Files
crypto/signatures/bls/bls_sig/usual_bls_sig_pop_test.go
T

937 lines
24 KiB
Go

//
// Copyright Coinbase, Inc. All Rights Reserved.
//
// SPDX-License-Identifier: Apache-2.0
//
package bls_sig
import (
"bytes"
"math/big"
"math/rand"
"testing"
"github.com/sonr-io/crypto/core/curves/native/bls12381"
)
const numAggregateG2 = 10
func TestGetPublicKeyG1(t *testing.T) {
sk := genSecretKey(t)
pk := genPublicKey(sk, t)
actual := marshalStruct(pk, t)
expected := []byte{
166,
149,
173,
50,
93,
252,
126,
17,
145,
251,
201,
241,
134,
245,
142,
255,
66,
166,
52,
2,
151,
49,
177,
131,
128,
255,
137,
191,
66,
196,
100,
164,
44,
184,
202,
85,
178,
0,
240,
81,
245,
127,
30,
24,
147,
198,
135,
89,
}
if !bytes.Equal(actual, expected) {
t.Errorf("Expected GetPublicKey to pass but failed.")
}
}
func testSignG2(message []byte, t *testing.T) {
sk := genSecretKey(t)
sig := genSignature(sk, message, t)
pk := genPublicKey(sk, t)
bls := NewSigPop()
if res, err := bls.Verify(pk, message, sig); !res {
t.Errorf("createSignature failed when it should've passed: %v", err)
}
}
func TestSignG2EmptyMessage(t *testing.T) {
bls := NewSigPop()
sk := genSecretKey(t)
sig, _ := bls.Sign(sk, nil)
pk := genPublicKey(sk, t)
if res, _ := bls.Verify(pk, nil, sig); res {
t.Errorf("createSignature succeeded when it should've failed")
}
message := []byte{}
sig = genSignature(sk, message, t)
if res, err := bls.Verify(pk, message, sig); !res {
t.Errorf("create and verify failed on empty message: %v", err)
}
}
func TestSignG2OneByteMessage(t *testing.T) {
message := []byte{1}
testSignG2(message, t)
}
func TestSignG2LargeMessage(t *testing.T) {
message := make([]byte, 1048576)
testSignG2(message, t)
}
func TestSignG2RandomMessage(t *testing.T) {
message := make([]byte, 65537)
readRand(message, t)
testSignG2(message, t)
}
func TestSignG2BadMessage(t *testing.T) {
message := make([]byte, 1024)
sk := genSecretKey(t)
sig := genSignature(sk, message, t)
pk := genPublicKey(sk, t)
message = []byte{1, 2, 3, 4, 5, 6, 7, 8, 9, 0}
bls := NewSigPop()
if res, _ := bls.Verify(pk, message, sig); res {
t.Errorf("Expected signature to not verify")
}
}
func TestBadConversionsG2(t *testing.T) {
sk := genSecretKey(t)
message := []byte{1, 2, 3, 4, 5, 6, 7, 8, 9, 0}
sig := genSignature(sk, message, t)
pk := genPublicKey(sk, t)
bls := NewSigPop()
if res, _ := bls.Verify(pk, message, sig); !res {
t.Errorf("Signature should be valid")
}
if res, _ := sig.verify(pk, message, blsSignaturePopDst); !res {
t.Errorf("Signature should be valid")
}
// Convert public key to signature in G2
sig2 := new(SignatureVt)
err := sig2.UnmarshalBinary(marshalStruct(pk, t))
if err != nil {
t.Errorf("Should be able to convert to signature in G2")
}
pk2 := new(PublicKeyVt)
err = pk2.UnmarshalBinary(marshalStruct(sig, t))
if err != nil {
t.Errorf("Should be able to convert to public key in G1")
}
if res, _ := pk2.verifySignatureVt(message, sig2, blsSignaturePopDst); res {
t.Errorf("The signature shouldn't verify")
}
}
func TestAggregatePublicKeysG1(t *testing.T) {
pks := []*PublicKey{}
ikm := make([]byte, 32)
for i := 0; i < 20; i++ {
readRand(ikm, t)
sk := genRandSecretKey(ikm, t)
pk := genPublicKey(sk, t)
pks = append(pks, pk)
}
apk1, err := aggregatePublicKeys(pks...)
if err != nil {
t.Errorf("%v", err)
}
rng := rand.New(rand.NewSource(1234567890))
rng.Shuffle(len(pks), func(i, j int) { pks[i], pks[j] = pks[j], pks[i] })
apk2, err := aggregatePublicKeys(pks...)
if err != nil {
t.Errorf("%v", err)
}
if !bytes.Equal(marshalStruct(apk1, t), marshalStruct(apk2, t)) {
t.Errorf("Aggregated public keys should be equal")
}
rand.Shuffle(len(pks), func(i, j int) { pks[i], pks[j] = pks[j], pks[i] })
apk1, err = aggregatePublicKeys(pks...)
if err != nil {
t.Errorf("%v", err)
}
if !bytes.Equal(marshalStruct(apk1, t), marshalStruct(apk2, t)) {
t.Errorf("Aggregated public keys should be equal")
}
}
func TestAggregateSignaturesG2(t *testing.T) {
var sigs []*Signature
ikm := make([]byte, 32)
for i := 0; i < 20; i++ {
readRand(ikm, t)
sk := genRandSecretKey(ikm, t)
sig := genSignature(sk, ikm, t)
sigs = append(sigs, sig)
}
asig1, err := aggregateSignatures(sigs...)
if err != nil {
t.Errorf("%v", err)
}
rng2 := rand.New(rand.NewSource(1234567890))
rng2.Shuffle(len(sigs), func(i, j int) { sigs[i], sigs[j] = sigs[j], sigs[i] })
asig2, err := aggregateSignatures(sigs...)
if err != nil {
t.Errorf("%v", err)
}
if !bytes.Equal(marshalStruct(asig1, t), marshalStruct(asig2, t)) {
t.Errorf("Aggregated signatures should be equal")
}
rand.Shuffle(len(sigs), func(i, j int) { sigs[i], sigs[j] = sigs[j], sigs[i] })
asig1, err = aggregateSignatures(sigs...)
if err != nil {
t.Errorf("%v", err)
}
if !bytes.Equal(marshalStruct(asig1, t), marshalStruct(asig2, t)) {
t.Errorf("Aggregated signatures should be equal")
}
}
func initAggregatedTestValuesG2(messages [][]byte, t *testing.T) ([]*PublicKey, []*Signature) {
pks := []*PublicKey{}
sigs := []*Signature{}
ikm := make([]byte, 32)
for i := 0; i < numAggregateG2; i++ {
readRand(ikm, t)
sk := genRandSecretKey(ikm, t)
sig := genSignature(sk, messages[i%len(messages)], t)
sigs = append(sigs, sig)
pk := genPublicKey(sk, t)
pks = append(pks, pk)
}
return pks, sigs
}
func TestAggregatedFunctionalityG2(t *testing.T) {
message := make([]byte, 20)
messages := make([][]byte, 1)
messages[0] = message
pks, sigs := initAggregatedTestValuesG2(messages, t)
bls := NewSigPop()
asig, err := bls.AggregateSignatures(sigs...)
if err != nil {
t.Errorf("%v", err)
}
apk, err := bls.AggregatePublicKeys(pks...)
if err != nil {
t.Errorf("%v", err)
}
if res, _ := bls.VerifyMultiSignature(apk, message, asig); !res {
t.Errorf("Should verify aggregated signatures with same message")
}
if res, _ := asig.verify(apk, message, blsSignaturePopDst); !res {
t.Errorf("MultiSignature.verify failed.")
}
if res, _ := apk.verify(message, asig, blsSignaturePopDst); !res {
t.Errorf("MultiPublicKey.verify failed.")
}
}
func TestBadAggregatedFunctionalityG2(t *testing.T) {
message := make([]byte, 20)
messages := make([][]byte, 1)
messages[0] = message
pks, sigs := initAggregatedTestValuesG2(messages, t)
bls := NewSigPop()
apk, err := bls.AggregatePublicKeys(pks[2:]...)
if err != nil {
t.Errorf("%v", err)
}
asig, err := bls.AggregateSignatures(sigs...)
if err != nil {
t.Errorf("%v", err)
}
if res, _ := bls.VerifyMultiSignature(apk, message, asig); res {
t.Errorf(
"Should not verify aggregated signatures with same message when some public keys are missing",
)
}
apk, err = bls.AggregatePublicKeys(pks...)
if err != nil {
t.Errorf("%v", err)
}
asig, err = bls.AggregateSignatures(sigs[2:]...)
if err != nil {
t.Errorf("%v", err)
}
if res, _ := bls.VerifyMultiSignature(apk, message, asig); res {
t.Errorf(
"Should not verify aggregated signatures with same message when some signatures are missing",
)
}
asig, err = bls.AggregateSignatures(sigs...)
if err != nil {
t.Errorf("%v", err)
}
badmsg := []byte{1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20}
if res, _ := bls.VerifyMultiSignature(apk, badmsg, asig); res {
t.Errorf("Should not verify aggregated signature with bad message")
}
}
func TestAggregateVerifyG2Pass(t *testing.T) {
messages := make([][]byte, numAggregateG2)
for i := 0; i < numAggregateG2; i++ {
message := make([]byte, 20)
readRand(message, t)
messages[i] = message
}
pks, sigs := initAggregatedTestValuesG2(messages, t)
bls := NewSigPop()
if res, _ := bls.AggregateVerify(pks, messages, sigs); !res {
t.Errorf("Expected aggregateVerify to pass but failed")
}
}
func TestAggregateVerifyG2MsgSigCntMismatch(t *testing.T) {
messages := make([][]byte, 8)
for i := 0; i < 8; i++ {
message := make([]byte, 20)
readRand(message, t)
messages[i] = message
}
pks, sigs := initAggregatedTestValuesG2(messages, t)
bls := NewSigPop()
if res, _ := bls.AggregateVerify(pks, messages, sigs); res {
t.Errorf("Expected AggregateVerifyG2 to fail with duplicate message but passed")
}
}
func TestAggregateVerifyG2FailDupMsg(t *testing.T) {
messages := make([][]byte, 10)
for i := 0; i < 9; i++ {
message := make([]byte, 20)
readRand(message, t)
messages[i] = message
}
// Duplicate message
messages[9] = messages[0]
pks, sigs := initAggregatedTestValuesG2(messages, t)
bls := NewSigPop()
if res, _ := bls.AggregateVerify(pks, messages, sigs); res {
t.Errorf("Expected aggregateVerify to fail with duplicate message but passed")
}
}
func TestAggregateVerifyG2FailIncorrectMsg(t *testing.T) {
messages := make([][]byte, 10)
for i := 0; i < 9; i++ {
message := make([]byte, 20)
readRand(message, t)
messages[i] = message
}
// Duplicate message
messages[9] = messages[0]
pks, sigs := initAggregatedTestValuesG2(messages, t)
bls := NewSigPop()
if res, _ := bls.AggregateVerify(pks[2:], messages[2:], sigs); res {
t.Errorf("Expected aggregateVerify to fail with duplicate message but passed")
}
}
func TestAggregateVerifyG2OneMsg(t *testing.T) {
messages := make([][]byte, 1)
messages[0] = make([]byte, 20)
sk := genSecretKey(t)
sig := genSignature(sk, messages[0], t)
pk := genPublicKey(sk, t)
bls := NewSigPop()
// Should be the same as verifySignature
if res, _ := bls.AggregateVerify([]*PublicKey{pk}, messages, []*Signature{sig}); !res {
t.Errorf("Expected AggregateVerifyG2OneMsg to pass but failed")
}
}
func TestVerifyG2Mutability(t *testing.T) {
// verify should not change any inputs
ikm := make([]byte, 32)
ikm_copy := make([]byte, 32)
readRand(ikm, t)
copy(ikm_copy, ikm)
bls := NewSigPop()
pk, sk, err := bls.KeygenWithSeed(ikm)
if !bytes.Equal(ikm, ikm_copy) {
t.Errorf("SigPop.KeygenWithSeed modifies ikm")
}
if err != nil {
t.Errorf("Expected KeygenWithSeed to succeed but failed.")
}
sig, err := bls.Sign(sk, ikm)
if !bytes.Equal(ikm, ikm_copy) {
t.Errorf("SigPop.Sign modifies message")
}
if err != nil {
t.Errorf("SigPop.KeygenWithSeed to succeed but failed.")
}
sigCopy := marshalStruct(sig, t)
if res, _ := bls.Verify(pk, ikm, sig); !res {
t.Errorf("Expected verify to succeed but failed.")
}
if !bytes.Equal(ikm, ikm_copy) {
t.Errorf("SigPop.verify modifies message")
}
if !bytes.Equal(sigCopy, marshalStruct(sig, t)) {
t.Errorf("SigPop.verify modifies signature")
}
}
func TestPublicKeyG1FromBadBytes(t *testing.T) {
pk := make([]byte, 32)
err := new(PublicKey).UnmarshalBinary(pk)
if err == nil {
t.Errorf("Expected PublicKeyG1FromBytes to fail but passed")
}
// All zeros
pk = make([]byte, PublicKeySize)
// See https://github.com/zcash/librustzcash/blob/master/pairing/src/bls12_381/README.md#serialization
// 1 << 7 == compressed
// 1 << 6 == infinity or zero
pk[0] = 0xc0
err = new(PublicKey).UnmarshalBinary(pk)
if err == nil {
t.Errorf("Expected PublicKeyG1FromBytes to fail but passed")
}
sk := genSecretKey(t)
pk1, err := sk.GetPublicKey()
if err != nil {
t.Errorf("Expected GetPublicKey to pass but failed.")
}
out := marshalStruct(pk1, t)
out[3] += 1
err = new(PublicKey).UnmarshalBinary(pk)
if err == nil {
t.Errorf("Expected PublicKeyG1FromBytes to fail but passed")
}
}
func TestSignatureG2FromBadBytes(t *testing.T) {
sig := make([]byte, 32)
err := new(Signature).UnmarshalBinary(sig)
if err == nil {
t.Errorf("Expected SignatureG2FromBytes to fail but passed")
}
// All zeros
sig = make([]byte, SignatureSize)
// See https://github.com/zcash/librustzcash/blob/master/pairing/src/bls12_381/README.md#serialization
// 1 << 7 == compressed
// 1 << 6 == infinity or zero
sig[0] = 0xc0
err = new(Signature).UnmarshalBinary(sig)
if err == nil {
t.Errorf("Expected SignatureG2FromBytes to fail but passed")
}
}
func TestBadSecretKeyG2(t *testing.T) {
sk := &SecretKey{value: bls12381.Bls12381FqNew()}
pk, err := sk.GetPublicKey()
if err == nil {
t.Errorf("Expected GetPublicKey to fail with 0 byte secret key but passed: %v", pk)
}
_ = sk.UnmarshalBinary(sk.value.Params.BiModulus.Bytes())
pk, err = sk.GetPublicKey()
if err == nil {
t.Errorf("Expected GetPublicKey to fail with secret key with Q but passed: %v", pk)
}
err = sk.UnmarshalBinary([]byte{0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16})
if err == nil {
t.Errorf("Expected SecretKeyFromBytes to fail with not enough bytes but passed: %v", pk)
}
err = sk.UnmarshalBinary(make([]byte, 32))
if err == nil {
t.Errorf("Expected SecretKeyFromBytes to fail with all zeros but passed: %v", pk)
}
}
func TestProofOfPossessionG2Works(t *testing.T) {
ikm := make([]byte, 32)
readRand(ikm, t)
bls := NewSigPop()
pk, sk, err := bls.KeygenWithSeed(ikm)
if err != nil {
t.Errorf("Key gen failed but should've succeeded")
}
pop, err := bls.PopProve(sk)
if err != nil {
t.Errorf("PopProve failed but should've succeeded")
}
if res, _ := bls.PopVerify(pk, pop); !res {
t.Errorf("PopVerify failed but should've succeeded")
}
}
func TestProofOfPossessionG2FromBadKey(t *testing.T) {
ikm := make([]byte, 32)
value := new(big.Int)
value.SetBytes(ikm)
sk := SecretKey{value: bls12381.Bls12381FqNew().SetBigInt(value)}
_, err := sk.createProofOfPossession(blsSignaturePopDst)
if err == nil {
t.Errorf("createProofOfPossession should've failed but succeeded.")
}
}
func TestProofOfPossessionG2BytesWorks(t *testing.T) {
sk := genSecretKey(t)
pop, err := sk.createProofOfPossession(blsSignaturePopDst)
if err != nil {
t.Errorf("CreateProofOfPossesionG2 failed but shouldn've succeeded.")
}
out := marshalStruct(pop, t)
if len(out) != ProofOfPossessionSize {
t.Errorf(
"ProofOfPossessionBytes incorrect size: expected %v, got %v",
ProofOfPossessionSize,
len(out),
)
}
pop2 := new(ProofOfPossession)
err = pop2.UnmarshalBinary(out)
if err != nil {
t.Errorf("ProofOfPossession.UnmarshalBinary failed: %v", err)
}
out2 := marshalStruct(pop2, t)
if !bytes.Equal(out, out2) {
t.Errorf("ProofOfPossession.UnmarshalBinary failed, not equal when deserialized")
}
}
func TestProofOfPossessionG2BadBytes(t *testing.T) {
zeros := make([]byte, ProofOfPossessionSize)
temp := new(ProofOfPossession)
err := temp.UnmarshalBinary(zeros)
if err == nil {
t.Errorf("ProofOfPossession.UnmarshalBinary shouldn've failed but succeeded.")
}
}
func TestProofOfPossessionG2Fails(t *testing.T) {
sk := genSecretKey(t)
pop, err := sk.createProofOfPossession(blsSignaturePopDst)
if err != nil {
t.Errorf("Expected createProofOfPossession to succeed but failed.")
}
ikm := make([]byte, 32)
readRand(ikm, t)
sk = genRandSecretKey(ikm, t)
bad, err := sk.GetPublicKey()
if err != nil {
t.Errorf("Expected PublicKeyG1FromBytes to succeed but failed: %v", err)
}
if res, _ := pop.verify(bad, blsSignaturePopDst); res {
t.Errorf("Expected ProofOfPossession verify to fail but succeeded.")
}
}
func TestMultiSigG2Bytes(t *testing.T) {
messages := make([][]byte, 1)
message := make([]byte, 20)
messages[0] = message
_, sigs := initAggregatedTestValuesG2(messages, t)
bls := NewSigPop()
msig, err := bls.AggregateSignatures(sigs...)
if err != nil {
t.Errorf("%v", err)
}
msigBytes := marshalStruct(msig, t)
if len(msigBytes) != SignatureSize {
t.Errorf(
"Invalid multi-sig length. Expected %d bytes, found %d",
SignatureSize,
len(msigBytes),
)
}
msig2 := new(MultiSignature)
err = msig2.UnmarshalBinary(msigBytes)
if err != nil {
t.Errorf("MultiSignatureG2FromBytes failed with %v", err)
}
msigBytes2 := marshalStruct(msig2, t)
if !bytes.Equal(msigBytes, msigBytes2) {
t.Errorf("Bytes methods not equal.")
}
}
func TestMultiSigG2BadBytes(t *testing.T) {
messages := make([][]byte, 1)
message := make([]byte, 20)
messages[0] = message
_, sigs := initAggregatedTestValuesG2(messages, t)
bls := NewSigPop()
msig, err := bls.AggregateSignatures(sigs...)
if err != nil {
t.Errorf("%v", err)
}
msigBytes := marshalStruct(msig, t)
if len(msigBytes) != SignatureSize {
t.Errorf(
"Invalid multi-sig length. Expected %d bytes, found %d",
SignatureSize,
len(msigBytes),
)
}
msigBytes[0] = 0
temp := new(MultiSignature)
err = temp.UnmarshalBinary(msigBytes)
if err == nil {
t.Errorf("MultiSignatureG2FromBytes should've failed but succeeded")
}
msigBytes = make([]byte, SignatureSize)
err = temp.UnmarshalBinary(msigBytes)
if err == nil {
t.Errorf("MultiSignatureG2FromBytes should've failed but succeeded")
}
}
func TestMultiPubkeyG1Bytes(t *testing.T) {
messages := make([][]byte, 1)
message := make([]byte, 20)
messages[0] = message
pks, _ := initAggregatedTestValuesG2(messages, t)
bls := NewSigPop()
apk, err := bls.AggregatePublicKeys(pks...)
if err != nil {
t.Errorf("%v", err)
}
apkBytes := marshalStruct(apk, t)
if len(apkBytes) != PublicKeySize {
t.Errorf("MultiPublicKey has an incorrect size")
}
apk2 := new(MultiPublicKey)
err = apk2.UnmarshalBinary(apkBytes)
if err != nil {
t.Errorf("MultiPublicKey.UnmarshalBinary failed with %v", err)
}
apk2Bytes := marshalStruct(apk2, t)
if !bytes.Equal(apkBytes, apk2Bytes) {
t.Errorf("Bytes methods not equal.")
}
}
func TestMultiPubkeyG1BadBytes(t *testing.T) {
messages := make([][]byte, 1)
message := make([]byte, 20)
messages[0] = message
pks, _ := initAggregatedTestValuesG2(messages, t)
bls := NewSigPop()
apk, err := bls.AggregatePublicKeys(pks...)
if err != nil {
t.Errorf("%v", err)
}
apkBytes := marshalStruct(apk, t)
if len(apkBytes) != PublicKeySize {
t.Errorf("MultiPublicKey has an incorrect size")
}
apkBytes[0] = 0
temp := new(MultiPublicKey)
err = temp.UnmarshalBinary(apkBytes)
if err == nil {
t.Errorf("MultiPublicKey.UnmarshalBinary should've failed but succeeded")
}
apkBytes = make([]byte, PublicKeySize)
err = temp.UnmarshalBinary(apkBytes)
if err == nil {
t.Errorf("MultiPublicKey.UnmarshalBinary should've failed but succeeded")
}
}
func TestFastAggregateVerifyG2Works(t *testing.T) {
messages := make([][]byte, 1)
message := make([]byte, 1)
messages[0] = message
pks, sigs := initAggregatedTestValuesG2(messages, t)
asigs, _ := aggregateSignatures(sigs...)
bls := NewSigPop()
if res, _ := bls.FastAggregateVerify(pks, message, asigs); !res {
t.Errorf("FastAggregateVerify failed.")
}
}
func TestFastAggregateVerifyConstituentG2Works(t *testing.T) {
messages := make([][]byte, 1)
message := make([]byte, 1)
messages[0] = message
pks, sigs := initAggregatedTestValuesG2(messages, t)
bls := NewSigPop()
if res, _ := bls.FastAggregateVerifyConstituent(pks, message, sigs); !res {
t.Errorf("FastAggregateVerify failed.")
}
}
func TestFastAggregateVerifyG2Fails(t *testing.T) {
messages := make([][]byte, 1)
message := make([]byte, 1)
messages[0] = message
pks, sigs := initAggregatedTestValuesG2(messages, t)
bls := NewSigPop()
message[0] = 1
if res, _ := bls.FastAggregateVerifyConstituent(pks, message, sigs); res {
t.Errorf("FastAggregateVerify verified when it should've failed.")
}
}
func TestCustomPopDstG2Works(t *testing.T) {
bls, _ := NewSigPopWithDst("BLS_SIG_BLS12381G2_XMD:SHA-256_SSWU_RO_POP_TEST",
"BLS_POP_BLS12381G2_XMD:SHA-256_SSWU_RO_POP_TEST")
msg := make([]byte, 20)
ikm := make([]byte, 32)
pk, sk, err := bls.KeygenWithSeed(ikm)
if err != nil {
t.Errorf("Couldn't create custom dst keys: %v", err)
}
sig, err := bls.Sign(sk, msg)
if err != nil {
t.Errorf("Couldn't sign with custom dst: %v", err)
}
if res, _ := bls.Verify(pk, msg, sig); !res {
t.Errorf("verify fails with custom dst")
}
pks := make([]*PublicKey, 10)
sigs := make([]*Signature, 10)
pks[0] = pk
sigs[0] = sig
for i := 1; i < 10; i++ {
readRand(ikm, t)
pkt, skt, err := bls.KeygenWithSeed(ikm)
if err != nil {
t.Errorf("Couldn't create custom dst keys: %v", err)
}
sigt, err := bls.Sign(skt, msg)
if err != nil {
t.Errorf("Couldn't sign with custom dst: %v", err)
}
pks[i] = pkt
sigs[i] = sigt
}
if res, _ := bls.FastAggregateVerifyConstituent(pks, msg, sigs); !res {
t.Errorf("FastAggregateVerify failed with custom dst")
}
pop, err := bls.PopProve(sk)
if err != nil {
t.Errorf("PopProve failed with custom dst")
}
if res, _ := bls.PopVerify(pk, pop); !res {
t.Errorf("PopVerify failed with custom dst")
}
}
func TestBlsPopG2KeyGenWithSeed(t *testing.T) {
ikm := []byte("Not enough bytes")
bls := NewSigPop()
_, _, err := bls.KeygenWithSeed(ikm)
if err == nil {
t.Errorf("Expected KeygenWithSeed to fail but succeeded")
}
}
func TestBlsPopG2KeyGen(t *testing.T) {
bls := NewSigPop()
_, _, err := bls.Keygen()
if err != nil {
t.Errorf("Keygen failed: %v", err)
}
}
func TestPopThresholdKeygenBadInputs(t *testing.T) {
bls := NewSigPop()
_, _, err := bls.ThresholdKeygen(0, 0)
if err == nil {
t.Errorf("ThresholdKeygen should've failed but succeeded")
}
_, _, err = bls.ThresholdKeygen(1, 0)
if err == nil {
t.Errorf("ThresholdKeygen should've failed but succeeded")
}
_, _, err = bls.ThresholdKeygen(3, 2)
if err == nil {
t.Errorf("ThresholdKeygen should've failed but succeeded")
}
}
func TestPopThresholdKeygen(t *testing.T) {
bls := NewSigPop()
_, sks, err := bls.ThresholdKeygen(3, 5)
if err != nil {
t.Errorf("ThresholdKeygen failed")
}
if len(sks) != 5 {
t.Errorf("ThresholdKeygen did not produce enough shares")
}
}
func TestPopPartialSign(t *testing.T) {
ikm := make([]byte, 32)
bls := NewSigPop()
pk, sks, err := bls.ThresholdKeygenWithSeed(ikm, 2, 4)
if err != nil {
t.Errorf("ThresholdKeygen failed")
}
msg := make([]byte, 10)
sig1, err := bls.PartialSign(sks[0], msg)
if err != nil {
t.Errorf("partialSign failed: %v", err)
}
sig2, err := bls.PartialSign(sks[1], msg)
if err != nil {
t.Errorf("partialSign failed: %v", err)
}
sig, err := bls.CombineSignatures(sig1, sig2)
if err != nil {
t.Errorf("CombineSignatures failed: %v", err)
}
if res, _ := bls.Verify(pk, msg, sig); !res {
t.Errorf("Combined signature does not verify")
}
sig, err = bls.CombineSignatures(sig1)
if err == nil {
t.Errorf("CombineSignatures succeeded when it should've failed")
}
if res, _ := bls.Verify(pk, msg, sig); res {
t.Errorf("Combined signature verify succeeded when it should've failed")
}
}
// Ensure that mixed partial signatures from distinct origins create invalid composite signatures
func TestPopPartialMixupShares(t *testing.T) {
total := uint(5)
ikm := make([]byte, 32)
bls := NewSigPop()
pk1, sks1, err := bls.ThresholdKeygenWithSeed(ikm, 3, total)
if err != nil {
t.Errorf("ThresholdKeygen failed: %v", err)
}
for i := range ikm {
ikm[i] = 1
}
pk2, sks2, err := bls.ThresholdKeygenWithSeed(ikm, 3, total)
if err != nil {
t.Errorf("ThresholdKeygen failed: %v", err)
}
// Generate partial signatures for both sets of keys
msg := make([]byte, 10)
sigs1 := make([]*PartialSignature, total)
sigs2 := make([]*PartialSignature, total)
for i := range sks1 {
sigs1[i], err = bls.PartialSign(sks1[i], msg)
if err != nil {
t.Errorf("PartialSign failed: %v", err)
}
sigs2[i], err = bls.PartialSign(sks2[i], msg)
if err != nil {
t.Errorf("PartialSign failed: %v", err)
}
}
// Try combining 2 from group 1 and 2 from group 2
sig, err := bls.CombineSignatures(sigs1[0], sigs1[1], sigs2[2], sigs2[3])
if err != nil {
t.Errorf("CombineSignatures failed: %v", err)
}
// Signature shouldn't validate
if res, _ := bls.Verify(pk1, msg, sig); res {
t.Errorf(
"CombineSignatures worked with different shares of two secret keys for the same message",
)
}
if res, _ := bls.Verify(pk2, msg, sig); res {
t.Errorf(
"CombineSignatures worked with different shares of two secret keys for the same message",
)
}
// Should error out due to duplicate identifiers
_, err = bls.CombineSignatures(sigs1[0], sigs1[1], sigs2[0], sigs2[1])
if err == nil {
t.Errorf("CombineSignatures expected to fail but succeeded.")
}
}
func TestNewSigEth2KeyGen(t *testing.T) {
eth2 := NewSigEth2()
_, _, err := eth2.Keygen()
if err != nil {
t.Errorf("Keygen failed: %v", err)
}
}
func TestSigEth2SignRoundTrip(t *testing.T) {
eth2 := NewSigEth2()
pop := NewSigPop()
eth2Pk, eth2Sk, err := eth2.Keygen()
if err != nil {
t.Errorf("Keygen failed: %v", err)
}
sig, err := pop.Sign(eth2Sk, []byte{0, 0})
if err != nil {
t.Errorf("Sign failed: %v", err)
}
if ok, err := eth2.Verify(eth2Pk, []byte{0, 0}, sig); err != nil || !ok {
t.Errorf("Verify failed: %v", err)
}
}