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0xDE57B73c2059925555cF1ee5af207A82d97dad03
 

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Claim171023222023-04-22 13:57:11530 days ago1682171831IN
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0 ETH0.0027046832.42402849
Claim171020182023-04-22 12:55:47530 days ago1682168147IN
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0 ETH0.0036029935.84495319
Claim171014142023-04-22 10:53:35530 days ago1682160815IN
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0 ETH0.0058962431.5270309
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0 ETH0.0049757333.08336874
Claim171012932023-04-22 10:29:11530 days ago1682159351IN
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0 ETH0.0051525530.76371835
Claim171006372023-04-22 8:16:35530 days ago1682151395IN
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0 ETH0.0039643433.90998115
Claim170999292023-04-22 5:53:23530 days ago1682142803IN
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0 ETH0.0039918229.78794594
Claim170995412023-04-22 4:35:23530 days ago1682138123IN
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0 ETH0.0026739737.94274299
Claim170993302023-04-22 3:53:11530 days ago1682135591IN
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0 ETH0.0128001234.74017319
Claim170992382023-04-22 3:34:47530 days ago1682134487IN
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0 ETH0.0022885832.47416391
Claim170991582023-04-22 3:18:47530 days ago1682133527IN
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0 ETH0.0077668728.98476858
Claim170989962023-04-22 2:46:11530 days ago1682131571IN
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0 ETH0.0029610135.4969372
Redeem170989292023-04-22 2:32:35530 days ago1682130755IN
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0 ETH0.0041392237.46274578
Redeem170980432023-04-21 23:33:47531 days ago1682120027IN
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0 ETH0.0034926631.61093637
Claim170978582023-04-21 22:56:47531 days ago1682117807IN
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0 ETH0.0144909435.5079702
Claim170976462023-04-21 22:13:47531 days ago1682115227IN
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0 ETH0.0044790333.42366516
Claim170973992023-04-21 21:23:59531 days ago1682112239IN
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0 ETH0.0037779637.58573612
Claim170973102023-04-21 21:05:59531 days ago1682111159IN
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0 ETH0.0043340951.95758601
Claim170971672023-04-21 20:36:59531 days ago1682109419IN
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0 ETH0.0033956133.78179391
Redeem170970882023-04-21 20:20:59531 days ago1682108459IN
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0 ETH0.0036661439.25666878
Claim170970242023-04-21 20:07:47531 days ago1682107667IN
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0 ETH0.0078805358.80643581
Claim170966442023-04-21 18:51:11531 days ago1682103071IN
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0 ETH0.005905440.48847787
Claim170966352023-04-21 18:49:11531 days ago1682102951IN
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0 ETH0.0041140440.92924711
Claim170965102023-04-21 18:23:47531 days ago1682101427IN
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0 ETH0.004504133.61070434
Claim170964452023-04-21 18:10:35531 days ago1682100635IN
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0 ETH0.0031570537.84709966
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171023222023-04-22 13:57:11530 days ago1682171831
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171023222023-04-22 13:57:11530 days ago1682171831
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171020182023-04-22 12:55:47530 days ago1682168147
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171020182023-04-22 12:55:47530 days ago1682168147
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Contract Source Code Verified (Exact Match)

Contract Name:
KillaCubsMinter

Compiler Version
v0.8.19+commit.7dd6d404

Optimization Enabled:
Yes with 200 runs

Other Settings:
default evmVersion
File 1 of 5 : KillaCubsMinter.sol
// SPDX-License-Identifier: MIT

pragma solidity ^0.8.19;
import "./SuperOwnable.sol";
import "@openzeppelin/contracts/utils/cryptography/ECDSA.sol";

enum MintPhaseType {
    Claim,
    Redeem,
    Private,
    Holders,
    Public
}

struct MintPhase {
    MintPhaseType phaseType;
    uint32 start;
    uint32 end;
    address signer;
}

struct MintCounters {
    uint16 linked;
    uint16 batched;
    uint16 redeems;
    uint16 stakes;
}

struct Wallet {
    uint16 balance;
    uint16 stakes;
    uint16 linkedMints;
    uint16 batchedMints;
    uint16 allowlistMints;
    uint16 privateMints;
    uint16 holderMints;
    uint16 redeems;
}

interface IKillaPasses {
    function burn(uint256 typeId, address owner, uint256 n) external;
}

interface IKillaCubs {
    function mint(address owner, uint256[] calldata ids, bool staked) external;

    function mint(address owner, uint16 n, bool staked) external;

    function mintRedeemed(address owner, uint16 n, bool staked) external;

    function useAllowance(
        address sender,
        address main,
        uint256 n,
        bool holders,
        uint256 allowance
    ) external;

    function counters() external returns (MintCounters memory);

    function wallets(address) external returns (Wallet memory);
}

interface IERC721 {
    function ownerOf(uint256 tokenId) external view returns (address owner);
}

contract KillaCubsMinter is SuperOwnable {
    using ECDSA for bytes32;
    uint16 constant MINTABLE_SUPPLY = 8888 - 3333 - 333;
    uint256 public mintPrice = 0.25 ether;
    uint256 public publicMaxPerWallet = 3;

    IKillaCubs public immutable cubs;
    IERC721 public immutable bears;
    IKillaPasses public immutable passes;
    IERC721 public immutable kilton;
    IERC721 public immutable labs;

    mapping(MintPhaseType => MintPhase) public mintPhases;

    error NotAllowed();
    error UnknownMintPhase();
    error MintPhaseNotStarted();
    error MintPhaseEnded();
    error NotEnoughEth();
    error Overflow();

    constructor(
        address cubsAddress,
        address bearsAddress,
        address passesAddress,
        address kiltonAddress,
        address labsAddress,
        address superOwner
    ) SuperOwnable(superOwner) {
        cubs = IKillaCubs(cubsAddress);
        bears = IERC721(bearsAddress);
        passes = IKillaPasses(passesAddress);
        kilton = IERC721(kiltonAddress);
        labs = IERC721(labsAddress);
    }

    function claim(uint256[] calldata ids, bool staked) public payable {
        for (uint256 i = 0; i < ids.length; i++) {
            uint256 id = ids[i];
            if (
                bears.ownerOf(id) != msg.sender &&
                kilton.ownerOf(id) != msg.sender &&
                labs.ownerOf(id) != msg.sender
            ) revert NotAllowed();
        }
        cubs.mint(msg.sender, ids, staked);
    }

    function redeem(
        uint16 n,
        bool staked
    ) external checkPhase(MintPhaseType.Redeem) {
        passes.burn(1, msg.sender, n);
        cubs.mintRedeemed(msg.sender, n, staked);
        if (cubs.counters().redeems > 333) revert Overflow();
    }

    function mintPrivate(
        uint16 n,
        MintPhaseType mintPhase,
        address mainWallet,
        uint256 allowance,
        bytes calldata signature,
        bool staked
    ) external payable checkPayment(n) checkSupply checkPhase(mintPhase) {
        cubs.mint(msg.sender, n, staked);

        cubs.useAllowance(
            msg.sender,
            mainWallet,
            n,
            mintPhase == MintPhaseType.Holders,
            allowance
        );

        MintPhase memory phase = mintPhases[mintPhase];
        if (
            phase.signer !=
            ECDSA
                .toEthSignedMessageHash(
                    abi.encodePacked(
                        msg.sender,
                        mainWallet,
                        mintPhase,
                        allowance
                    )
                )
                .recover(signature)
        ) revert NotAllowed();
    }

    function mint(
        uint16 n,
        bool staked
    )
        external
        payable
        checkPayment(n)
        checkPhase(MintPhaseType.Public)
        checkSupply
    {
        cubs.mint(msg.sender, n, staked);
        Wallet memory w = cubs.wallets(msg.sender);
        uint256 minted = w.batchedMints - (w.redeems + w.allowlistMints);
        if (minted > publicMaxPerWallet) revert Overflow();
    }

    // Admin
    function configureMintPhases(
        MintPhase[] calldata phases
    ) external onlyOwner {
        for (uint256 i = 0; i < phases.length; i++) {
            MintPhase memory phase = phases[i];
            mintPhases[phase.phaseType] = phase;
        }
    }

    function setMintPrice(uint256 price) external onlyOwner {
        mintPrice = price;
    }

    function setPublicMaxPerWallet(uint256 max) external onlyOwner {
        publicMaxPerWallet = max;
    }

    function withdraw(address to) external onlyOwner {
        if (to == address(0)) revert NotAllowed();
        payable(to).transfer(address(this).balance);
    }

    // Modifiers

    modifier checkPayment(uint256 n) {
        if (msg.value != n * mintPrice) {
            revert NotEnoughEth();
        }
        _;
    }

    modifier checkPhase(MintPhaseType mintPhase) {
        if (msg.sender != owner) {
            MintPhase storage phase = mintPhases[mintPhase];
            uint256 ts = block.timestamp;
            if (phase.start == 0) revert UnknownMintPhase();
            if (ts < phase.start) revert MintPhaseNotStarted();
            if (phase.end != 0 && ts > phase.end) revert MintPhaseEnded();
        }
        _;
    }

    modifier checkSupply() {
        _;
        MintCounters memory counters = cubs.counters();
        if (counters.batched - counters.redeems > MINTABLE_SUPPLY)
            revert Overflow();
    }
}

File 2 of 5 : SuperOwnable.sol
// SPDX-License-Identifier: MIT

pragma solidity ^0.8.19;

abstract contract SuperOwnable {
    address public owner;
    address public superOwner;

    mapping(address => bool) authorities;

    error Denied();

    event OwnershipTransferred(
        address indexed previousOwner,
        address indexed newOwner
    );

    constructor(address superOwner_) {
        _transferOwnership(msg.sender);
        superOwner = superOwner_;
    }

    modifier onlyOwner() {
        if (msg.sender != owner && msg.sender != superOwner) revert Denied();
        _;
    }

    modifier onlySuperOwner() {
        if (msg.sender != superOwner) revert Denied();
        _;
    }

    modifier onlyAuthority() {
        if (!authorities[msg.sender] && msg.sender != owner) revert Denied();
        _;
    }

    function transferOwnership(address addr) public virtual onlyOwner {
        _transferOwnership(addr);
    }

    function _transferOwnership(address addr) internal virtual {
        address oldOwner = owner;
        owner = addr;
        emit OwnershipTransferred(oldOwner, addr);
    }

    function setSuperOwner(address addr) public onlySuperOwner {
        if (addr == address(0)) revert Denied();
        superOwner = addr;
    }

    function toggleAuthority(address addr, bool enabled) public onlyOwner {
        authorities[addr] = enabled;
    }
}

File 3 of 5 : ECDSA.sol
// SPDX-License-Identifier: MIT
// OpenZeppelin Contracts (last updated v4.8.0) (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) {
        // 32 is the length in bytes of hash,
        // enforced by the type signature above
        return keccak256(abi.encodePacked("\x19Ethereum Signed Message:\n32", hash));
    }

    /**
     * @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) {
        return keccak256(abi.encodePacked("\x19\x01", domainSeparator, structHash));
    }
}

File 4 of 5 : Strings.sol
// SPDX-License-Identifier: MIT
// OpenZeppelin Contracts (last updated v4.8.0) (utils/Strings.sol)

pragma solidity ^0.8.0;

import "./math/Math.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 `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);
    }
}

File 5 of 5 : Math.sol
// SPDX-License-Identifier: MIT
// OpenZeppelin Contracts (last updated v4.8.0) (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) {
                return prod0 / denominator;
            }

            // Make sure the result is less than 2^256. Also prevents denominator == 0.
            require(denominator > prod1);

            ///////////////////////////////////////////////
            // 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 10, 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 * 8) < value ? 1 : 0);
        }
    }
}

Settings
{
  "optimizer": {
    "enabled": true,
    "runs": 200
  },
  "outputSelection": {
    "*": {
      "*": [
        "evm.bytecode",
        "evm.deployedBytecode",
        "devdoc",
        "userdoc",
        "metadata",
        "abi"
      ]
    }
  },
  "libraries": {}
}

Contract Security Audit

Contract ABI

[{"inputs":[{"internalType":"address","name":"cubsAddress","type":"address"},{"internalType":"address","name":"bearsAddress","type":"address"},{"internalType":"address","name":"passesAddress","type":"address"},{"internalType":"address","name":"kiltonAddress","type":"address"},{"internalType":"address","name":"labsAddress","type":"address"},{"internalType":"address","name":"superOwner","type":"address"}],"stateMutability":"nonpayable","type":"constructor"},{"inputs":[],"name":"Denied","type":"error"},{"inputs":[],"name":"MintPhaseEnded","type":"error"},{"inputs":[],"name":"MintPhaseNotStarted","type":"error"},{"inputs":[],"name":"NotAllowed","type":"error"},{"inputs":[],"name":"NotEnoughEth","type":"error"},{"inputs":[],"name":"Overflow","type":"error"},{"inputs":[],"name":"UnknownMintPhase","type":"error"},{"anonymous":false,"inputs":[{"indexed":true,"internalType":"address","name":"previousOwner","type":"address"},{"indexed":true,"internalType":"address","name":"newOwner","type":"address"}],"name":"OwnershipTransferred","type":"event"},{"inputs":[],"name":"bears","outputs":[{"internalType":"contract IERC721","name":"","type":"address"}],"stateMutability":"view","type":"function"},{"inputs":[{"internalType":"uint256[]","name":"ids","type":"uint256[]"},{"internalType":"bool","name":"staked","type":"bool"}],"name":"claim","outputs":[],"stateMutability":"payable","type":"function"},{"inputs":[{"components":[{"internalType":"enum MintPhaseType","name":"phaseType","type":"uint8"},{"internalType":"uint32","name":"start","type":"uint32"},{"internalType":"uint32","name":"end","type":"uint32"},{"internalType":"address","name":"signer","type":"address"}],"internalType":"struct MintPhase[]","name":"phases","type":"tuple[]"}],"name":"configureMintPhases","outputs":[],"stateMutability":"nonpayable","type":"function"},{"inputs":[],"name":"cubs","outputs":[{"internalType":"contract IKillaCubs","name":"","type":"address"}],"stateMutability":"view","type":"function"},{"inputs":[],"name":"kilton","outputs":[{"internalType":"contract IERC721","name":"","type":"address"}],"stateMutability":"view","type":"function"},{"inputs":[],"name":"labs","outputs":[{"internalType":"contract IERC721","name":"","type":"address"}],"stateMutability":"view","type":"function"},{"inputs":[{"internalType":"uint16","name":"n","type":"uint16"},{"internalType":"bool","name":"staked","type":"bool"}],"name":"mint","outputs":[],"stateMutability":"payable","type":"function"},{"inputs":[{"internalType":"enum MintPhaseType","name":"","type":"uint8"}],"name":"mintPhases","outputs":[{"internalType":"enum MintPhaseType","name":"phaseType","type":"uint8"},{"internalType":"uint32","name":"start","type":"uint32"},{"internalType":"uint32","name":"end","type":"uint32"},{"internalType":"address","name":"signer","type":"address"}],"stateMutability":"view","type":"function"},{"inputs":[],"name":"mintPrice","outputs":[{"internalType":"uint256","name":"","type":"uint256"}],"stateMutability":"view","type":"function"},{"inputs":[{"internalType":"uint16","name":"n","type":"uint16"},{"internalType":"enum MintPhaseType","name":"mintPhase","type":"uint8"},{"internalType":"address","name":"mainWallet","type":"address"},{"internalType":"uint256","name":"allowance","type":"uint256"},{"internalType":"bytes","name":"signature","type":"bytes"},{"internalType":"bool","name":"staked","type":"bool"}],"name":"mintPrivate","outputs":[],"stateMutability":"payable","type":"function"},{"inputs":[],"name":"owner","outputs":[{"internalType":"address","name":"","type":"address"}],"stateMutability":"view","type":"function"},{"inputs":[],"name":"passes","outputs":[{"internalType":"contract IKillaPasses","name":"","type":"address"}],"stateMutability":"view","type":"function"},{"inputs":[],"name":"publicMaxPerWallet","outputs":[{"internalType":"uint256","name":"","type":"uint256"}],"stateMutability":"view","type":"function"},{"inputs":[{"internalType":"uint16","name":"n","type":"uint16"},{"internalType":"bool","name":"staked","type":"bool"}],"name":"redeem","outputs":[],"stateMutability":"nonpayable","type":"function"},{"inputs":[{"internalType":"uint256","name":"price","type":"uint256"}],"name":"setMintPrice","outputs":[],"stateMutability":"nonpayable","type":"function"},{"inputs":[{"internalType":"uint256","name":"max","type":"uint256"}],"name":"setPublicMaxPerWallet","outputs":[],"stateMutability":"nonpayable","type":"function"},{"inputs":[{"internalType":"address","name":"addr","type":"address"}],"name":"setSuperOwner","outputs":[],"stateMutability":"nonpayable","type":"function"},{"inputs":[],"name":"superOwner","outputs":[{"internalType":"address","name":"","type":"address"}],"stateMutability":"view","type":"function"},{"inputs":[{"internalType":"address","name":"addr","type":"address"},{"internalType":"bool","name":"enabled","type":"bool"}],"name":"toggleAuthority","outputs":[],"stateMutability":"nonpayable","type":"function"},{"inputs":[{"internalType":"address","name":"addr","type":"address"}],"name":"transferOwnership","outputs":[],"stateMutability":"nonpayable","type":"function"},{"inputs":[{"internalType":"address","name":"to","type":"address"}],"name":"withdraw","outputs":[],"stateMutability":"nonpayable","type":"function"}]

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Constructor Arguments (ABI-Encoded and is the last bytes of the Contract Creation Code above)

000000000000000000000000ac395c4f5730c8d9246a46004e9ee9d06b8d8127000000000000000000000000c99c679c50033bbc5321eb88752e89a93e9e83c50000000000000000000000009311ac6b45e22e48c6f7acc9beefdde3fe994ec000000000000000000000000001621c6180d8adfad5b0c8f69d7d4abf49c7868f0000000000000000000000000a1730279b86a00c7214abc624f19261f8fd9a880000000000000000000000001bf52762f9e486d8c373c866f977134d7331c5a5

-----Decoded View---------------
Arg [0] : cubsAddress (address): 0xAC395C4f5730C8d9246a46004E9Ee9D06B8D8127
Arg [1] : bearsAddress (address): 0xc99c679C50033Bbc5321EB88752E89a93e9e83C5
Arg [2] : passesAddress (address): 0x9311aC6b45e22e48C6f7AcC9BeEFDDE3fe994Ec0
Arg [3] : kiltonAddress (address): 0x01621C6180d8AdFad5B0c8f69d7D4ABf49c7868F
Arg [4] : labsAddress (address): 0x0a1730279B86a00C7214Abc624f19261F8Fd9a88
Arg [5] : superOwner (address): 0x1Bf52762F9E486d8c373c866F977134D7331C5a5

-----Encoded View---------------
6 Constructor Arguments found :
Arg [0] : 000000000000000000000000ac395c4f5730c8d9246a46004e9ee9d06b8d8127
Arg [1] : 000000000000000000000000c99c679c50033bbc5321eb88752e89a93e9e83c5
Arg [2] : 0000000000000000000000009311ac6b45e22e48c6f7acc9beefdde3fe994ec0
Arg [3] : 00000000000000000000000001621c6180d8adfad5b0c8f69d7d4abf49c7868f
Arg [4] : 0000000000000000000000000a1730279b86a00c7214abc624f19261f8fd9a88
Arg [5] : 0000000000000000000000001bf52762f9e486d8c373c866f977134d7331c5a5


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A contract address hosts a smart contract, which is a set of code stored on the blockchain that runs when predetermined conditions are met. Learn more about addresses in our Knowledge Base.