Files
crypto/bls/bls_test.go
T

578 lines
13 KiB
Go

// Copyright (C) 2020-2025, Lux Industries Inc. All rights reserved.
// See the file LICENSE for licensing terms.
package bls
import (
"bytes"
"crypto/rand"
"testing"
)
func TestNewSecretKey(t *testing.T) {
sk, err := NewSecretKey()
if err != nil {
t.Fatalf("Failed to generate secret key: %v", err)
}
if sk == nil {
t.Fatal("Secret key is nil")
}
if sk.sk == nil {
t.Fatal("Internal secret key is nil")
}
}
func TestSecretKeyToBytes(t *testing.T) {
// Test nil secret key
if data := SecretKeyToBytes(nil); data != nil {
t.Fatal("Expected nil for nil secret key")
}
// Test nil internal key
sk := &SecretKey{sk: nil}
if data := SecretKeyToBytes(sk); data != nil {
t.Fatal("Expected nil for nil internal key")
}
// Test valid secret key
sk, err := NewSecretKey()
if err != nil {
t.Fatalf("Failed to generate secret key: %v", err)
}
data := SecretKeyToBytes(sk)
if len(data) != SecretKeyLen {
t.Fatalf("Expected %d bytes, got %d", SecretKeyLen, len(data))
}
}
func TestSecretKeyFromBytes(t *testing.T) {
// Generate a secret key
sk1, err := NewSecretKey()
if err != nil {
t.Fatalf("Failed to generate secret key: %v", err)
}
// Convert to bytes
skBytes := SecretKeyToBytes(sk1)
// Convert back from bytes
sk2, err := SecretKeyFromBytes(skBytes)
if err != nil {
t.Fatalf("Failed to deserialize secret key: %v", err)
}
// Check they produce the same public key
pk1 := sk1.PublicKey()
pk2 := sk2.PublicKey()
bytes1 := PublicKeyToCompressedBytes(pk1)
bytes2 := PublicKeyToCompressedBytes(pk2)
if !bytes.Equal(bytes1, bytes2) {
t.Fatal("Public keys don't match after serialization")
}
// Test invalid bytes
invalidBytes := make([]byte, 10) // Wrong size
_, err = SecretKeyFromBytes(invalidBytes)
if err == nil {
t.Fatal("Expected error for invalid bytes")
}
}
func TestPublicKey(t *testing.T) {
// Test nil secret key
var sk *SecretKey
if pk := sk.PublicKey(); pk != nil {
t.Fatal("Expected nil public key from nil secret key")
}
// Test nil internal key
sk = &SecretKey{sk: nil}
if pk := sk.PublicKey(); pk != nil {
t.Fatal("Expected nil public key from nil internal key")
}
// Test valid secret key
sk, err := NewSecretKey()
if err != nil {
t.Fatalf("Failed to generate secret key: %v", err)
}
pk := sk.PublicKey()
if pk == nil {
t.Fatal("Public key is nil")
}
if pk.pk == nil {
t.Fatal("Internal public key is nil")
}
}
func TestSign(t *testing.T) {
msg := []byte("test message")
// Test nil secret key
var sk *SecretKey
if sig, err := sk.Sign(msg); err == nil || sig != nil {
t.Fatal("Expected error and nil signature from nil secret key")
}
// Test nil internal key
sk = &SecretKey{sk: nil}
if sig, err := sk.Sign(msg); err == nil || sig != nil {
t.Fatal("Expected error and nil signature from nil internal key")
}
// Test valid signing
sk, err := NewSecretKey()
if err != nil {
t.Fatalf("Failed to generate secret key: %v", err)
}
sig, err := sk.Sign(msg)
if err != nil {
t.Fatalf("Failed to sign: %v", err)
}
if sig == nil {
t.Fatal("Signature is nil")
}
}
func TestSignProofOfPossession(t *testing.T) {
msg := []byte("proof of possession")
// Test nil secret key
var sk *SecretKey
if sig, err := sk.SignProofOfPossession(msg); err == nil || sig != nil {
t.Fatal("Expected error and nil signature from nil secret key")
}
// Test nil internal key
sk = &SecretKey{sk: nil}
if sig, err := sk.SignProofOfPossession(msg); err == nil || sig != nil {
t.Fatal("Expected error and nil signature from nil internal key")
}
// Test valid signing
sk, err := NewSecretKey()
if err != nil {
t.Fatalf("Failed to generate secret key: %v", err)
}
sig, err := sk.SignProofOfPossession(msg)
if err != nil {
t.Fatalf("Failed to sign proof of possession: %v", err)
}
if sig == nil {
t.Fatal("Signature is nil")
}
}
func TestPublicKeyToCompressedBytes(t *testing.T) {
// Test nil public key
if data := PublicKeyToCompressedBytes(nil); data != nil {
t.Fatal("Expected nil for nil public key")
}
// Test nil internal key
pk := &PublicKey{pk: nil}
if data := PublicKeyToCompressedBytes(pk); data != nil {
t.Fatal("Expected nil for nil internal key")
}
// Test valid public key
sk, err := NewSecretKey()
if err != nil {
t.Fatalf("Failed to generate secret key: %v", err)
}
pk = sk.PublicKey()
pkBytes := PublicKeyToCompressedBytes(pk)
if len(pkBytes) != PublicKeyLen {
t.Fatalf("Expected %d bytes, got %d", PublicKeyLen, len(pkBytes))
}
}
func TestPublicKeyFromCompressedBytes(t *testing.T) {
// Generate a key pair
sk, err := NewSecretKey()
if err != nil {
t.Fatalf("Failed to generate secret key: %v", err)
}
pk1 := sk.PublicKey()
pkBytes := PublicKeyToCompressedBytes(pk1)
// Deserialize
pk2, err := PublicKeyFromCompressedBytes(pkBytes)
if err != nil {
t.Fatalf("Failed to deserialize public key: %v", err)
}
// Check they're the same
bytes1 := PublicKeyToCompressedBytes(pk1)
bytes2 := PublicKeyToCompressedBytes(pk2)
if !bytes.Equal(bytes1, bytes2) {
t.Fatal("Public keys don't match after serialization")
}
// Test invalid bytes
invalidBytes := make([]byte, 10) // Wrong size
_, err = PublicKeyFromCompressedBytes(invalidBytes)
if err == nil {
t.Fatal("Expected error for invalid bytes")
}
}
func TestPublicKeyToUncompressedBytes(t *testing.T) {
sk, err := NewSecretKey()
if err != nil {
t.Fatalf("Failed to generate secret key: %v", err)
}
pk := sk.PublicKey()
compressedBytes := PublicKeyToCompressedBytes(pk)
uncompressedBytes := PublicKeyToUncompressedBytes(pk)
// For circl/bls, compressed and uncompressed should be the same
if !bytes.Equal(compressedBytes, uncompressedBytes) {
t.Fatal("Compressed and uncompressed bytes should be the same")
}
}
func TestPublicKeyFromValidUncompressedBytes(t *testing.T) {
sk, err := NewSecretKey()
if err != nil {
t.Fatalf("Failed to generate secret key: %v", err)
}
pk1 := sk.PublicKey()
pkBytes := PublicKeyToUncompressedBytes(pk1)
pk2 := PublicKeyFromValidUncompressedBytes(pkBytes)
if pk2 == nil {
t.Fatal("Failed to create public key from valid bytes")
}
// Check they're the same
bytes1 := PublicKeyToCompressedBytes(pk1)
bytes2 := PublicKeyToCompressedBytes(pk2)
if !bytes.Equal(bytes1, bytes2) {
t.Fatal("Public keys don't match")
}
}
func TestVerify(t *testing.T) {
msg := []byte("test message")
sk, err := NewSecretKey()
if err != nil {
t.Fatalf("Failed to generate secret key: %v", err)
}
pk := sk.PublicKey()
sig, _ := sk.Sign(msg)
// Test valid signature
if !Verify(pk, sig, msg) {
t.Fatal("Failed to verify valid signature")
}
// Test wrong message
wrongMsg := []byte("wrong message")
if Verify(pk, sig, wrongMsg) {
t.Fatal("Verified signature with wrong message")
}
// Test wrong public key
sk2, _ := NewSecretKey()
pk2 := sk2.PublicKey()
if Verify(pk2, sig, msg) {
t.Fatal("Verified signature with wrong public key")
}
// Test nil public key
if Verify(nil, sig, msg) {
t.Fatal("Verified signature with nil public key")
}
// Test nil signature
if Verify(pk, nil, msg) {
t.Fatal("Verified nil signature")
}
// Test nil internal public key
pkNil := &PublicKey{pk: nil}
if Verify(pkNil, sig, msg) {
t.Fatal("Verified signature with nil internal public key")
}
}
func TestVerifyProofOfPossession(t *testing.T) {
msg := []byte("proof of possession")
sk, err := NewSecretKey()
if err != nil {
t.Fatalf("Failed to generate secret key: %v", err)
}
pk := sk.PublicKey()
sig, _ := sk.SignProofOfPossession(msg)
// Test valid proof
if !VerifyProofOfPossession(pk, sig, msg) {
t.Fatal("Failed to verify valid proof of possession")
}
// Test wrong message
wrongMsg := []byte("wrong message")
if VerifyProofOfPossession(pk, sig, wrongMsg) {
t.Fatal("Verified proof with wrong message")
}
}
func TestSignatureToBytes(t *testing.T) {
// Test nil signature
if data := SignatureToBytes(nil); data != nil {
t.Fatal("Expected nil for nil signature")
}
// Test valid signature
sk, err := NewSecretKey()
if err != nil {
t.Fatalf("Failed to generate secret key: %v", err)
}
msg := []byte("test message")
sig, _ := sk.Sign(msg)
sigBytes := SignatureToBytes(sig)
if len(sigBytes) != SignatureLen {
t.Fatalf("Expected %d bytes, got %d", SignatureLen, len(sigBytes))
}
}
func TestSignatureFromBytes(t *testing.T) {
// Generate a signature
sk, err := NewSecretKey()
if err != nil {
t.Fatalf("Failed to generate secret key: %v", err)
}
msg := []byte("test message")
sig1, _ := sk.Sign(msg)
sigBytes := SignatureToBytes(sig1)
// Deserialize
sig2, err := SignatureFromBytes(sigBytes)
if err != nil {
t.Fatalf("Failed to deserialize signature: %v", err)
}
// Check they're the same
bytes1 := SignatureToBytes(sig1)
bytes2 := SignatureToBytes(sig2)
if !bytes.Equal(bytes1, bytes2) {
t.Fatal("Signatures don't match after serialization")
}
// Test invalid size
invalidBytes := make([]byte, 10)
_, err = SignatureFromBytes(invalidBytes)
if err == nil {
t.Fatal("Expected error for invalid size")
}
// Test all zeros
zeroBytes := make([]byte, SignatureLen)
_, err = SignatureFromBytes(zeroBytes)
if err == nil {
t.Fatal("Expected error for all zero signature")
}
}
func TestAggregatePublicKeys(t *testing.T) {
// Test empty slice
_, err := AggregatePublicKeys([]*PublicKey{})
if err != ErrNoPublicKeys {
t.Fatal("Expected ErrNoPublicKeys for empty slice")
}
// Generate keys
sk1, _ := NewSecretKey()
sk2, _ := NewSecretKey()
sk3, _ := NewSecretKey()
pk1 := sk1.PublicKey()
pk2 := sk2.PublicKey()
pk3 := sk3.PublicKey()
// Test aggregation
aggPk, err := AggregatePublicKeys([]*PublicKey{pk1, pk2, pk3})
if err != nil {
t.Fatalf("Failed to aggregate public keys: %v", err)
}
if aggPk == nil {
t.Fatal("Aggregated public key is nil")
}
// Test with nil key
_, err = AggregatePublicKeys([]*PublicKey{pk1, nil, pk3})
if err == nil {
t.Fatal("Expected error for nil public key in slice")
}
// Test with nil internal key
pkNil := &PublicKey{pk: nil}
_, err = AggregatePublicKeys([]*PublicKey{pk1, pkNil, pk3})
if err == nil {
t.Fatal("Expected error for nil internal public key in slice")
}
}
func TestAggregateSignatures(t *testing.T) {
// Test empty slice
_, err := AggregateSignatures([]*Signature{})
if err != ErrNoSignatures {
t.Fatal("Expected ErrNoSignatures for empty slice")
}
// Generate signatures
msg := []byte("test message")
sk1, _ := NewSecretKey()
sk2, _ := NewSecretKey()
sk3, _ := NewSecretKey()
sig1, _ := sk1.Sign(msg)
sig2, _ := sk2.Sign(msg)
sig3, _ := sk3.Sign(msg)
// Test aggregation
aggSig, err := AggregateSignatures([]*Signature{sig1, sig2, sig3})
if err != nil {
t.Fatalf("Failed to aggregate signatures: %v", err)
}
if aggSig == nil {
t.Fatal("Aggregated signature is nil")
}
// Test with nil signature
_, err = AggregateSignatures([]*Signature{sig1, nil, sig3})
if err == nil {
t.Fatal("Expected error for nil signature in slice")
}
}
func TestMultiSignature(t *testing.T) {
// Generate multiple key pairs
msg := []byte("multi-signature test")
n := 5
secretKeys := make([]*SecretKey, n)
publicKeys := make([]*PublicKey, n)
signatures := make([]*Signature, n)
for i := 0; i < n; i++ {
sk, err := NewSecretKey()
if err != nil {
t.Fatalf("Failed to generate secret key %d: %v", i, err)
}
secretKeys[i] = sk
publicKeys[i] = sk.PublicKey()
signatures[i], _ = sk.Sign(msg)
}
// Aggregate public keys and signatures
aggPk, err := AggregatePublicKeys(publicKeys)
if err != nil {
t.Fatalf("Failed to aggregate public keys: %v", err)
}
aggSig, err := AggregateSignatures(signatures)
if err != nil {
t.Fatalf("Failed to aggregate signatures: %v", err)
}
// Verify aggregated signature
if !Verify(aggPk, aggSig, msg) {
t.Fatal("Failed to verify aggregated signature")
}
// Test with wrong message
wrongMsg := []byte("wrong message")
if Verify(aggPk, aggSig, wrongMsg) {
t.Fatal("Verified aggregated signature with wrong message")
}
}
func TestEdgeCases(t *testing.T) {
// Test with empty message
emptyMsg := []byte{}
sk, _ := NewSecretKey()
pk := sk.PublicKey()
sig, _ := sk.Sign(emptyMsg)
if !Verify(pk, sig, emptyMsg) {
t.Fatal("Failed to verify signature on empty message")
}
// Test with very long message
longMsg := make([]byte, 10000)
rand.Read(longMsg)
sig, _ = sk.Sign(longMsg)
if !Verify(pk, sig, longMsg) {
t.Fatal("Failed to verify signature on long message")
}
}
func BenchmarkNewSecretKey(b *testing.B) {
for i := 0; i < b.N; i++ {
_, _ = NewSecretKey()
}
}
func BenchmarkSign(b *testing.B) {
sk, _ := NewSecretKey()
msg := []byte("benchmark message")
b.ResetTimer()
for i := 0; i < b.N; i++ {
_, _ = sk.Sign(msg)
}
}
func BenchmarkVerify(b *testing.B) {
sk, _ := NewSecretKey()
pk := sk.PublicKey()
msg := []byte("benchmark message")
sig, _ := sk.Sign(msg)
b.ResetTimer()
for i := 0; i < b.N; i++ {
_ = Verify(pk, sig, msg)
}
}
func BenchmarkAggregatePublicKeys(b *testing.B) {
n := 10
pks := make([]*PublicKey, n)
for i := 0; i < n; i++ {
sk, _ := NewSecretKey()
pks[i] = sk.PublicKey()
}
b.ResetTimer()
for i := 0; i < b.N; i++ {
_, _ = AggregatePublicKeys(pks)
}
}
func BenchmarkAggregateSignatures(b *testing.B) {
n := 10
msg := []byte("benchmark message")
sigs := make([]*Signature, n)
for i := 0; i < n; i++ {
sk, _ := NewSecretKey()
sigs[i], _ = sk.Sign(msg)
}
b.ResetTimer()
for i := 0; i < b.N; i++ {
_, _ = AggregateSignatures(sigs)
}
}