337 lines
10 KiB
Go
337 lines
10 KiB
Go
// Copyright 2014 The go-ethereum Authors
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// This file is part of the go-ethereum library.
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//
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// The go-ethereum library is free software: you can redistribute it and/or modify
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// it under the terms of the GNU Lesser 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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//
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// The go-ethereum library is distributed in the hope that it will be useful,
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// but WITHOUT ANY WARRANTY; without even the implied warranty of
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// MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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// GNU Lesser General Public License for more details.
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//
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// You should have received a copy of the GNU Lesser General Public License
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// along with the go-ethereum library. If not, see <http://www.gnu.org/licenses/>.
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package vm
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import (
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"crypto/sha256"
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"errors"
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"math/big"
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"github.com/ethereum/go-ethereum/common"
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"github.com/ethereum/go-ethereum/common/math"
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"github.com/ethereum/go-ethereum/crypto"
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"github.com/ethereum/go-ethereum/crypto/bn256"
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"github.com/ethereum/go-ethereum/params"
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"golang.org/x/crypto/ripemd160"
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)
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var errBadPrecompileInput = errors.New("bad pre compile input")
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// Precompiled contract is the basic interface for native Go contracts. The implementation
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// requires a deterministic gas count based on the input size of the Run method of the
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// contract.
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type PrecompiledContract interface {
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RequiredGas(input []byte) uint64 // RequiredPrice calculates the contract gas use
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Run(input []byte) ([]byte, error) // Run runs the precompiled contract
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}
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// PrecompiledContracts contains the default set of ethereum contracts
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var PrecompiledContracts = map[common.Address]PrecompiledContract{
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common.BytesToAddress([]byte{1}): &ecrecover{},
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common.BytesToAddress([]byte{2}): &sha256hash{},
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common.BytesToAddress([]byte{3}): &ripemd160hash{},
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common.BytesToAddress([]byte{4}): &dataCopy{},
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}
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// PrecompiledContractsMetropolis contains the default set of ethereum contracts
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// for metropolis hardfork
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var PrecompiledContractsMetropolis = map[common.Address]PrecompiledContract{
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common.BytesToAddress([]byte{1}): &ecrecover{},
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common.BytesToAddress([]byte{2}): &sha256hash{},
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common.BytesToAddress([]byte{3}): &ripemd160hash{},
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common.BytesToAddress([]byte{4}): &dataCopy{},
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common.BytesToAddress([]byte{5}): &bigModexp{},
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common.BytesToAddress([]byte{6}): &bn256Add{},
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common.BytesToAddress([]byte{7}): &bn256ScalarMul{},
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common.BytesToAddress([]byte{8}): &pairing{},
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}
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// RunPrecompile runs and evaluate the output of a precompiled contract defined in contracts.go
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func RunPrecompiledContract(p PrecompiledContract, input []byte, contract *Contract) (ret []byte, err error) {
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gas := p.RequiredGas(input)
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if contract.UseGas(gas) {
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return p.Run(input)
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} else {
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return nil, ErrOutOfGas
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}
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}
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// ECRECOVER implemented as a native contract
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type ecrecover struct{}
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func (c *ecrecover) RequiredGas(input []byte) uint64 {
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return params.EcrecoverGas
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}
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func (c *ecrecover) Run(in []byte) ([]byte, error) {
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const ecRecoverInputLength = 128
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in = common.RightPadBytes(in, ecRecoverInputLength)
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// "in" is (hash, v, r, s), each 32 bytes
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// but for ecrecover we want (r, s, v)
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r := new(big.Int).SetBytes(in[64:96])
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s := new(big.Int).SetBytes(in[96:128])
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v := in[63] - 27
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// tighter sig s values in homestead only apply to tx sigs
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if !allZero(in[32:63]) || !crypto.ValidateSignatureValues(v, r, s, false) {
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return nil, nil
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}
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// v needs to be at the end for libsecp256k1
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pubKey, err := crypto.Ecrecover(in[:32], append(in[64:128], v))
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// make sure the public key is a valid one
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if err != nil {
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return nil, nil
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}
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// the first byte of pubkey is bitcoin heritage
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return common.LeftPadBytes(crypto.Keccak256(pubKey[1:])[12:], 32), nil
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}
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// SHA256 implemented as a native contract
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type sha256hash struct{}
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// RequiredGas returns the gas required to execute the pre-compiled contract.
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//
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// This method does not require any overflow checking as the input size gas costs
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// required for anything significant is so high it's impossible to pay for.
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func (c *sha256hash) RequiredGas(input []byte) uint64 {
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return uint64(len(input)+31)/32*params.Sha256WordGas + params.Sha256Gas
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}
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func (c *sha256hash) Run(in []byte) ([]byte, error) {
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h := sha256.Sum256(in)
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return h[:], nil
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}
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// RIPMED160 implemented as a native contract
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type ripemd160hash struct{}
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// RequiredGas returns the gas required to execute the pre-compiled contract.
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//
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// This method does not require any overflow checking as the input size gas costs
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// required for anything significant is so high it's impossible to pay for.
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func (c *ripemd160hash) RequiredGas(input []byte) uint64 {
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return uint64(len(input)+31)/32*params.Ripemd160WordGas + params.Ripemd160Gas
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}
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func (c *ripemd160hash) Run(in []byte) ([]byte, error) {
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ripemd := ripemd160.New()
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ripemd.Write(in)
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return common.LeftPadBytes(ripemd.Sum(nil), 32), nil
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}
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// data copy implemented as a native contract
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type dataCopy struct{}
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// RequiredGas returns the gas required to execute the pre-compiled contract.
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//
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// This method does not require any overflow checking as the input size gas costs
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// required for anything significant is so high it's impossible to pay for.
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func (c *dataCopy) RequiredGas(input []byte) uint64 {
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return uint64(len(input)+31)/32*params.IdentityWordGas + params.IdentityGas
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}
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func (c *dataCopy) Run(in []byte) ([]byte, error) {
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return in, nil
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}
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// bigModexp implements a native big integer exponential modular operation.
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type bigModexp struct{}
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// RequiredGas returns the gas required to execute the pre-compiled contract.
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//
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// This method does not require any overflow checking as the input size gas costs
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// required for anything significant is so high it's impossible to pay for.
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func (c *bigModexp) RequiredGas(input []byte) uint64 {
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// TODO reword required gas to have error reporting and convert arithmetic
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// to uint64.
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if len(input) < 3*32 {
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input = append(input, make([]byte, 3*32-len(input))...)
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}
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var (
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baseLen = new(big.Int).SetBytes(input[:31])
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expLen = math.BigMax(new(big.Int).SetBytes(input[32:64]), big.NewInt(1))
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modLen = new(big.Int).SetBytes(input[65:97])
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)
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x := new(big.Int).Set(math.BigMax(baseLen, modLen))
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x.Mul(x, x)
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x.Mul(x, expLen)
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x.Div(x, new(big.Int).SetUint64(params.QuadCoeffDiv))
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return x.Uint64()
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}
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func (c *bigModexp) Run(input []byte) ([]byte, error) {
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if len(input) < 3*32 {
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input = append(input, make([]byte, 3*32-len(input))...)
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}
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// why 32-byte? These values won't fit anyway
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var (
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baseLen = new(big.Int).SetBytes(input[:32]).Uint64()
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expLen = new(big.Int).SetBytes(input[32:64]).Uint64()
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modLen = new(big.Int).SetBytes(input[64:96]).Uint64()
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)
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input = input[96:]
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if uint64(len(input)) < baseLen {
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input = append(input, make([]byte, baseLen-uint64(len(input)))...)
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}
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base := new(big.Int).SetBytes(input[:baseLen])
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input = input[baseLen:]
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if uint64(len(input)) < expLen {
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input = append(input, make([]byte, expLen-uint64(len(input)))...)
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}
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exp := new(big.Int).SetBytes(input[:expLen])
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input = input[expLen:]
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if uint64(len(input)) < modLen {
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input = append(input, make([]byte, modLen-uint64(len(input)))...)
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}
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mod := new(big.Int).SetBytes(input[:modLen])
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return common.LeftPadBytes(base.Exp(base, exp, mod).Bytes(), len(input[:modLen])), nil
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}
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type bn256Add struct{}
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// RequiredGas returns the gas required to execute the pre-compiled contract.
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//
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// This method does not require any overflow checking as the input size gas costs
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// required for anything significant is so high it's impossible to pay for.
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func (c *bn256Add) RequiredGas(input []byte) uint64 {
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return 0 // TODO
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}
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func (c *bn256Add) Run(in []byte) ([]byte, error) {
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in = common.RightPadBytes(in, 128)
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x, onCurve := new(bn256.G1).Unmarshal(in[:64])
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if !onCurve {
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return nil, errNotOnCurve
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}
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gx, gy, _, _ := x.CurvePoints()
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if gx.Cmp(bn256.P) >= 0 || gy.Cmp(bn256.P) >= 0 {
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return nil, errInvalidCurvePoint
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}
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y, onCurve := new(bn256.G1).Unmarshal(in[64:128])
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if !onCurve {
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return nil, errNotOnCurve
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}
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gx, gy, _, _ = y.CurvePoints()
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if gx.Cmp(bn256.P) >= 0 || gy.Cmp(bn256.P) >= 0 {
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return nil, errInvalidCurvePoint
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}
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x.Add(x, y)
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return x.Marshal(), nil
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}
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type bn256ScalarMul struct{}
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// RequiredGas returns the gas required to execute the pre-compiled contract.
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//
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// This method does not require any overflow checking as the input size gas costs
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// required for anything significant is so high it's impossible to pay for.
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func (c *bn256ScalarMul) RequiredGas(input []byte) uint64 {
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return 0 // TODO
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}
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func (c *bn256ScalarMul) Run(in []byte) ([]byte, error) {
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in = common.RightPadBytes(in, 96)
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g1, onCurve := new(bn256.G1).Unmarshal(in[:64])
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if !onCurve {
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return nil, errNotOnCurve
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}
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x, y, _, _ := g1.CurvePoints()
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if x.Cmp(bn256.P) >= 0 || y.Cmp(bn256.P) >= 0 {
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return nil, errInvalidCurvePoint
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}
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g1.ScalarMult(g1, new(big.Int).SetBytes(in[64:96]))
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return g1.Marshal(), nil
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}
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// pairing implements a pairing pre-compile for the bn256 curve
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type pairing struct{}
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// RequiredGas returns the gas required to execute the pre-compiled contract.
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//
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// This method does not require any overflow checking as the input size gas costs
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// required for anything significant is so high it's impossible to pay for.
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func (c *pairing) RequiredGas(input []byte) uint64 {
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//return 0 // TODO
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k := (len(input) + 191) / pairSize
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return uint64(60000*k + 40000)
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}
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const pairSize = 192
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var (
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true32Byte = []byte{0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 1}
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fals32Byte = make([]byte, 32)
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errNotOnCurve = errors.New("point not on elliptic curve")
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errInvalidCurvePoint = errors.New("invalid elliptic curve point")
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)
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func (c *pairing) Run(in []byte) ([]byte, error) {
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if len(in) == 0 {
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return true32Byte, nil
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}
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if len(in)%pairSize > 0 {
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return nil, errBadPrecompileInput
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}
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var (
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g1s []*bn256.G1
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g2s []*bn256.G2
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)
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for i := 0; i < len(in); i += pairSize {
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g1, onCurve := new(bn256.G1).Unmarshal(in[i : i+64])
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if !onCurve {
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return nil, errNotOnCurve
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}
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x, y, _, _ := g1.CurvePoints()
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if x.Cmp(bn256.P) >= 0 || y.Cmp(bn256.P) >= 0 {
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return nil, errInvalidCurvePoint
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}
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g2, onCurve := new(bn256.G2).Unmarshal(in[i+64 : i+192])
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if !onCurve {
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return nil, errNotOnCurve
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}
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x2, y2, _, _ := g2.CurvePoints()
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if x2.Real().Cmp(bn256.P) >= 0 || x2.Imag().Cmp(bn256.P) >= 0 ||
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y2.Real().Cmp(bn256.P) >= 0 || y2.Imag().Cmp(bn256.P) >= 0 {
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return nil, errInvalidCurvePoint
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}
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g1s = append(g1s, g1)
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g2s = append(g2s, g2)
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}
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isOne := bn256.PairingCheck(g1s, g2s)
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if isOne {
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return true32Byte, nil
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}
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return fals32Byte, nil
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}
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