use ln or ln_36. In
// both cases, we leave the division by ONE_18 (due to fixed point multiplication) to the end.
// This prevents y * ln(x) from overflowing, and at the same time guarantees y fits in the signed 256 bit range.
require(y < MILD_EXPONENT_BOUND, "y out of bounds");
int256 y_int256 = int256(y);
int256 logx_times_y;
if (LN_36_LOWER_BOUND < x_int256 && x_int256 < LN_36_UPPER_BOUND) {
int256 ln_36_x = _ln_36(x_int256);
// ln_36_x has 36 decimal places, so multiplying by y_int256 isn't as straightforward, since we can't just
// bring y_int256 to 36 decimal places, as it might overflow. Instead, we perform two 18 decimal
// multiplications and add the results: one with the first 18 decimals of ln_36_x, and one with the
// (downscaled) last 18 decimals.
logx_times_y = ((ln_36_x / ONE_18) * y_int256 + ((ln_36_x % ONE_18) * y_int256) / ONE_18);
} else {
logx_times_y = _ln(x_int256) * y_int256;
}
logx_times_y /= ONE_18;
// Finally, we compute exp(y * ln(x)) to arrive at x^y
require(
MIN_NATURAL_EXPONENT <= logx_times_y && logx_times_y <= MAX_NATURAL_EXPONENT,
"product out of bounds"
);
return uint256(exp(logx_times_y));
}
}
/**
* @dev Internal natural logarithm (ln(a)) with signed 18 decimal fixed point argument.
*/
function _ln(int256 a) private pure returns (int256) {
unchecked {
if (a < ONE_18) {
// Since ln(a^k) = k * ln(a), we can compute ln(a) as ln(a) = ln((1/a)^(-1)) = - ln((1/a)). If a is less
// than one, 1/a will be greater than one, and this if statement will not be entered in the recursive call.
// Fixed point division requires multiplying by ONE_18.
return (-_ln((ONE_18 * ONE_18) / a));
}
// First, we use the fact that ln^(a * b) = ln(a) + ln(b) to decompose ln(a) into a sum of powers of two, which
// we call x_n, where x_n == 2^(7 - n), which are the natural logarithm of precomputed quantities a_n (that is,
// ln(a_n) = x_n). We choose the first x_n, x0, to equal 2^7 because the exponential of all larger powers cannot
// be represented as 18 fixed point decimal numbers in 256 bits, and are therefore larger than a.
// At the end of this process we will have the sum of all x_n = ln(a_n) that apply, and the remainder of this
// decomposition, which will be lower than the smallest a_n.
// ln(a) = k_0 * x_0 + k_1 * x_1 + ... + k_n * x_n + ln(remainder), where each k_n equals either 0 or 1.
// We mutate a by subtracting a_n, making it the remainder of the decomposition.
// For reasons related to how `exp` works, the first two a_n (e^(2^7) and e^(2^6)) are not stored as fixed point
// numbers with 18 decimals, but instead as plain integers with 0 decimals, so we need to multiply them by
// ONE_18 to convert them to fixed point.
// For each a_n, we test if that term is present in the decomposition (if a is larger than it), and if so divide
// by it and compute the accumulated sum.
int256 sum = 0;
if (a >= a0 * ONE_18) {
a /= a0; // Integer, not fixed point division
sum += x0;
}
if (a >= a1 * ONE_18) {
a /= a1; // Integer, not fixed point division
sum += x1;
}
// All other a_n and x_n are stored as 20 digit fixed point numbers, so we convert the sum and a to this format.
sum *= 100;
a *= 100;
// Because further a_n are 20 digit fixed point numbers, we multiply by ONE_20 when dividing by them.
if (a >= a2) {
a = (a * ONE_20) / a2;
sum += x2;
}
if (a >= a3) {
a = (a * ONE_20) / a3;
sum += x3;
}
if (a >= a4) {
a = (a * ONE_20) / a4;
sum += x4;
}
if (a >= a5) {
a = (a * ONE_20) / a5;
sum += x5;
}
if (a >= a6) {
a = (a * ONE_20) / a6;
sum += x6;
}
if (a >= a7) {
a = (a * ONE_20) / a7;
sum += x7;
}
if (a >= a8) {
a = (a * ONE_20) / a8;
sum += x8;
}
if (a >= a9) {
a = (a * ONE_20) / a9;
sum += x9;
}
if (a >= a10) {
a = (a * ONE_20) / a10;
sum += x10;
}
if (a >= a11) {
a = (a * ONE_20) / a11;
sum += x11;
}
// a is now a small number (smaller than a_11, which roughly equals 1.06). This means we can use a Taylor series
// that converges rapidly for values of `a` close to one - the same one used in ln_36.
// Let z = (a - 1) / (a + 1).
// ln(a) = 2 * (z + z^3 / 3 + z^5 / 5 + z^7 / 7 + ... + z^(2 * n + 1) / (2 * n + 1))
// Recall that 20 digit fixed point division requires multiplying by ONE_20, and multiplication requires
// division by ONE_20.
int256 z = ((a - ONE_20) * ONE_20) / (a + ONE_20);
int256 z_squared = (z * z) / ONE_20;
// num is the numerator of the series: the z^(2 * n + 1) term
int256 num = z;
// seriesSum holds the accumulated sum of each term in the series, starting with the initial z
int256 seriesSum = num;
// In each step, the numerator is multiplied by z^2
num = (num * z_squared) / ONE_20;
seriesSum += num / 3;
num = (num * z_squared) / ONE_20;
seriesSum += num / 5;
num = (num * z_squared) / ONE_20;
seriesSum += num / 7;
num = (num * z_squared) / ONE_20;
seriesSum += num / 9;
num = (num * z_squared) / ONE_20;
seriesSum += num / 11;
// 6 Taylor terms are sufficient for 36 decimal precision.
// Finally, we multiply by 2 (non fixed point) to compute ln(remainder)
seriesSum *= 2;
// We now have the sum of all x_n present, and the Taylor approximation of the logarithm of the remainder (both
// with 20 decimals). All that remains is to sum these two, and then drop two digits to return a 18 decimal
// value.
return (sum + seriesSum) / 100;
}
}
/**
* @dev Intrnal high precision (36 decimal places) natural logarithm (ln(x)) with signed 18 decimal fixed point argument,
* for x close to one.
*
* Should only be used if x is between LN_36_LOWER_BOUND and LN_36_UPPER_BOUND.
*/
function _ln_36(int256 x) private pure returns (int256) {
unchecked {
// Since ln(1) = 0, a value of x close to one will yield a very small result, which makes using 36 digits
// worthwhile.
// First, we transform x to a 36 digit fixed point value.
x *= ONE_18;
// We will use the following Taylor expansion, which converges very rapidly. Let z = (x - 1) / (x + 1).
// ln(x) = 2 * (z + z^3 / 3 + z^5 / 5 + z^7 / 7 + ... + z^(2 * n + 1) / (2 * n + 1))
// Recall that 36 digit fixed point division requires multiplying by ONE_36, and multiplication requires
// division by ONE_36.
int256 z = ((x - ONE_36) * ONE_36) / (x + ONE_36);
int256 z_squared = (z * z) / ONE_36;
// num is the numerator of the series: the z^(2 * n + 1) term
int256 num = z;
// seriesSum holds the accumulated sum of each term in the series, starting with the initial z
int256 seriesSum = num;
// In each step, the numerator is multiplied by z^2
num = (num * z_squared) / ONE_36;
seriesSum += num / 3;
num = (num * z_squared) / ONE_36;
seriesSum += num / 5;
num = (num * z_squared) / ONE_36;
seriesSum += num / 7;
num = (num * z_squared) / ONE_36;
seriesSum += num / 9;
num = (num * z_squared) / ONE_36;
seriesSum += num / 11;
num = (num * z_squared) / ONE_36;
seriesSum += num / 13;
num = (num * z_squared) / ONE_36;
seriesSum += num / 15;
// 8 Taylor terms are sufficient for 36 decimal precision.
// All that remains is multiplying by 2 (non fixed point).
return seriesSum * 2;
}
}
}
IPInterestManagerYT.sol 8 lines
// SPDX-License-Identifier: GPL-3.0-or-later
pragma solidity ^0.8.0;
interface IPInterestManagerYT {
event CollectInterestFee(uint256 amountInterestFee);
function userInterest(address user) external view returns (uint128 lastPYIndex, uint128 accruedInterest);
}
ERC20Permit.sol 95 lines
// SPDX-License-Identifier: MIT
// OpenZeppelin Contracts (last updated v4.9.0) (token/ERC20/extensions/ERC20Permit.sol)
pragma solidity ^0.8.0;
import "./IERC20Permit.sol";
import "../ERC20.sol";
import "../../../utils/cryptography/ECDSA.sol";
import "../../../utils/cryptography/EIP712.sol";
import "../../../utils/Counters.sol";
/**
* @dev Implementation of the ERC20 Permit extension allowing approvals to be made via signatures, as defined in
* https://eips.ethereum.org/EIPS/eip-2612[EIP-2612].
*
* Adds the {permit} method, which can be used to change an account's ERC20 allowance (see {IERC20-allowance}) by
* presenting a message signed by the account. By not relying on `{IERC20-approve}`, the token holder account doesn't
* need to send a transaction, and thus is not required to hold Ether at all.
*
* _Available since v3.4._
*/
abstract contract ERC20Permit is ERC20, IERC20Permit, EIP712 {
using Counters for Counters.Counter;
mapping(address => Counters.Counter) private _nonces;
// solhint-disable-next-line var-name-mixedcase
bytes32 private constant _PERMIT_TYPEHASH =
keccak256("Permit(address owner,address spender,uint256 value,uint256 nonce,uint256 deadline)");
/**
* @dev In previous versions `_PERMIT_TYPEHASH` was declared as `immutable`.
* However, to ensure consistency with the upgradeable transpiler, we will continue
* to reserve a slot.
* @custom:oz-renamed-from _PERMIT_TYPEHASH
*/
// solhint-disable-next-line var-name-mixedcase
bytes32 private _PERMIT_TYPEHASH_DEPRECATED_SLOT;
/**
* @dev Initializes the {EIP712} domain separator using the `name` parameter, and setting `version` to `"1"`.
*
* It's a good idea to use the same `name` that is defined as the ERC20 token name.
*/
constructor(string memory name) EIP712(name, "1") {}
/**
* @dev See {IERC20Permit-permit}.
*/
function permit(
address owner,
address spender,
uint256 value,
uint256 deadline,
uint8 v,
bytes32 r,
bytes32 s
) public virtual override {
require(block.timestamp <= deadline, "ERC20Permit: expired deadline");
bytes32 structHash = keccak256(abi.encode(_PERMIT_TYPEHASH, owner, spender, value, _useNonce(owner), deadline));
bytes32 hash = _hashTypedDataV4(structHash);
address signer = ECDSA.recover(hash, v, r, s);
require(signer == owner, "ERC20Permit: invalid signature");
_approve(owner, spender, value);
}
/**
* @dev See {IERC20Permit-nonces}.
*/
function nonces(address owner) public view virtual override returns (uint256) {
return _nonces[owner].current();
}
/**
* @dev See {IERC20Permit-DOMAIN_SEPARATOR}.
*/
// solhint-disable-next-line func-name-mixedcase
function DOMAIN_SEPARATOR() external view override returns (bytes32) {
return _domainSeparatorV4();
}
/**
* @dev "Consume a nonce": return the current value and increment.
*
* _Available since v4.1._
*/
function _useNonce(address owner) internal virtual returns (uint256 current) {
Counters.Counter storage nonce = _nonces[owner];
current = nonce.current();
nonce.increment();
}
}
IPMarketSwapCallback.sol 6 lines
// SPDX-License-Identifier: GPL-3.0-or-later
pragma solidity ^0.8.0;
interface IPMarketSwapCallback {
function swapCallback(int256 ptToAccount, int256 syToAccount, bytes calldata data) external;
}
IERC20Permit.sol 60 lines
// SPDX-License-Identifier: MIT
// OpenZeppelin Contracts (last updated v4.9.0) (token/ERC20/extensions/IERC20Permit.sol)
pragma solidity ^0.8.0;
/**
* @dev Interface of the ERC20 Permit extension allowing approvals to be made via signatures, as defined in
* https://eips.ethereum.org/EIPS/eip-2612[EIP-2612].
*
* Adds the {permit} method, which can be used to change an account's ERC20 allowance (see {IERC20-allowance}) by
* presenting a message signed by the account. By not relying on {IERC20-approve}, the token holder account doesn't
* need to send a transaction, and thus is not required to hold Ether at all.
*/
interface IERC20Permit {
/**
* @dev Sets `value` as the allowance of `spender` over ``owner``'s tokens,
* given ``owner``'s signed approval.
*
* IMPORTANT: The same issues {IERC20-approve} has related to transaction
* ordering also apply here.
*
* Emits an {Approval} event.
*
* Requirements:
*
* - `spender` cannot be the zero address.
* - `deadline` must be a timestamp in the future.
* - `v`, `r` and `s` must be a valid `secp256k1` signature from `owner`
* over the EIP712-formatted function arguments.
* - the signature must use ``owner``'s current nonce (see {nonces}).
*
* For more information on the signature format, see the
* https://eips.ethereum.org/EIPS/eip-2612#specification[relevant EIP
* section].
*/
function permit(
address owner,
address spender,
uint256 value,
uint256 deadline,
uint8 v,
bytes32 r,
bytes32 s
) external;
/**
* @dev Returns the current nonce for `owner`. This value must be
* included whenever a signature is generated for {permit}.
*
* Every successful call to {permit} increases ``owner``'s nonce by one. This
* prevents a signature from being used multiple times.
*/
function nonces(address owner) external view returns (uint256);
/**
* @dev Returns the domain separator used in the encoding of the signature for {permit}, as defined by {EIP712}.
*/
// solhint-disable-next-line func-name-mixedcase
function DOMAIN_SEPARATOR() external view returns (bytes32);
}
RewardManager.sol 82 lines
// SPDX-License-Identifier: GPL-3.0-or-later
pragma solidity ^0.8.0;
import "./RewardManagerAbstract.sol";
/// NOTE: This RewardManager is used with SY & YTv2 & PendleMarket. For YTv1, it will use RewardManagerAbstract
/// NOTE: RewardManager must not have duplicated rewardTokens
abstract contract RewardManager is RewardManagerAbstract {
using PMath for uint256;
using ArrayLib for uint256[];
uint256 public lastRewardBlock;
mapping(address => RewardState) public rewardState;
function _updateRewardIndex()
internal
virtual
override
returns (address[] memory tokens, uint256[] memory indexes)
{
tokens = _getRewardTokens();
indexes = new uint256[](tokens.length);
if (tokens.length == 0) return (tokens, indexes);
if (lastRewardBlock != block.number) {
// if we have not yet update the index for this block
lastRewardBlock = block.number;
uint256 totalShares = _rewardSharesTotal();
_redeemExternalReward();
for (uint256 i = 0; i < tokens.length; ++i) {
address token = tokens[i];
// the entire token balance of the contract must be the rewards of the contract
RewardState memory _state = rewardState[token];
(uint256 lastBalance, uint256 index) = (_state.lastBalance, _state.index);
uint256 accrued = _selfBalance(tokens[i]) - lastBalance;
if (index == 0) index = INITIAL_REWARD_INDEX;
if (totalShares != 0) index += accrued.divDown(totalShares);
rewardState[token] = RewardState({
index: index.Uint128(),
lastBalance: (lastBalance + accrued).Uint128()
});
indexes[i] = index;
}
} else {
for (uint256 i = 0; i < tokens.length; i++) {
indexes[i] = rewardState[tokens[i]].index;
}
}
}
/// @dev this function doesn't need redeemExternal since redeemExternal is bundled in updateRewardIndex
/// @dev this function also has to update rewardState.lastBalance
function _doTransferOutRewards(
address user,
address receiver
) internal virtual override returns (uint256[] memory rewardAmounts) {
address[] memory tokens = _getRewardTokens();
rewardAmounts = new uint256[](tokens.length);
for (uint256 i = 0; i < tokens.length; i++) {
rewardAmounts[i] = userReward[tokens[i]][user].accrued;
if (rewardAmounts[i] != 0) {
userReward[tokens[i]][user].accrued = 0;
rewardState[tokens[i]].lastBalance -= rewardAmounts[i].Uint128();
_transferOut(tokens[i], receiver, rewardAmounts[i]);
}
}
}
function _getRewardTokens() internal view virtual returns (address[] memory);
function _rewardSharesTotal() internal view virtual returns (uint256);
}
IERC20Metadata.sol 28 lines
// SPDX-License-Identifier: MIT
// OpenZeppelin Contracts v4.4.1 (token/ERC20/extensions/IERC20Metadata.sol)
pragma solidity ^0.8.0;
import "../IERC20.sol";
/**
* @dev Interface for the optional metadata functions from the ERC20 standard.
*
* _Available since v4.1._
*/
interface IERC20Metadata is IERC20 {
/**
* @dev Returns the name of the token.
*/
function name() external view returns (string memory);
/**
* @dev Returns the symbol of the token.
*/
function symbol() external view returns (string memory);
/**
* @dev Returns the decimals places of the token.
*/
function decimals() external view returns (uint8);
}
draft-ERC20Permit.sol 8 lines
// SPDX-License-Identifier: MIT // OpenZeppelin Contracts (last updated v4.9.0) (token/ERC20/extensions/draft-ERC20Permit.sol) pragma solidity ^0.8.0; // EIP-2612 is Final as of 2022-11-01. This file is deprecated. import "./ERC20Permit.sol";
RewardManagerAbstract.sol 78 lines
// SPDX-License-Identifier: GPL-3.0-or-later
pragma solidity ^0.8.0;
import "../../interfaces/IRewardManager.sol";
import "../libraries/ArrayLib.sol";
import "../libraries/TokenHelper.sol";
import "../libraries/math/PMath.sol";
import "./RewardManagerAbstract.sol";
/// NOTE: RewardManager must not have duplicated rewardTokens
abstract contract RewardManagerAbstract is IRewardManager, TokenHelper {
using PMath for uint256;
uint256 internal constant INITIAL_REWARD_INDEX = 1;
struct RewardState {
uint128 index;
uint128 lastBalance;
}
struct UserReward {
uint128 index;
uint128 accrued;
}
// [token] => [user] => (index,accrued)
mapping(address => mapping(address => UserReward)) public userReward;
function _updateAndDistributeRewards(address user) internal virtual {
_updateAndDistributeRewardsForTwo(user, address(0));
}
function _updateAndDistributeRewardsForTwo(address user1, address user2) internal virtual {
(address[] memory tokens, uint256[] memory indexes) = _updateRewardIndex();
if (tokens.length == 0) return;
if (user1 != address(0) && user1 != address(this)) _distributeRewardsPrivate(user1, tokens, indexes);
if (user2 != address(0) && user2 != address(this)) _distributeRewardsPrivate(user2, tokens, indexes);
}
// should only be callable from `_updateAndDistributeRewardsForTwo` to guarantee user != address(0) && user != address(this)
function _distributeRewardsPrivate(address user, address[] memory tokens, uint256[] memory indexes) private {
assert(user != address(0) && user != address(this));
uint256 userShares = _rewardSharesUser(user);
for (uint256 i = 0; i < tokens.length; ++i) {
address token = tokens[i];
uint256 index = indexes[i];
uint256 userIndex = userReward[token][user].index;
if (userIndex == 0) {
userIndex = INITIAL_REWARD_INDEX.Uint128();
}
if (userIndex == index) continue;
uint256 deltaIndex = index - userIndex;
uint256 rewardDelta = userShares.mulDown(deltaIndex);
uint256 rewardAccrued = userReward[token][user].accrued + rewardDelta;
userReward[token][user] = UserReward({index: index.Uint128(), accrued: rewardAccrued.Uint128()});
}
}
function _updateRewardIndex() internal virtual returns (address[] memory tokens, uint256[] memory indexes);
function _redeemExternalReward() internal virtual;
function _doTransferOutRewards(
address user,
address receiver
) internal virtual returns (uint256[] memory rewardAmounts);
function _rewardSharesUser(address user) internal view virtual returns (uint256);
}
Read Contract
DOMAIN_SEPARATOR 0x3644e515 → bytes32
_storage 0xc3fb90d6 → int128, int128, uint96, uint16, uint16, uint16
activeBalance 0x0892cd8b → uint256
allowance 0xdd62ed3e → uint256
balanceOf 0x70a08231 → uint256
decimals 0x313ce567 → uint8
eip712Domain 0x84b0196e → bytes1, string, string, uint256, address, bytes32, uint256[]
expiry 0xe184c9be → uint256
factory 0xc45a0155 → address
getNonOverrideLnFeeRateRoot 0xe4f8b2e9 → uint80
getRewardTokens 0xc4f59f9b → address[]
isExpired 0x2f13b60c → bool
lastRewardBlock 0xa9f8d181 → uint256
name 0x06fdde03 → string
nonces 0x7ecebe00 → uint256
observations 0x252c09d7 → uint32, uint216, bool
observe 0x883bdbfd → uint216[]
readState 0x794052f3 → tuple
readTokens 0x2c8ce6bc → address, address, address
rewardState 0xea64a820 → uint128, uint128
symbol 0x95d89b41 → string
totalActiveSupply 0x72069264 → uint256
totalSupply 0x18160ddd → uint256
userReward 0x5cbadbe4 → uint128, uint128
Write Contract 11 functions
These functions modify contract state and require a wallet transaction to execute.
approve 0x095ea7b3
address spender
uint256 amount
returns: bool
burn 0xf6b911bc
address receiverSy
address receiverPt
uint256 netLpToBurn
returns: uint256, uint256
increaseObservationsCardinalityNext 0x37d45e3a
uint16 cardinalityNext
mint 0x156e29f6
address receiver
uint256 netSyDesired
uint256 netPtDesired
returns: uint256, uint256, uint256
permit 0xd505accf
address owner
address spender
uint256 value
uint256 deadline
uint8 v
bytes32 r
bytes32 s
redeemRewards 0x9262187b
address user
returns: uint256[]
skim 0x1dd19cb4
No parameters
swapExactPtForSy 0x29910b11
address receiver
uint256 exactPtIn
bytes data
returns: uint256, uint256
swapSyForExactPt 0x5b709f17
address receiver
uint256 exactPtOut
bytes data
returns: uint256, uint256
transfer 0xa9059cbb
address to
uint256 amount
returns: bool
transferFrom 0x23b872dd
address from
address to
uint256 amount
returns: bool
Recent Transactions
No transactions found for this address