// // Copyright Coinbase, Inc. All Rights Reserved. // // SPDX-License-Identifier: Apache-2.0 // package bls_sig import ( "testing" "github.com/sonr-io/crypto/core/curves/native/bls12381" ) func generateAugSignatureG1(sk *SecretKey, msg []byte, t *testing.T) *SignatureVt { bls := NewSigAugVt() sig, err := bls.Sign(sk, msg) if err != nil { t.Errorf("Aug Sign failed") } return sig } func generateAugAggregateDataG1(t *testing.T) ([]*PublicKeyVt, []*SignatureVt, [][]byte) { msgs := make([][]byte, numAggregateG1) pks := make([]*PublicKeyVt, numAggregateG1) sigs := make([]*SignatureVt, numAggregateG1) ikm := make([]byte, 32) bls := NewSigAugVt() for i := 0; i < numAggregateG1; i++ { readRand(ikm, t) pk, sk, err := bls.KeygenWithSeed(ikm) if err != nil { t.Errorf("Aug KeyGen failed") } msg := make([]byte, 20) readRand(msg, t) sig := generateAugSignatureG1(sk, msg, t) msgs[i] = msg sigs[i] = sig pks[i] = pk } return pks, sigs, msgs } func TestAugKeyGenG1Works(t *testing.T) { ikm := make([]byte, 32) readRand(ikm, t) bls := NewSigAugVt() _, _, err := bls.KeygenWithSeed(ikm) if err != nil { t.Errorf("Aug KeyGen failed") } } func TestAugKeyGenG1Fail(t *testing.T) { ikm := make([]byte, 10) readRand(ikm, t) bls := NewSigAugVt() _, _, err := bls.KeygenWithSeed(ikm) if err == nil { t.Errorf("Aug KeyGen succeeded when it should've failed") } } func TestAugCustomDstG1(t *testing.T) { ikm := make([]byte, 32) readRand(ikm, t) bls := NewSigAugVtWithDst("BLS_SIG_BLS12381G1_XMD:SHA-256_SSWU_RO_AUG_TEST") pk, sk, err := bls.KeygenWithSeed(ikm) if err != nil { t.Errorf("Aug Custom Dst KeyGen failed") } readRand(ikm, t) sig, err := bls.Sign(sk, ikm) if err != nil { t.Errorf("Aug Custom Dst Sign failed") } if res, _ := bls.Verify(pk, ikm, sig); !res { t.Errorf("Aug Custom Dst Verify failed") } ikm[0] += 1 if res, _ := bls.Verify(pk, ikm, sig); res { t.Errorf("Aug Custom Dst Verify succeeded when it should've failed.") } } func TestAugSigningG1(t *testing.T) { ikm := make([]byte, 32) readRand(ikm, t) bls := NewSigAugVt() pk, sk, err := bls.KeygenWithSeed(ikm) if err != nil { t.Errorf("Aug KeyGen failed") } readRand(ikm, t) sig := generateAugSignatureG1(sk, ikm, t) if res, _ := bls.Verify(pk, ikm, sig); !res { t.Errorf("Aug Verify failed") } ikm[0] += 1 if res, _ := bls.Verify(pk, ikm, sig); res { t.Errorf("Aug Verify succeeded when it should've failed.") } } func TestAugAggregateVerifyG1Works(t *testing.T) { pks, sigs, msgs := generateAugAggregateDataG1(t) bls := NewSigAugVt() if res, _ := bls.AggregateVerify(pks, msgs, sigs); !res { t.Errorf("Aug AggregateVerify failed") } } func TestAugAggregateVerifyG1BadPks(t *testing.T) { bls := NewSigAugVt() pks, sigs, msgs := generateAugAggregateDataG1(t) if res, _ := bls.AggregateVerify(pks, msgs, sigs); !res { t.Errorf("Aug AggregateVerify failed") } pks[0] = pks[1] if res, _ := bls.AggregateVerify(pks, msgs, sigs); res { t.Errorf("Aug AggregateVerify succeeded when it should've failed") } // Try a zero key to make sure it doesn't crash pkValue := new(bls12381.G2).Identity() pks[0] = &PublicKeyVt{value: *pkValue} if res, _ := bls.AggregateVerify(pks, msgs, sigs); res { t.Errorf("Aug AggregateVerify succeeded with zero byte public key it should've failed") } // Try with base generator pkValue.Generator() pks[0] = &PublicKeyVt{value: *pkValue} if res, _ := bls.AggregateVerify(pks, msgs, sigs); res { t.Errorf( "Aug aggregateVerify succeeded with the base generator public key it should've failed", ) } } func TestAugAggregateVerifyG1BadSigs(t *testing.T) { bls := NewSigAugVt() pks, sigs, msgs := generateAugAggregateDataG1(t) if res, _ := bls.AggregateVerify(pks, msgs, sigs); !res { t.Errorf("Aug aggregateVerify failed") } sigs[0] = sigs[1] if res, _ := bls.AggregateVerify(pks, msgs, sigs); res { t.Errorf("Aug aggregateVerify succeeded when it should've failed") } // Try a zero signature to make sure it doesn't crash sigValue := new(bls12381.G1).Identity() sigs[0] = &SignatureVt{value: *sigValue} if res, _ := bls.AggregateVerify(pks, msgs, sigs); res { t.Errorf("Aug aggregateVerify succeeded with zero byte signature it should've failed") } // Try with base generator sigValue.Generator() sigs[0] = &SignatureVt{value: *sigValue} if res, _ := bls.AggregateVerify(pks, msgs, sigs); res { t.Errorf( "Aug aggregateVerify succeeded with the base generator signature it should've failed", ) } } func TestAugAggregateVerifyG1BadMsgs(t *testing.T) { bls := NewSigAugVt() pks, sigs, msgs := generateAugAggregateDataG1(t) if res, _ := bls.AggregateVerify(pks, msgs, sigs); !res { t.Errorf("Aug aggregateVerify failed") } // Test len(pks) != len(msgs) if res, _ := bls.AggregateVerify(pks, msgs[0:8], sigs); res { t.Errorf("Aug aggregateVerify succeeded when it should've failed") } msgs[0] = msgs[1] if res, _ := bls.AggregateVerify(pks, msgs, sigs); res { t.Errorf("Aug aggregateVerify succeeded when it should've failed") } } func TestAugAggregateVerifyG1DupMsg(t *testing.T) { bls := NewSigAugVt() // Only two messages but repeated messages := make([][]byte, numAggregateG1) messages[0] = []byte("Yes") messages[1] = []byte("No") for i := 2; i < numAggregateG1; i++ { messages[i] = messages[i%2] } pks := make([]*PublicKeyVt, numAggregateG1) sigs := make([]*SignatureVt, numAggregateG1) ikm := make([]byte, 32) for i := 0; i < numAggregateG1; i++ { readRand(ikm, t) pk, sk, err := bls.KeygenWithSeed(ikm) if err != nil { t.Errorf("Aug KeyGen failed") } sig := generateAugSignatureG1(sk, messages[i], t) pks[i] = pk sigs[i] = sig } if res, _ := bls.AggregateVerify(pks, messages, sigs); !res { t.Errorf("Aug aggregateVerify failed for duplicate messages") } } func TestBlsAugG1KeyGen(t *testing.T) { bls := NewSigAugVt() _, _, err := bls.Keygen() if err != nil { t.Errorf("Keygen failed: %v", err) } } func TestAugVtThresholdKeygenBadInputs(t *testing.T) { bls := NewSigAugVt() _, _, 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 TestAugVtThresholdKeygen(t *testing.T) { bls := NewSigAugVt() _, 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 TestAugPartialSignVt(t *testing.T) { ikm := make([]byte, 32) bls := NewSigAugVt() 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], pk, msg) if err != nil { t.Errorf("partialSign failed: %v", err) } sig2, err := bls.PartialSign(sks[1], pk, 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 failed: %v", err) } 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 TestAugVtPartialMixupShares(t *testing.T) { total := uint(5) ikm := make([]byte, 32) bls := NewSigAugVt() 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([]*PartialSignatureVt, total) sigs2 := make([]*PartialSignatureVt, total) for i := range sks1 { sigs1[i], err = bls.PartialSign(sks1[i], pk1, msg) if err != nil { t.Errorf("PartialSign failed: %v", err) } sigs2[i], err = bls.PartialSign(sks2[i], pk2, 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 TestEmptyMessageAugPartialSignVt(t *testing.T) { bls := NewSigAugVt() pk, sks, err := bls.ThresholdKeygen(5, 6) if err != nil { t.Errorf("ThresholdKeygen failed") } // Sign an empty message _, err = bls.PartialSign(sks[0], pk, []byte{}) if err == nil { t.Errorf("Expected partial sign to fail on empty message") } } func TestNilMessageAugPartialSignVt(t *testing.T) { bls := NewSigAugVt() pk, sks, err := bls.ThresholdKeygen(5, 6) if err != nil { t.Errorf("ThresholdKeygen failed") } // Sign nil message _, err = bls.PartialSign(sks[0], pk, nil) if err == nil { t.Errorf("Expected partial signing to fail on nil message") } }