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* Add Prettier configuration and ignore files for code formatting - Created .prettierignore to exclude specific directories and files from formatting. - Added .prettierrc.yml with custom settings for print width and trailing commas. - Updated package.json to include Prettier and its Solidity plugin as dependencies, along with scripts for formatting and checking code. * Run prettier formatting
175 lines
7.2 KiB
Solidity
175 lines
7.2 KiB
Solidity
// SPDX-License-Identifier: GPL-3.0
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/*
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Copyright 2021 0KIMS association.
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This file is generated with [snarkJS](https://github.com/iden3/snarkjs).
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snarkJS is a free software: you can redistribute it and/or modify it
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under the terms of the GNU General Public License as published by
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the Free Software Foundation, either version 3 of the License, or
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(at your option) any later version.
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snarkJS is distributed in the hope that it will be useful, but WITHOUT
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ANY WARRANTY; without even the implied warranty of MERCHANTABILITY
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or FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public
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License for more details.
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You should have received a copy of the GNU General Public License
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along with snarkJS. If not, see <https://www.gnu.org/licenses/>.
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*/
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pragma solidity >=0.7.0 <0.9.0;
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contract Verifier_dsc_sha512_ecdsa_secp521r1 {
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// Scalar field size
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uint256 constant r = 21888242871839275222246405745257275088548364400416034343698204186575808495617;
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// Base field size
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uint256 constant q = 21888242871839275222246405745257275088696311157297823662689037894645226208583;
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// Verification Key data
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uint256 constant alphax = 20491192805390485299153009773594534940189261866228447918068658471970481763042;
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uint256 constant alphay = 9383485363053290200918347156157836566562967994039712273449902621266178545958;
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uint256 constant betax1 = 4252822878758300859123897981450591353533073413197771768651442665752259397132;
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uint256 constant betax2 = 6375614351688725206403948262868962793625744043794305715222011528459656738731;
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uint256 constant betay1 = 21847035105528745403288232691147584728191162732299865338377159692350059136679;
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uint256 constant betay2 = 10505242626370262277552901082094356697409835680220590971873171140371331206856;
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uint256 constant gammax1 = 11559732032986387107991004021392285783925812861821192530917403151452391805634;
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uint256 constant gammax2 = 10857046999023057135944570762232829481370756359578518086990519993285655852781;
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uint256 constant gammay1 = 4082367875863433681332203403145435568316851327593401208105741076214120093531;
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uint256 constant gammay2 = 8495653923123431417604973247489272438418190587263600148770280649306958101930;
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uint256 constant deltax1 = 3567233624924223551473081774283623386333214994398117996341949045921925426628;
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uint256 constant deltax2 = 9706262963623856588491034574817954941116720519946003099084200202605107687323;
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uint256 constant deltay1 = 12112251966035714986038310379728868813344813567575772425184620994375435183493;
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uint256 constant deltay2 = 541069664758689108623530630690631010640418421812375414721343442872115937402;
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uint256 constant IC0x = 136910311248568363820473562407939112717019551412068446334589064796761238234;
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uint256 constant IC0y = 14761093221964254612087739097195844172438739963995752455378640347842923505631;
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uint256 constant IC1x = 14447863318056301271860386878687738607655490531247166798405604042500135631279;
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uint256 constant IC1y = 11446576007344781410709246372588846223796059093966566576749323356136248268666;
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uint256 constant IC2x = 14358689694998711607953028013988003416714328323807188343803787983254880315583;
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uint256 constant IC2y = 11617460142005906950398539783051988683143041496653951656062385487051296621592;
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// Memory data
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uint16 constant pVk = 0;
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uint16 constant pPairing = 128;
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uint16 constant pLastMem = 896;
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function verifyProof(
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uint[2] calldata _pA,
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uint[2][2] calldata _pB,
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uint[2] calldata _pC,
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uint[2] calldata _pubSignals
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) public view returns (bool) {
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assembly {
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function checkField(v) {
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if iszero(lt(v, r)) {
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mstore(0, 0)
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return(0, 0x20)
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}
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}
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// G1 function to multiply a G1 value(x,y) to value in an address
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function g1_mulAccC(pR, x, y, s) {
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let success
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let mIn := mload(0x40)
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mstore(mIn, x)
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mstore(add(mIn, 32), y)
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mstore(add(mIn, 64), s)
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success := staticcall(sub(gas(), 2000), 7, mIn, 96, mIn, 64)
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if iszero(success) {
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mstore(0, 0)
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return(0, 0x20)
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}
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mstore(add(mIn, 64), mload(pR))
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mstore(add(mIn, 96), mload(add(pR, 32)))
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success := staticcall(sub(gas(), 2000), 6, mIn, 128, pR, 64)
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if iszero(success) {
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mstore(0, 0)
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return(0, 0x20)
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}
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}
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function checkPairing(pA, pB, pC, pubSignals, pMem) -> isOk {
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let _pPairing := add(pMem, pPairing)
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let _pVk := add(pMem, pVk)
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mstore(_pVk, IC0x)
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mstore(add(_pVk, 32), IC0y)
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// Compute the linear combination vk_x
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g1_mulAccC(_pVk, IC1x, IC1y, calldataload(add(pubSignals, 0)))
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g1_mulAccC(_pVk, IC2x, IC2y, calldataload(add(pubSignals, 32)))
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// -A
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mstore(_pPairing, calldataload(pA))
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mstore(add(_pPairing, 32), mod(sub(q, calldataload(add(pA, 32))), q))
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// B
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mstore(add(_pPairing, 64), calldataload(pB))
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mstore(add(_pPairing, 96), calldataload(add(pB, 32)))
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mstore(add(_pPairing, 128), calldataload(add(pB, 64)))
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mstore(add(_pPairing, 160), calldataload(add(pB, 96)))
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// alpha1
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mstore(add(_pPairing, 192), alphax)
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mstore(add(_pPairing, 224), alphay)
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// beta2
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mstore(add(_pPairing, 256), betax1)
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mstore(add(_pPairing, 288), betax2)
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mstore(add(_pPairing, 320), betay1)
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mstore(add(_pPairing, 352), betay2)
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// vk_x
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mstore(add(_pPairing, 384), mload(add(pMem, pVk)))
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mstore(add(_pPairing, 416), mload(add(pMem, add(pVk, 32))))
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// gamma2
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mstore(add(_pPairing, 448), gammax1)
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mstore(add(_pPairing, 480), gammax2)
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mstore(add(_pPairing, 512), gammay1)
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mstore(add(_pPairing, 544), gammay2)
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// C
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mstore(add(_pPairing, 576), calldataload(pC))
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mstore(add(_pPairing, 608), calldataload(add(pC, 32)))
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// delta2
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mstore(add(_pPairing, 640), deltax1)
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mstore(add(_pPairing, 672), deltax2)
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mstore(add(_pPairing, 704), deltay1)
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mstore(add(_pPairing, 736), deltay2)
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let success := staticcall(sub(gas(), 2000), 8, _pPairing, 768, _pPairing, 0x20)
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isOk := and(success, mload(_pPairing))
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}
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let pMem := mload(0x40)
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mstore(0x40, add(pMem, pLastMem))
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// Validate that all evaluations ∈ F
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checkField(calldataload(add(_pubSignals, 0)))
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checkField(calldataload(add(_pubSignals, 32)))
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// Validate all evaluations
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let isValid := checkPairing(_pA, _pB, _pC, _pubSignals, pMem)
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mstore(0, isValid)
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return(0, 0x20)
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}
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}
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}
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