mirror of
https://github.com/ethereum/go-ethereum.git
synced 2026-07-25 14:16:44 +00:00
manually cherry-pick upstream commit 30ce173
This commit is contained in:
parent
141a8df143
commit
d53a35993f
4 changed files with 158 additions and 33 deletions
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@ -14,47 +14,64 @@
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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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//go:build nacl || js || !cgo || gofuzz
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// +build nacl js !cgo gofuzz
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//go:build nacl || js || wasip1 || !cgo || gofuzz || tinygo
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// +build nacl js wasip1 !cgo gofuzz tinygo
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package crypto
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import (
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"crypto/ecdsa"
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"crypto/elliptic"
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"errors"
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"fmt"
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"math/big"
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"github.com/btcsuite/btcd/btcec"
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"github.com/decred/dcrd/dcrec/secp256k1/v4"
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decred_ecdsa "github.com/decred/dcrd/dcrec/secp256k1/v4/ecdsa"
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)
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// Ecrecover returns the uncompressed public key that created the given signature.
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func Ecrecover(hash, sig []byte) ([]byte, error) {
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pub, err := SigToPub(hash, sig)
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pub, err := sigToPub(hash, sig)
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if err != nil {
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return nil, err
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}
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bytes := (*btcec.PublicKey)(pub).SerializeUncompressed()
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bytes := pub.SerializeUncompressed()
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return bytes, err
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}
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func sigToPub(hash, sig []byte) (*secp256k1.PublicKey, error) {
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if len(sig) != SignatureLength {
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return nil, errors.New("invalid signature")
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}
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// Convert to secp256k1 input format with 'recovery id' v at the beginning.
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btcsig := make([]byte, SignatureLength)
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btcsig[0] = sig[RecoveryIDOffset] + 27
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copy(btcsig[1:], sig)
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pub, _, err := decred_ecdsa.RecoverCompact(btcsig, hash)
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return pub, err
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}
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// SigToPub returns the public key that created the given signature.
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func SigToPub(hash, sig []byte) (*ecdsa.PublicKey, error) {
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// Convert to btcec input format with 'recovery id' v at the beginning.
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btcsig := make([]byte, SignatureLength)
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btcsig[0] = sig[64] + 27
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copy(btcsig[1:], sig)
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pub, _, err := btcec.RecoverCompact(btcec.S256(), btcsig, hash)
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return (*ecdsa.PublicKey)(pub), err
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pub, err := sigToPub(hash, sig)
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if err != nil {
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return nil, err
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}
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// We need to explicitly set the curve here, because we're wrapping
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// the original curve to add (un-)marshalling
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return &ecdsa.PublicKey{
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Curve: S256(),
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X: pub.X(),
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Y: pub.Y(),
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}, nil
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}
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// Sign calculates an ECDSA signature.
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//
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// This function is susceptible to chosen plaintext attacks that can leak
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// information about the private key that is used for signing. Callers must
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// be aware that the given hash cannot be chosen by an adversery. Common
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// be aware that the given hash cannot be chosen by an adversary. Common
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// solution is to hash any input before calculating the signature.
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//
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// The produced signature is in the [R || S || V] format where V is 0 or 1.
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@ -62,17 +79,20 @@ func Sign(hash []byte, prv *ecdsa.PrivateKey) ([]byte, error) {
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if len(hash) != 32 {
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return nil, fmt.Errorf("hash is required to be exactly 32 bytes (%d)", len(hash))
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}
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if prv.Curve != btcec.S256() {
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return nil, fmt.Errorf("private key curve is not secp256k1")
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if prv.Curve != S256() {
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return nil, errors.New("private key curve is not secp256k1")
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}
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sig, err := btcec.SignCompact(btcec.S256(), (*btcec.PrivateKey)(prv), hash, false)
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if err != nil {
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return nil, err
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// ecdsa.PrivateKey -> secp256k1.PrivateKey
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var priv secp256k1.PrivateKey
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if overflow := priv.Key.SetByteSlice(prv.D.Bytes()); overflow || priv.Key.IsZero() {
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return nil, errors.New("invalid private key")
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}
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defer priv.Zero()
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sig := decred_ecdsa.SignCompact(&priv, hash, false) // ref uncompressed pubkey
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// Convert to Ethereum signature format with 'recovery id' v at the end.
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v := sig[0] - 27
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copy(sig, sig[1:])
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sig[64] = v
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sig[RecoveryIDOffset] = v
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return sig, nil
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}
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@ -83,13 +103,20 @@ func VerifySignature(pubkey, hash, signature []byte) bool {
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if len(signature) != 64 {
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return false
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}
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sig := &btcec.Signature{R: new(big.Int).SetBytes(signature[:32]), S: new(big.Int).SetBytes(signature[32:])}
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key, err := btcec.ParsePubKey(pubkey, btcec.S256())
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var r, s secp256k1.ModNScalar
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if r.SetByteSlice(signature[:32]) {
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return false // overflow
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}
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if s.SetByteSlice(signature[32:]) {
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return false
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}
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sig := decred_ecdsa.NewSignature(&r, &s)
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key, err := secp256k1.ParsePubKey(pubkey)
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if err != nil {
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return false
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}
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// Reject malleable signatures. libsecp256k1 does this check but btcec doesn't.
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if sig.S.Cmp(secp256k1halfN) > 0 {
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// Reject malleable signatures. libsecp256k1 does this check but decred doesn't.
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if s.IsOverHalfOrder() {
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return false
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}
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return sig.Verify(hash, key)
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@ -100,19 +127,67 @@ func DecompressPubkey(pubkey []byte) (*ecdsa.PublicKey, error) {
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if len(pubkey) != 33 {
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return nil, errors.New("invalid compressed public key length")
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}
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key, err := btcec.ParsePubKey(pubkey, btcec.S256())
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key, err := secp256k1.ParsePubKey(pubkey)
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if err != nil {
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return nil, err
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}
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return key.ToECDSA(), nil
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// We need to explicitly set the curve here, because we're wrapping
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// the original curve to add (un-)marshalling
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return &ecdsa.PublicKey{
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Curve: S256(),
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X: key.X(),
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Y: key.Y(),
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}, nil
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}
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// CompressPubkey encodes a public key to the 33-byte compressed format.
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// CompressPubkey encodes a public key to the 33-byte compressed format. The
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// provided PublicKey must be valid. Namely, the coordinates must not be larger
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// than 32 bytes each, they must be less than the field prime, and it must be a
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// point on the secp256k1 curve. This is the case for a PublicKey constructed by
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// elliptic.Unmarshal (see UnmarshalPubkey), or by ToECDSA and ecdsa.GenerateKey
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// when constructing a PrivateKey.
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func CompressPubkey(pubkey *ecdsa.PublicKey) []byte {
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return (*btcec.PublicKey)(pubkey).SerializeCompressed()
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// NOTE: the coordinates may be validated with
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// secp256k1.ParsePubKey(FromECDSAPub(pubkey))
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var x, y secp256k1.FieldVal
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x.SetByteSlice(pubkey.X.Bytes())
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y.SetByteSlice(pubkey.Y.Bytes())
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return secp256k1.NewPublicKey(&x, &y).SerializeCompressed()
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}
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// S256 returns an instance of the secp256k1 curve.
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func S256() elliptic.Curve {
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return btcec.S256()
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func S256() EllipticCurve {
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return btCurve{secp256k1.S256()}
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}
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type btCurve struct {
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*secp256k1.KoblitzCurve
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}
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// Marshal converts a point given as (x, y) into a byte slice.
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func (curve btCurve) Marshal(x, y *big.Int) []byte {
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byteLen := (curve.Params().BitSize + 7) / 8
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ret := make([]byte, 1+2*byteLen)
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ret[0] = 4 // uncompressed point
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x.FillBytes(ret[1 : 1+byteLen])
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y.FillBytes(ret[1+byteLen : 1+2*byteLen])
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return ret
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}
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// Unmarshal converts a point, serialised by Marshal, into an x, y pair. On
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// error, x = nil.
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func (curve btCurve) Unmarshal(data []byte) (x, y *big.Int) {
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byteLen := (curve.Params().BitSize + 7) / 8
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if len(data) != 1+2*byteLen {
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return nil, nil
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}
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if data[0] != 4 { // uncompressed form
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return nil, nil
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}
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x = new(big.Int).SetBytes(data[1 : 1+byteLen])
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y = new(big.Int).SetBytes(data[1+byteLen:])
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return
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}
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1
go.mod
1
go.mod
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@ -17,6 +17,7 @@ require (
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github.com/crate-crypto/go-kzg-4844 v1.0.0
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github.com/davecgh/go-spew v1.1.1
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github.com/deckarep/golang-set v0.0.0-20180603214616-504e848d77ea
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github.com/decred/dcrd/dcrec/secp256k1/v4 v4.4.0
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github.com/docker/docker v1.4.2-0.20180625184442-8e610b2b55bf
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github.com/dop251/goja v0.0.0-20211011172007-d99e4b8cbf48
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github.com/edsrzf/mmap-go v1.0.0
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4
go.sum
4
go.sum
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@ -112,6 +112,10 @@ github.com/davecgh/go-spew v1.1.1 h1:vj9j/u1bqnvCEfJOwUhtlOARqs3+rkHYY13jYWTU97c
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github.com/davecgh/go-spew v1.1.1/go.mod h1:J7Y8YcW2NihsgmVo/mv3lAwl/skON4iLHjSsI+c5H38=
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github.com/deckarep/golang-set v0.0.0-20180603214616-504e848d77ea h1:j4317fAZh7X6GqbFowYdYdI0L9bwxL07jyPZIdepyZ0=
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github.com/deckarep/golang-set v0.0.0-20180603214616-504e848d77ea/go.mod h1:93vsz/8Wt4joVM7c2AVqh+YRMiUSc14yDtF28KmMOgQ=
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github.com/decred/dcrd/crypto/blake256 v1.1.0 h1:zPMNGQCm0g4QTY27fOCorQW7EryeQ/U0x++OzVrdms8=
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github.com/decred/dcrd/crypto/blake256 v1.1.0/go.mod h1:2OfgNZ5wDpcsFmHmCK5gZTPcCXqlm2ArzUIkw9czNJo=
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github.com/decred/dcrd/dcrec/secp256k1/v4 v4.4.0 h1:NMZiJj8QnKe1LgsbDayM4UoHwbvwDRwnI3hwNaAHRnc=
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github.com/decred/dcrd/dcrec/secp256k1/v4 v4.4.0/go.mod h1:ZXNYxsqcloTdSy/rNShjYzMhyjf0LaoftYK0p+A3h40=
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github.com/deepmap/oapi-codegen v1.6.0/go.mod h1:ryDa9AgbELGeB+YEXE1dR53yAjHwFvE9iAUlWl9Al3M=
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github.com/deepmap/oapi-codegen v1.8.2 h1:SegyeYGcdi0jLLrpbCMoJxnUUn8GBXHsvr4rbzjuhfU=
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github.com/deepmap/oapi-codegen v1.8.2/go.mod h1:YLgSKSDv/bZQB7N4ws6luhozi3cEdRktEqrX88CvjIw=
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@ -1,8 +1,53 @@
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// Copyright 2021 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 secp256k1
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import "testing"
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import (
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"fmt"
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"testing"
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dcred_secp256k1 "github.com/decred/dcrd/dcrec/secp256k1/v4"
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"github.com/scroll-tech/go-ethereum/crypto/secp256k1"
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)
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func TestFuzzer(t *testing.T) {
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test := "00000000N0000000/R00000000000000000U0000S0000000mkhP000000000000000U"
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Fuzz([]byte(test))
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a, b := "00000000N0000000/R0000000000000000", "0U0000S0000000mkhP000000000000000U"
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fuzz([]byte(a), []byte(b))
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}
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func Fuzz(f *testing.F) {
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f.Fuzz(func(t *testing.T, a, b []byte) {
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fuzz(a, b)
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})
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}
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func fuzz(dataP1, dataP2 []byte) {
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var (
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curveA = secp256k1.S256()
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curveB = dcred_secp256k1.S256()
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)
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// first point
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x1, y1 := curveB.ScalarBaseMult(dataP1)
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// second points
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x2, y2 := curveB.ScalarBaseMult(dataP2)
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resAX, resAY := curveA.Add(x1, y1, x2, y2)
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resBX, resBY := curveB.Add(x1, y1, x2, y2)
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if resAX.Cmp(resBX) != 0 || resAY.Cmp(resBY) != 0 {
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fmt.Printf("%s %s %s %s\n", x1, y1, x2, y2)
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panic(fmt.Sprintf("Addition failed: geth: %s %s btcd: %s %s", resAX, resAY, resBX, resBY))
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}
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}
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