consensus/eccpow: add LDPCDecoder

This commit is contained in:
siddharth0a 2024-04-02 20:13:46 +09:00
parent 4cbeacd254
commit 69983932fa
3 changed files with 491 additions and 0 deletions

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package eccpow
import (
"encoding/binary"
"math"
"github.com/cryptoecc/ETH-ECC/core/types"
"github.com/cryptoecc/ETH-ECC/crypto"
)
//OptimizedDecoding return hashVector, outputWord, LRrtl
func OptimizedDecoding(parameters Parameters, hashVector []int, H, rowInCol, colInRow [][]int) ([]int, []int, [][]float64) {
outputWord := make([]int, parameters.n)
LRqtl := make([][]float64, parameters.n)
LRrtl := make([][]float64, parameters.n)
LRft := make([]float64, parameters.n)
for i := 0; i < parameters.n; i++ {
LRqtl[i] = make([]float64, parameters.m)
LRrtl[i] = make([]float64, parameters.m)
LRft[i] = math.Log((1-crossErr)/crossErr) * float64((hashVector[i]*2 - 1))
}
LRpt := make([]float64, parameters.n)
for ind := 1; ind <= maxIter; ind++ {
for t := 0; t < parameters.n; t++ {
temp3 := 0.0
for mp := 0; mp < parameters.wc; mp++ {
temp3 = infinityTest(temp3 + LRrtl[t][rowInCol[mp][t]])
}
for m := 0; m < parameters.wc; m++ {
temp4 := temp3
temp4 = infinityTest(temp4 - LRrtl[t][rowInCol[m][t]])
LRqtl[t][rowInCol[m][t]] = infinityTest(LRft[t] + temp4)
}
}
for k := 0; k < parameters.wr; k++ {
for l := 0; l < parameters.wr; l++ {
temp3 := 0.0
sign := 1.0
tempSign := 0.0
for m := 0; m < parameters.wr; m++ {
if m != l {
temp3 = temp3 + funcF(math.Abs(LRqtl[colInRow[m][k]][k]))
if LRqtl[colInRow[m][k]][k] > 0.0 {
tempSign = 1.0
} else {
tempSign = -1.0
}
sign = sign * tempSign
}
}
magnitude := funcF(temp3)
LRrtl[colInRow[l][k]][k] = infinityTest(sign * magnitude)
}
}
for t := 0; t < parameters.n; t++ {
LRpt[t] = infinityTest(LRft[t])
for k := 0; k < parameters.wc; k++ {
LRpt[t] += LRrtl[t][rowInCol[k][t]]
LRpt[t] = infinityTest(LRpt[t])
}
/*
if LRpt[t] >= 0 {
outputWord[t] = 1
} else {
outputWord[t] = 0
}*/
}
}
for t := 0; t < parameters.n; t++ {
if LRpt[t] >= 0 {
outputWord[t] = 1
} else {
outputWord[t] = 0
}
}
return hashVector, outputWord, LRrtl
}
//OptimizedDecoding return hashVector, outputWord, LRrtl
func OptimizedDecodingSeoul(parameters Parameters, hashVector []int, H, rowInCol, colInRow [][]int) ([]int, []int, [][]float64) {
outputWord := make([]int, parameters.n)
LRqtl := make([][]float64, parameters.n)
LRrtl := make([][]float64, parameters.n)
LRft := make([]float64, parameters.n)
for i := 0; i < parameters.n; i++ {
LRqtl[i] = make([]float64, parameters.m)
LRrtl[i] = make([]float64, parameters.m)
LRft[i] = math.Log((1-crossErr)/crossErr) * float64((hashVector[i]*2 - 1))
}
LRpt := make([]float64, parameters.n)
for ind := 1; ind <= maxIter; ind++ {
for t := 0; t < parameters.n; t++ {
temp3 := 0.0
for mp := 0; mp < parameters.wc; mp++ {
temp3 = infinityTest(temp3 + LRrtl[t][rowInCol[mp][t]])
}
for m := 0; m < parameters.wc; m++ {
temp4 := temp3
temp4 = infinityTest(temp4 - LRrtl[t][rowInCol[m][t]])
LRqtl[t][rowInCol[m][t]] = infinityTest(LRft[t] + temp4)
}
}
for k := 0; k < parameters.m; k++ {
for l := 0; l < parameters.wr; l++ {
temp3 := 0.0
sign := 1.0
tempSign := 0.0
for m := 0; m < parameters.wr; m++ {
if m != l {
temp3 = temp3 + funcF(math.Abs(LRqtl[colInRow[m][k]][k]))
if LRqtl[colInRow[m][k]][k] > 0.0 {
tempSign = 1.0
} else {
tempSign = -1.0
}
sign = sign * tempSign
}
}
magnitude := funcF(temp3)
LRrtl[colInRow[l][k]][k] = infinityTest(sign * magnitude)
}
}
for t := 0; t < parameters.n; t++ {
LRpt[t] = infinityTest(LRft[t])
for k := 0; k < parameters.wc; k++ {
LRpt[t] += LRrtl[t][rowInCol[k][t]]
LRpt[t] = infinityTest(LRpt[t])
}
if LRpt[t] >= 0 {
outputWord[t] = 1
} else {
outputWord[t] = 0
}
}
}
/*
for t := 0; t < parameters.n; t++ {
if LRpt[t] >= 0 {
outputWord[t] = 1
} else {
outputWord[t] = 0
}
}*/
return hashVector, outputWord, LRrtl
}
//VerifyOptimizedDecoding return bool, hashVector, outputword, digest which are used for validation
func VerifyOptimizedDecoding(header *types.Header, hash []byte) (bool, []int, []int, []byte) {
parameters, _ := setParameters(header)
H := generateH(parameters)
colInRow, rowInCol := generateQ(parameters, H)
seed := make([]byte, 40)
copy(seed, hash)
binary.LittleEndian.PutUint64(seed[32:], header.Nonce.Uint64())
seed = crypto.Keccak512(seed)
hashVector := generateHv(parameters, seed)
hashVectorOfVerification, outputWordOfVerification, _ := OptimizedDecoding(parameters, hashVector, H, rowInCol, colInRow)
//hashVectorOfVerification, outputWordOfVerification, _ := OptimizedDecodingSeoul(parameters, hashVector, H, rowInCol, colInRow)
flag , _ := MakeDecision(header, colInRow, outputWordOfVerification)
if flag {
return true, hashVectorOfVerification, outputWordOfVerification, seed
}
return false, hashVectorOfVerification, outputWordOfVerification, seed
}
//VerifyOptimizedDecoding return bool, hashVector, outputword, digest which are used for validation
func VerifyOptimizedDecodingSeoul(header *types.Header, hash []byte) (bool, []int, []int, []byte) {
parameters, _ := setParameters_Seoul(header)
H := generateH(parameters)
colInRow, rowInCol := generateQ(parameters, H)
seed := make([]byte, 40)
copy(seed, hash)
binary.LittleEndian.PutUint64(seed[32:], header.Nonce.Uint64())
seed = crypto.Keccak512(seed)
hashVector := generateHv(parameters, seed)
//hashVectorOfVerification, outputWordOfVerification, _ := OptimizedDecoding(parameters, hashVector, H, rowInCol, colInRow)
hashVectorOfVerification, outputWordOfVerification, _ := OptimizedDecodingSeoul(parameters, hashVector, H, rowInCol, colInRow)
flag , _ := MakeDecision_Seoul(header, colInRow, outputWordOfVerification)
if flag {
return true, hashVectorOfVerification, outputWordOfVerification, seed
}
return false, hashVectorOfVerification, outputWordOfVerification, seed
}

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package eccpow
import (
"math/rand"
"reflect"
"testing"
"github.com/cryptoecc/ETH-ECC/core/types"
)
func TestNonceDecoding(t *testing.T) {
LDPCNonce := generateRandomNonce()
EncodedNonce := types.EncodeNonce(LDPCNonce)
DecodedNonce := EncodedNonce.Uint64()
if LDPCNonce == DecodedNonce {
t.Logf("LDPCNonce : %v\n", LDPCNonce)
t.Logf("Decoded Nonce : %v\n", DecodedNonce)
} else {
t.Errorf("LDPCNonce : %v\n", LDPCNonce)
t.Errorf("Decoded Nonce : %v\n", DecodedNonce)
}
}
func TestGenerateH(t *testing.T) {
for i := 0; i < 10; i++ {
header := new(types.Header)
header.Difficulty = ProbToDifficulty(Table[0].miningProb)
parameters, _ := setParameters(header)
H1 := generateH(parameters)
H2 := generateH(parameters)
if !reflect.DeepEqual(H1, H2) {
t.Error("Wrong")
}
}
}
func TestRandShuffle(t *testing.T) {
for attempt := 0; attempt < 100; attempt++ {
var hSeed int64
var colOrder []int
for i := 1; i < 4; i++ {
colOrder = nil
for j := 0; j < 32; j++ {
colOrder = append(colOrder, j)
}
rand.Seed(hSeed)
rand.Shuffle(len(colOrder), func(i, j int) {
colOrder[i], colOrder[j] = colOrder[j], colOrder[i]
})
hSeed--
}
var hSeed2 int64
var colOrder2 []int
for i := 1; i < 4; i++ {
colOrder2 = nil
for j := 0; j < 32; j++ {
colOrder2 = append(colOrder2, j)
}
rand.Seed(hSeed2)
rand.Shuffle(len(colOrder2), func(i, j int) {
colOrder2[i], colOrder2[j] = colOrder2[j], colOrder2[i]
})
hSeed2--
}
if !reflect.DeepEqual(colOrder, colOrder2) {
t.Error("Wrong")
}
}
}

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package eccpow
import (
crand "crypto/rand"
"math"
"math/big"
"math/rand"
"github.com/cryptoecc/ETH-ECC/core/types"
)
//Parameters for matrix and seed
const (
BigInfinity = 1000000.0
Inf = 64.0
MaxNonce = 1<<32 - 1
// These parameters are only used for the decoding function.
maxIter = 20 // The maximum number of iteration in the decoder
crossErr = 0.01 // A transisient error probability. This is also fixed as a small value
)
type Parameters struct {
n int
m int
wc int
wr int
seed int
}
// setParameters sets n, wc, wr, m, seed return parameters and difficulty level
func setParameters(header *types.Header) (Parameters, int) {
//level := SearchLevel(header.Difficulty)
level := SearchLevel(header.Difficulty)
parameters := Parameters{
n: Table[level].n,
wc: Table[level].wc,
wr: Table[level].wr,
}
parameters.m = int(parameters.n * parameters.wc / parameters.wr)
parameters.seed = generateSeed(header.ParentHash)
return parameters, level
}
// setParameters sets n, wc, wr, m, seed return parameters and difficulty level
func setParameters_Seoul(header *types.Header) (Parameters, int) {
//level := SearchLevel(header.Difficulty)
level := SearchLevel_Seoul(header.Difficulty)
table := getTable(level)
parameters := Parameters{
n: table.n,
wc: table.wc,
wr: table.wr,
}
parameters.m = int(parameters.n * parameters.wc / parameters.wr)
parameters.seed = generateSeed(header.ParentHash)
return parameters, level
}
//generateRandomNonce generate 64bit random nonce with similar way of ethereum block nonce
func generateRandomNonce() uint64 {
seed, _ := crand.Int(crand.Reader, big.NewInt(math.MaxInt64))
source := rand.New(rand.NewSource(seed.Int64()))
return uint64(source.Int63())
}
func funcF(x float64) float64 {
if x >= BigInfinity {
return 1.0 / BigInfinity
} else if x <= (1.0 / BigInfinity) {
return BigInfinity
} else {
return math.Log((math.Exp(x) + 1) / (math.Exp(x) - 1))
}
}
func infinityTest(x float64) float64 {
if x >= Inf {
return Inf
} else if x <= -Inf {
return -Inf
} else {
return x
}
}
//generateSeed generate seed using previous hash vector
func generateSeed(phv [32]byte) int {
sum := 0
for i := 0; i < len(phv); i++ {
sum += int(phv[i])
}
return sum
}
//generateH generate H matrix using parameters
//generateH Cannot be sure rand is same with original implementation of C++
func generateH(parameters Parameters) [][]int {
var H [][]int
var hSeed int64
var colOrder []int
hSeed = int64(parameters.seed)
k := parameters.m / parameters.wc
H = make([][]int, parameters.m)
for i := range H {
H[i] = make([]int, parameters.n)
}
for i := 0; i < k; i++ {
for j := i * parameters.wr; j < (i+1)*parameters.wr; j++ {
H[i][j] = 1
}
}
for i := 1; i < parameters.wc; i++ {
colOrder = nil
for j := 0; j < parameters.n; j++ {
colOrder = append(colOrder, j)
}
src := rand.NewSource(hSeed)
rnd := rand.New(src)
rnd.Seed(hSeed)
rnd.Shuffle(len(colOrder), func(i, j int) {
colOrder[i],colOrder[j] = colOrder[j], colOrder[i]
})
hSeed--
for j := 0; j < parameters.n; j++ {
index := (colOrder[j]/parameters.wr + k*i)
H[index][j] = 1
}
}
return H
}
//generateQ generate colInRow and rowInCol matrix using H matrix
func generateQ(parameters Parameters, H [][]int) ([][]int, [][]int) {
colInRow := make([][]int, parameters.wr)
for i := 0; i < parameters.wr; i++ {
colInRow[i] = make([]int, parameters.m)
}
rowInCol := make([][]int, parameters.wc)
for i := 0; i < parameters.wc; i++ {
rowInCol[i] = make([]int, parameters.n)
}
rowIndex := 0
colIndex := 0
for i := 0; i < parameters.m; i++ {
for j := 0; j < parameters.n; j++ {
if H[i][j] == 1 {
colInRow[colIndex%parameters.wr][i] = j
colIndex++
rowInCol[rowIndex/parameters.n][j] = i
rowIndex++
}
}
}
return colInRow, rowInCol
}
//generateHv generate hashvector
//It needs to compare with origin C++ implementation Especially when sha256 function is used
func generateHv(parameters Parameters, encryptedHeaderWithNonce []byte) []int {
hashVector := make([]int, parameters.n)
/*
if parameters.n <= 256 {
tmpHashVector = sha256.Sum256(headerWithNonce)
} else {
/*
This section is for a case in which the size of a hash vector is larger than 256.
This section will be implemented soon.
}
transform the constructed hexadecimal array into an binary array
ex) FE01 => 11111110000 0001
*/
for i := 0; i < parameters.n/8; i++ {
decimal := int(encryptedHeaderWithNonce[i])
for j := 7; j >= 0; j-- {
hashVector[j+8*(i)] = decimal % 2
decimal /= 2
}
}
//outputWord := hashVector[:parameters.n]
return hashVector
}