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@@ -20,6 +20,7 @@ import (
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"bytes"
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crand "crypto/rand"
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mrand "math/rand"
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+ "sort"
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"testing"
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"time"
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@@ -65,7 +66,7 @@ func TestProof(t *testing.T) {
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if proof == nil {
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t.Fatalf("prover %d: missing key %x while constructing proof", i, kv.k)
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}
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- val, _, err := VerifyProof(root, kv.k, proof)
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+ val, err := VerifyProof(root, kv.k, proof)
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if err != nil {
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t.Fatalf("prover %d: failed to verify proof for key %x: %v\nraw proof: %x", i, kv.k, err, proof)
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}
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@@ -87,7 +88,7 @@ func TestOneElementProof(t *testing.T) {
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if proof.Len() != 1 {
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t.Errorf("prover %d: proof should have one element", i)
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}
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- val, _, err := VerifyProof(trie.Hash(), []byte("k"), proof)
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+ val, err := VerifyProof(trie.Hash(), []byte("k"), proof)
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if err != nil {
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t.Fatalf("prover %d: failed to verify proof: %v\nraw proof: %x", i, err, proof)
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}
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@@ -97,6 +98,145 @@ func TestOneElementProof(t *testing.T) {
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}
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}
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+type entrySlice []*kv
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+
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+func (p entrySlice) Len() int { return len(p) }
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+func (p entrySlice) Less(i, j int) bool { return bytes.Compare(p[i].k, p[j].k) < 0 }
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+func (p entrySlice) Swap(i, j int) { p[i], p[j] = p[j], p[i] }
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+
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+func TestRangeProof(t *testing.T) {
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+ trie, vals := randomTrie(4096)
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+ var entries entrySlice
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+ for _, kv := range vals {
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+ entries = append(entries, kv)
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+ }
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+ sort.Sort(entries)
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+ for i := 0; i < 500; i++ {
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+ start := mrand.Intn(len(entries))
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+ end := mrand.Intn(len(entries)-start) + start
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+ if start == end {
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+ continue
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+ }
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+ firstProof, lastProof := memorydb.New(), memorydb.New()
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+ if err := trie.Prove(entries[start].k, 0, firstProof); err != nil {
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+ t.Fatalf("Failed to prove the first node %v", err)
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+ }
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+ if err := trie.Prove(entries[end-1].k, 0, lastProof); err != nil {
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+ t.Fatalf("Failed to prove the last node %v", err)
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+ }
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+ var keys [][]byte
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+ var vals [][]byte
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+ for i := start; i < end; i++ {
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+ keys = append(keys, entries[i].k)
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+ vals = append(vals, entries[i].v)
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+ }
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+ err := VerifyRangeProof(trie.Hash(), keys, vals, firstProof, lastProof)
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+ if err != nil {
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+ t.Fatalf("Case %d(%d->%d) expect no error, got %v", i, start, end-1, err)
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+ }
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+ }
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+}
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+
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+func TestBadRangeProof(t *testing.T) {
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+ trie, vals := randomTrie(4096)
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+ var entries entrySlice
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+ for _, kv := range vals {
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+ entries = append(entries, kv)
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+ }
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+ sort.Sort(entries)
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+
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+ for i := 0; i < 500; i++ {
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+ start := mrand.Intn(len(entries))
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+ end := mrand.Intn(len(entries)-start) + start
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+ if start == end {
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+ continue
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+ }
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+ firstProof, lastProof := memorydb.New(), memorydb.New()
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+ if err := trie.Prove(entries[start].k, 0, firstProof); err != nil {
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+ t.Fatalf("Failed to prove the first node %v", err)
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+ }
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+ if err := trie.Prove(entries[end-1].k, 0, lastProof); err != nil {
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+ t.Fatalf("Failed to prove the last node %v", err)
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+ }
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+ var keys [][]byte
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+ var vals [][]byte
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+ for i := start; i < end; i++ {
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+ keys = append(keys, entries[i].k)
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+ vals = append(vals, entries[i].v)
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+ }
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+ testcase := mrand.Intn(6)
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+ var index int
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+ switch testcase {
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+ case 0:
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+ // Modified key
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+ index = mrand.Intn(end - start)
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+ keys[index] = randBytes(32) // In theory it can't be same
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+ case 1:
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+ // Modified val
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+ index = mrand.Intn(end - start)
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+ vals[index] = randBytes(20) // In theory it can't be same
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+ case 2:
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+ // Gapped entry slice
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+ index = mrand.Intn(end - start)
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+ keys = append(keys[:index], keys[index+1:]...)
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+ vals = append(vals[:index], vals[index+1:]...)
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+ if len(keys) <= 1 {
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+ continue
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+ }
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+ case 3:
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+ // Switched entry slice, same effect with gapped
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+ index = mrand.Intn(end - start)
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+ keys[index] = entries[len(entries)-1].k
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+ vals[index] = entries[len(entries)-1].v
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+ case 4:
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+ // Set random key to nil
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+ index = mrand.Intn(end - start)
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+ keys[index] = nil
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+ case 5:
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+ // Set random value to nil
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+ index = mrand.Intn(end - start)
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+ vals[index] = nil
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+ }
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+ err := VerifyRangeProof(trie.Hash(), keys, vals, firstProof, lastProof)
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+ if err == nil {
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+ t.Fatalf("%d Case %d index %d range: (%d->%d) expect error, got nil", i, testcase, index, start, end-1)
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+ }
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+ }
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+}
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+
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+// TestGappedRangeProof focuses on the small trie with embedded nodes.
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+// If the gapped node is embedded in the trie, it should be detected too.
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+func TestGappedRangeProof(t *testing.T) {
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+ trie := new(Trie)
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+ var entries []*kv // Sorted entries
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+ for i := byte(0); i < 10; i++ {
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+ value := &kv{common.LeftPadBytes([]byte{i}, 32), []byte{i}, false}
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+ trie.Update(value.k, value.v)
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+ entries = append(entries, value)
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+ }
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+ first, last := 2, 8
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+ firstProof, lastProof := memorydb.New(), memorydb.New()
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+ if err := trie.Prove(entries[first].k, 0, firstProof); err != nil {
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+ t.Fatalf("Failed to prove the first node %v", err)
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+ }
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+ if err := trie.Prove(entries[last-1].k, 0, lastProof); err != nil {
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+ t.Fatalf("Failed to prove the last node %v", err)
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+ }
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+ var keys [][]byte
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+ var vals [][]byte
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+ for i := first; i < last; i++ {
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+ if i == (first+last)/2 {
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+ continue
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+ }
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+ keys = append(keys, entries[i].k)
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+ vals = append(vals, entries[i].v)
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+ }
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+ err := VerifyRangeProof(trie.Hash(), keys, vals, firstProof, lastProof)
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+ if err == nil {
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+ t.Fatal("expect error, got nil")
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+ }
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+}
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+
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func TestBadProof(t *testing.T) {
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trie, vals := randomTrie(800)
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root := trie.Hash()
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@@ -118,7 +258,7 @@ func TestBadProof(t *testing.T) {
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mutateByte(val)
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proof.Put(crypto.Keccak256(val), val)
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- if _, _, err := VerifyProof(root, kv.k, proof); err == nil {
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+ if _, err := VerifyProof(root, kv.k, proof); err == nil {
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t.Fatalf("prover %d: expected proof to fail for key %x", i, kv.k)
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}
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}
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@@ -138,7 +278,7 @@ func TestMissingKeyProof(t *testing.T) {
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if proof.Len() != 1 {
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t.Errorf("test %d: proof should have one element", i)
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}
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- val, _, err := VerifyProof(trie.Hash(), []byte(key), proof)
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+ val, err := VerifyProof(trie.Hash(), []byte(key), proof)
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if err != nil {
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t.Fatalf("test %d: failed to verify proof: %v\nraw proof: %x", i, err, proof)
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}
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@@ -191,12 +331,50 @@ func BenchmarkVerifyProof(b *testing.B) {
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b.ResetTimer()
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for i := 0; i < b.N; i++ {
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im := i % len(keys)
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- if _, _, err := VerifyProof(root, []byte(keys[im]), proofs[im]); err != nil {
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+ if _, err := VerifyProof(root, []byte(keys[im]), proofs[im]); err != nil {
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b.Fatalf("key %x: %v", keys[im], err)
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}
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}
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}
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+func BenchmarkVerifyRangeProof10(b *testing.B) { benchmarkVerifyRangeProof(b, 10) }
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+func BenchmarkVerifyRangeProof100(b *testing.B) { benchmarkVerifyRangeProof(b, 100) }
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+func BenchmarkVerifyRangeProof1000(b *testing.B) { benchmarkVerifyRangeProof(b, 1000) }
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+func BenchmarkVerifyRangeProof5000(b *testing.B) { benchmarkVerifyRangeProof(b, 5000) }
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+
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+func benchmarkVerifyRangeProof(b *testing.B, size int) {
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+ trie, vals := randomTrie(8192)
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+ var entries entrySlice
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+ for _, kv := range vals {
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+ entries = append(entries, kv)
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+ }
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+ sort.Sort(entries)
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+
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+ start := 2
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+ end := start + size
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+ firstProof, lastProof := memorydb.New(), memorydb.New()
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+ if err := trie.Prove(entries[start].k, 0, firstProof); err != nil {
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+ b.Fatalf("Failed to prove the first node %v", err)
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+ }
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+ if err := trie.Prove(entries[end-1].k, 0, lastProof); err != nil {
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+ b.Fatalf("Failed to prove the last node %v", err)
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+ }
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+ var keys [][]byte
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+ var values [][]byte
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+ for i := start; i < end; i++ {
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+ keys = append(keys, entries[i].k)
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+ values = append(values, entries[i].v)
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+ }
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+
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+ b.ResetTimer()
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+ for i := 0; i < b.N; i++ {
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+ err := VerifyRangeProof(trie.Hash(), keys, values, firstProof, lastProof)
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+ if err != nil {
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+ b.Fatalf("Case %d(%d->%d) expect no error, got %v", i, start, end-1, err)
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+ }
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+ }
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+}
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+
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func randomTrie(n int) (*Trie, map[string]*kv) {
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trie := new(Trie)
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vals := make(map[string]*kv)
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