iterator_test.go 35.3 KB
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// Copyright 2019 The go-ethereum Authors
// This file is part of the go-ethereum library.
//
// The go-ethereum library is free software: you can redistribute it and/or modify
// it under the terms of the GNU Lesser General Public License as published by
// the Free Software Foundation, either version 3 of the License, or
// (at your option) any later version.
//
// The go-ethereum library is distributed in the hope that it will be useful,
// but WITHOUT ANY WARRANTY; without even the implied warranty of
// MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
// GNU Lesser General Public License for more details.
//
// You should have received a copy of the GNU Lesser General Public License
// along with the go-ethereum library. If not, see <http://www.gnu.org/licenses/>.

package snapshot

import (
	"bytes"
	"encoding/binary"
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	"fmt"
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	"math/rand"
	"testing"

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	"github.com/VictoriaMetrics/fastcache"
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	"github.com/ethereum/go-ethereum/common"
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	"github.com/ethereum/go-ethereum/core/rawdb"
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)

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// TestAccountIteratorBasics tests some simple single-layer(diff and disk) iteration
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func TestAccountIteratorBasics(t *testing.T) {
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	var (
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		destructs = make(map[common.Hash]struct{})
		accounts  = make(map[common.Hash][]byte)
		storage   = make(map[common.Hash]map[common.Hash][]byte)
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	)
	// Fill up a parent
	for i := 0; i < 100; i++ {
		h := randomHash()
		data := randomAccount()
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		accounts[h] = data
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		if rand.Intn(4) == 0 {
			destructs[h] = struct{}{}
		}
		if rand.Intn(2) == 0 {
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			accStorage := make(map[common.Hash][]byte)
			value := make([]byte, 32)
			rand.Read(value)
			accStorage[randomHash()] = value
			storage[h] = accStorage
		}
	}
	// Add some (identical) layers on top
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	diffLayer := newDiffLayer(emptyLayer(), common.Hash{}, copyDestructs(destructs), copyAccounts(accounts), copyStorage(storage))
	it := diffLayer.AccountIterator(common.Hash{})
	verifyIterator(t, 100, it, verifyNothing) // Nil is allowed for single layer iterator

	diskLayer := diffToDisk(diffLayer)
	it = diskLayer.AccountIterator(common.Hash{})
	verifyIterator(t, 100, it, verifyNothing) // Nil is allowed for single layer iterator
}

// TestStorageIteratorBasics tests some simple single-layer(diff and disk) iteration for storage
func TestStorageIteratorBasics(t *testing.T) {
	var (
		nilStorage = make(map[common.Hash]int)
		accounts   = make(map[common.Hash][]byte)
		storage    = make(map[common.Hash]map[common.Hash][]byte)
	)
	// Fill some random data
	for i := 0; i < 10; i++ {
		h := randomHash()
		accounts[h] = randomAccount()

		accStorage := make(map[common.Hash][]byte)
		value := make([]byte, 32)

		var nilstorage int
		for i := 0; i < 100; i++ {
			rand.Read(value)
			if rand.Intn(2) == 0 {
				accStorage[randomHash()] = common.CopyBytes(value)
			} else {
				accStorage[randomHash()] = nil // delete slot
				nilstorage += 1
			}
		}
		storage[h] = accStorage
		nilStorage[h] = nilstorage
	}
	// Add some (identical) layers on top
	diffLayer := newDiffLayer(emptyLayer(), common.Hash{}, nil, copyAccounts(accounts), copyStorage(storage))
	for account := range accounts {
		it, _ := diffLayer.StorageIterator(account, common.Hash{})
		verifyIterator(t, 100, it, verifyNothing) // Nil is allowed for single layer iterator
	}

	diskLayer := diffToDisk(diffLayer)
	for account := range accounts {
		it, _ := diskLayer.StorageIterator(account, common.Hash{})
		verifyIterator(t, 100-nilStorage[account], it, verifyNothing) // Nil is allowed for single layer iterator
	}
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}

type testIterator struct {
	values []byte
}

func newTestIterator(values ...byte) *testIterator {
	return &testIterator{values}
}

func (ti *testIterator) Seek(common.Hash) {
	panic("implement me")
}

func (ti *testIterator) Next() bool {
	ti.values = ti.values[1:]
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	return len(ti.values) > 0
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}

func (ti *testIterator) Error() error {
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	return nil
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}

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func (ti *testIterator) Hash() common.Hash {
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	return common.BytesToHash([]byte{ti.values[0]})
}

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func (ti *testIterator) Account() []byte {
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	return nil
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}

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func (ti *testIterator) Slot() []byte {
	return nil
}

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func (ti *testIterator) Release() {}

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func TestFastIteratorBasics(t *testing.T) {
	type testCase struct {
		lists   [][]byte
		expKeys []byte
	}
	for i, tc := range []testCase{
		{lists: [][]byte{{0, 1, 8}, {1, 2, 8}, {2, 9}, {4},
			{7, 14, 15}, {9, 13, 15, 16}},
			expKeys: []byte{0, 1, 2, 4, 7, 8, 9, 13, 14, 15, 16}},
		{lists: [][]byte{{0, 8}, {1, 2, 8}, {7, 14, 15}, {8, 9},
			{9, 10}, {10, 13, 15, 16}},
			expKeys: []byte{0, 1, 2, 7, 8, 9, 10, 13, 14, 15, 16}},
	} {
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		var iterators []*weightedIterator
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		for i, data := range tc.lists {
			it := newTestIterator(data...)
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			iterators = append(iterators, &weightedIterator{it, i})
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		}
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		fi := &fastIterator{
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			iterators: iterators,
			initiated: false,
		}
		count := 0
		for fi.Next() {
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			if got, exp := fi.Hash()[31], tc.expKeys[count]; exp != got {
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				t.Errorf("tc %d, [%d]: got %d exp %d", i, count, got, exp)
			}
			count++
		}
	}
}

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type verifyContent int

const (
	verifyNothing verifyContent = iota
	verifyAccount
	verifyStorage
)

func verifyIterator(t *testing.T, expCount int, it Iterator, verify verifyContent) {
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	t.Helper()

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	var (
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		count = 0
		last  = common.Hash{}
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	)
	for it.Next() {
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		hash := it.Hash()
		if bytes.Compare(last[:], hash[:]) >= 0 {
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			t.Errorf("wrong order: %x >= %x", last, hash)
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		}
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		count++
		if verify == verifyAccount && len(it.(AccountIterator).Account()) == 0 {
			t.Errorf("iterator returned nil-value for hash %x", hash)
		} else if verify == verifyStorage && len(it.(StorageIterator).Slot()) == 0 {
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			t.Errorf("iterator returned nil-value for hash %x", hash)
		}
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		last = hash
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	}
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	if count != expCount {
		t.Errorf("iterator count mismatch: have %d, want %d", count, expCount)
	}
	if err := it.Error(); err != nil {
		t.Errorf("iterator failed: %v", err)
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	}
}

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// TestAccountIteratorTraversal tests some simple multi-layer iteration.
func TestAccountIteratorTraversal(t *testing.T) {
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	// Create an empty base layer and a snapshot tree out of it
	base := &diskLayer{
		diskdb: rawdb.NewMemoryDatabase(),
		root:   common.HexToHash("0x01"),
		cache:  fastcache.New(1024 * 500),
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	}
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	snaps := &Tree{
		layers: map[common.Hash]snapshot{
			base.root: base,
		},
	}
	// Stack three diff layers on top with various overlaps
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	snaps.Update(common.HexToHash("0x02"), common.HexToHash("0x01"), nil,
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		randomAccountSet("0xaa", "0xee", "0xff", "0xf0"), nil)

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	snaps.Update(common.HexToHash("0x03"), common.HexToHash("0x02"), nil,
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		randomAccountSet("0xbb", "0xdd", "0xf0"), nil)
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	snaps.Update(common.HexToHash("0x04"), common.HexToHash("0x03"), nil,
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		randomAccountSet("0xcc", "0xf0", "0xff"), nil)
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	// Verify the single and multi-layer iterators
	head := snaps.Snapshot(common.HexToHash("0x04"))
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	verifyIterator(t, 3, head.(snapshot).AccountIterator(common.Hash{}), verifyNothing)
	verifyIterator(t, 7, head.(*diffLayer).newBinaryAccountIterator(), verifyAccount)
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	it, _ := snaps.AccountIterator(common.HexToHash("0x04"), common.Hash{})
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	verifyIterator(t, 7, it, verifyAccount)
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	it.Release()

	// Test after persist some bottom-most layers into the disk,
	// the functionalities still work.
	limit := aggregatorMemoryLimit
	defer func() {
		aggregatorMemoryLimit = limit
	}()
	aggregatorMemoryLimit = 0 // Force pushing the bottom-most layer into disk
	snaps.Cap(common.HexToHash("0x04"), 2)
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	verifyIterator(t, 7, head.(*diffLayer).newBinaryAccountIterator(), verifyAccount)
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	it, _ = snaps.AccountIterator(common.HexToHash("0x04"), common.Hash{})
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	verifyIterator(t, 7, it, verifyAccount)
	it.Release()
}

func TestStorageIteratorTraversal(t *testing.T) {
	// Create an empty base layer and a snapshot tree out of it
	base := &diskLayer{
		diskdb: rawdb.NewMemoryDatabase(),
		root:   common.HexToHash("0x01"),
		cache:  fastcache.New(1024 * 500),
	}
	snaps := &Tree{
		layers: map[common.Hash]snapshot{
			base.root: base,
		},
	}
	// Stack three diff layers on top with various overlaps
	snaps.Update(common.HexToHash("0x02"), common.HexToHash("0x01"), nil,
		randomAccountSet("0xaa"), randomStorageSet([]string{"0xaa"}, [][]string{{"0x01", "0x02", "0x03"}}, nil))

	snaps.Update(common.HexToHash("0x03"), common.HexToHash("0x02"), nil,
		randomAccountSet("0xaa"), randomStorageSet([]string{"0xaa"}, [][]string{{"0x04", "0x05", "0x06"}}, nil))

	snaps.Update(common.HexToHash("0x04"), common.HexToHash("0x03"), nil,
		randomAccountSet("0xaa"), randomStorageSet([]string{"0xaa"}, [][]string{{"0x01", "0x02", "0x03"}}, nil))

	// Verify the single and multi-layer iterators
	head := snaps.Snapshot(common.HexToHash("0x04"))

	diffIter, _ := head.(snapshot).StorageIterator(common.HexToHash("0xaa"), common.Hash{})
	verifyIterator(t, 3, diffIter, verifyNothing)
	verifyIterator(t, 6, head.(*diffLayer).newBinaryStorageIterator(common.HexToHash("0xaa")), verifyStorage)

	it, _ := snaps.StorageIterator(common.HexToHash("0x04"), common.HexToHash("0xaa"), common.Hash{})
	verifyIterator(t, 6, it, verifyStorage)
	it.Release()

	// Test after persist some bottom-most layers into the disk,
	// the functionalities still work.
	limit := aggregatorMemoryLimit
	defer func() {
		aggregatorMemoryLimit = limit
	}()
	aggregatorMemoryLimit = 0 // Force pushing the bottom-most layer into disk
	snaps.Cap(common.HexToHash("0x04"), 2)
	verifyIterator(t, 6, head.(*diffLayer).newBinaryStorageIterator(common.HexToHash("0xaa")), verifyStorage)

	it, _ = snaps.StorageIterator(common.HexToHash("0x04"), common.HexToHash("0xaa"), common.Hash{})
	verifyIterator(t, 6, it, verifyStorage)
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	it.Release()
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}

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// TestAccountIteratorTraversalValues tests some multi-layer iteration, where we
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// also expect the correct values to show up.
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func TestAccountIteratorTraversalValues(t *testing.T) {
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	// Create an empty base layer and a snapshot tree out of it
	base := &diskLayer{
		diskdb: rawdb.NewMemoryDatabase(),
		root:   common.HexToHash("0x01"),
		cache:  fastcache.New(1024 * 500),
	}
	snaps := &Tree{
		layers: map[common.Hash]snapshot{
			base.root: base,
		},
	}
	// Create a batch of account sets to seed subsequent layers with
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	var (
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		a = make(map[common.Hash][]byte)
		b = make(map[common.Hash][]byte)
		c = make(map[common.Hash][]byte)
		d = make(map[common.Hash][]byte)
		e = make(map[common.Hash][]byte)
		f = make(map[common.Hash][]byte)
		g = make(map[common.Hash][]byte)
		h = make(map[common.Hash][]byte)
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	)
	for i := byte(2); i < 0xff; i++ {
		a[common.Hash{i}] = []byte(fmt.Sprintf("layer-%d, key %d", 0, i))
		if i > 20 && i%2 == 0 {
			b[common.Hash{i}] = []byte(fmt.Sprintf("layer-%d, key %d", 1, i))
		}
		if i%4 == 0 {
			c[common.Hash{i}] = []byte(fmt.Sprintf("layer-%d, key %d", 2, i))
		}
		if i%7 == 0 {
			d[common.Hash{i}] = []byte(fmt.Sprintf("layer-%d, key %d", 3, i))
		}
		if i%8 == 0 {
			e[common.Hash{i}] = []byte(fmt.Sprintf("layer-%d, key %d", 4, i))
		}
		if i > 50 || i < 85 {
			f[common.Hash{i}] = []byte(fmt.Sprintf("layer-%d, key %d", 5, i))
		}
		if i%64 == 0 {
			g[common.Hash{i}] = []byte(fmt.Sprintf("layer-%d, key %d", 6, i))
		}
		if i%128 == 0 {
			h[common.Hash{i}] = []byte(fmt.Sprintf("layer-%d, key %d", 7, i))
		}
	}
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	// Assemble a stack of snapshots from the account layers
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	snaps.Update(common.HexToHash("0x02"), common.HexToHash("0x01"), nil, a, nil)
	snaps.Update(common.HexToHash("0x03"), common.HexToHash("0x02"), nil, b, nil)
	snaps.Update(common.HexToHash("0x04"), common.HexToHash("0x03"), nil, c, nil)
	snaps.Update(common.HexToHash("0x05"), common.HexToHash("0x04"), nil, d, nil)
	snaps.Update(common.HexToHash("0x06"), common.HexToHash("0x05"), nil, e, nil)
	snaps.Update(common.HexToHash("0x07"), common.HexToHash("0x06"), nil, f, nil)
	snaps.Update(common.HexToHash("0x08"), common.HexToHash("0x07"), nil, g, nil)
	snaps.Update(common.HexToHash("0x09"), common.HexToHash("0x08"), nil, h, nil)
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	it, _ := snaps.AccountIterator(common.HexToHash("0x09"), common.Hash{})
	head := snaps.Snapshot(common.HexToHash("0x09"))
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	for it.Next() {
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		hash := it.Hash()
		want, err := head.AccountRLP(hash)
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		if err != nil {
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			t.Fatalf("failed to retrieve expected account: %v", err)
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		}
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		if have := it.Account(); !bytes.Equal(want, have) {
			t.Fatalf("hash %x: account mismatch: have %x, want %x", hash, have, want)
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		}
	}
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	it.Release()

	// Test after persist some bottom-most layers into the disk,
	// the functionalities still work.
	limit := aggregatorMemoryLimit
	defer func() {
		aggregatorMemoryLimit = limit
	}()
	aggregatorMemoryLimit = 0 // Force pushing the bottom-most layer into disk
	snaps.Cap(common.HexToHash("0x09"), 2)

	it, _ = snaps.AccountIterator(common.HexToHash("0x09"), common.Hash{})
	for it.Next() {
		hash := it.Hash()
		want, err := head.AccountRLP(hash)
		if err != nil {
			t.Fatalf("failed to retrieve expected account: %v", err)
		}
		if have := it.Account(); !bytes.Equal(want, have) {
			t.Fatalf("hash %x: account mismatch: have %x, want %x", hash, have, want)
		}
	}
	it.Release()
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}

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func TestStorageIteratorTraversalValues(t *testing.T) {
	// Create an empty base layer and a snapshot tree out of it
	base := &diskLayer{
		diskdb: rawdb.NewMemoryDatabase(),
		root:   common.HexToHash("0x01"),
		cache:  fastcache.New(1024 * 500),
	}
	snaps := &Tree{
		layers: map[common.Hash]snapshot{
			base.root: base,
		},
	}
	wrapStorage := func(storage map[common.Hash][]byte) map[common.Hash]map[common.Hash][]byte {
		return map[common.Hash]map[common.Hash][]byte{
			common.HexToHash("0xaa"): storage,
		}
	}
	// Create a batch of storage sets to seed subsequent layers with
	var (
		a = make(map[common.Hash][]byte)
		b = make(map[common.Hash][]byte)
		c = make(map[common.Hash][]byte)
		d = make(map[common.Hash][]byte)
		e = make(map[common.Hash][]byte)
		f = make(map[common.Hash][]byte)
		g = make(map[common.Hash][]byte)
		h = make(map[common.Hash][]byte)
	)
	for i := byte(2); i < 0xff; i++ {
		a[common.Hash{i}] = []byte(fmt.Sprintf("layer-%d, key %d", 0, i))
		if i > 20 && i%2 == 0 {
			b[common.Hash{i}] = []byte(fmt.Sprintf("layer-%d, key %d", 1, i))
		}
		if i%4 == 0 {
			c[common.Hash{i}] = []byte(fmt.Sprintf("layer-%d, key %d", 2, i))
		}
		if i%7 == 0 {
			d[common.Hash{i}] = []byte(fmt.Sprintf("layer-%d, key %d", 3, i))
		}
		if i%8 == 0 {
			e[common.Hash{i}] = []byte(fmt.Sprintf("layer-%d, key %d", 4, i))
		}
		if i > 50 || i < 85 {
			f[common.Hash{i}] = []byte(fmt.Sprintf("layer-%d, key %d", 5, i))
		}
		if i%64 == 0 {
			g[common.Hash{i}] = []byte(fmt.Sprintf("layer-%d, key %d", 6, i))
		}
		if i%128 == 0 {
			h[common.Hash{i}] = []byte(fmt.Sprintf("layer-%d, key %d", 7, i))
		}
	}
	// Assemble a stack of snapshots from the account layers
	snaps.Update(common.HexToHash("0x02"), common.HexToHash("0x01"), nil, randomAccountSet("0xaa"), wrapStorage(a))
	snaps.Update(common.HexToHash("0x03"), common.HexToHash("0x02"), nil, randomAccountSet("0xaa"), wrapStorage(b))
	snaps.Update(common.HexToHash("0x04"), common.HexToHash("0x03"), nil, randomAccountSet("0xaa"), wrapStorage(c))
	snaps.Update(common.HexToHash("0x05"), common.HexToHash("0x04"), nil, randomAccountSet("0xaa"), wrapStorage(d))
	snaps.Update(common.HexToHash("0x06"), common.HexToHash("0x05"), nil, randomAccountSet("0xaa"), wrapStorage(e))
	snaps.Update(common.HexToHash("0x07"), common.HexToHash("0x06"), nil, randomAccountSet("0xaa"), wrapStorage(e))
	snaps.Update(common.HexToHash("0x08"), common.HexToHash("0x07"), nil, randomAccountSet("0xaa"), wrapStorage(g))
	snaps.Update(common.HexToHash("0x09"), common.HexToHash("0x08"), nil, randomAccountSet("0xaa"), wrapStorage(h))

	it, _ := snaps.StorageIterator(common.HexToHash("0x09"), common.HexToHash("0xaa"), common.Hash{})
	head := snaps.Snapshot(common.HexToHash("0x09"))
	for it.Next() {
		hash := it.Hash()
		want, err := head.Storage(common.HexToHash("0xaa"), hash)
		if err != nil {
			t.Fatalf("failed to retrieve expected storage slot: %v", err)
		}
		if have := it.Slot(); !bytes.Equal(want, have) {
			t.Fatalf("hash %x: slot mismatch: have %x, want %x", hash, have, want)
		}
	}
	it.Release()

	// Test after persist some bottom-most layers into the disk,
	// the functionalities still work.
	limit := aggregatorMemoryLimit
	defer func() {
		aggregatorMemoryLimit = limit
	}()
	aggregatorMemoryLimit = 0 // Force pushing the bottom-most layer into disk
	snaps.Cap(common.HexToHash("0x09"), 2)

	it, _ = snaps.StorageIterator(common.HexToHash("0x09"), common.HexToHash("0xaa"), common.Hash{})
	for it.Next() {
		hash := it.Hash()
		want, err := head.Storage(common.HexToHash("0xaa"), hash)
		if err != nil {
			t.Fatalf("failed to retrieve expected slot: %v", err)
		}
		if have := it.Slot(); !bytes.Equal(want, have) {
			t.Fatalf("hash %x: slot mismatch: have %x, want %x", hash, have, want)
		}
	}
	it.Release()
}

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// This testcase is notorious, all layers contain the exact same 200 accounts.
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func TestAccountIteratorLargeTraversal(t *testing.T) {
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	// Create a custom account factory to recreate the same addresses
	makeAccounts := func(num int) map[common.Hash][]byte {
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		accounts := make(map[common.Hash][]byte)
		for i := 0; i < num; i++ {
			h := common.Hash{}
			binary.BigEndian.PutUint64(h[:], uint64(i+1))
			accounts[h] = randomAccount()
		}
		return accounts
	}
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	// Build up a large stack of snapshots
	base := &diskLayer{
		diskdb: rawdb.NewMemoryDatabase(),
		root:   common.HexToHash("0x01"),
		cache:  fastcache.New(1024 * 500),
	}
	snaps := &Tree{
		layers: map[common.Hash]snapshot{
			base.root: base,
		},
	}
	for i := 1; i < 128; i++ {
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		snaps.Update(common.HexToHash(fmt.Sprintf("0x%02x", i+1)), common.HexToHash(fmt.Sprintf("0x%02x", i)), nil, makeAccounts(200), nil)
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	}
	// Iterate the entire stack and ensure everything is hit only once
	head := snaps.Snapshot(common.HexToHash("0x80"))
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	verifyIterator(t, 200, head.(snapshot).AccountIterator(common.Hash{}), verifyNothing)
	verifyIterator(t, 200, head.(*diffLayer).newBinaryAccountIterator(), verifyAccount)
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	it, _ := snaps.AccountIterator(common.HexToHash("0x80"), common.Hash{})
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	verifyIterator(t, 200, it, verifyAccount)
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	it.Release()

	// Test after persist some bottom-most layers into the disk,
	// the functionalities still work.
	limit := aggregatorMemoryLimit
	defer func() {
		aggregatorMemoryLimit = limit
	}()
	aggregatorMemoryLimit = 0 // Force pushing the bottom-most layer into disk
	snaps.Cap(common.HexToHash("0x80"), 2)

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	verifyIterator(t, 200, head.(*diffLayer).newBinaryAccountIterator(), verifyAccount)
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	it, _ = snaps.AccountIterator(common.HexToHash("0x80"), common.Hash{})
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	verifyIterator(t, 200, it, verifyAccount)
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	it.Release()
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}

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// TestAccountIteratorFlattening tests what happens when we
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// - have a live iterator on child C (parent C1 -> C2 .. CN)
// - flattens C2 all the way into CN
// - continues iterating
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func TestAccountIteratorFlattening(t *testing.T) {
557 558 559 560 561 562 563 564 565 566 567 568
	// Create an empty base layer and a snapshot tree out of it
	base := &diskLayer{
		diskdb: rawdb.NewMemoryDatabase(),
		root:   common.HexToHash("0x01"),
		cache:  fastcache.New(1024 * 500),
	}
	snaps := &Tree{
		layers: map[common.Hash]snapshot{
			base.root: base,
		},
	}
	// Create a stack of diffs on top
569
	snaps.Update(common.HexToHash("0x02"), common.HexToHash("0x01"), nil,
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		randomAccountSet("0xaa", "0xee", "0xff", "0xf0"), nil)

572
	snaps.Update(common.HexToHash("0x03"), common.HexToHash("0x02"), nil,
573 574
		randomAccountSet("0xbb", "0xdd", "0xf0"), nil)

575
	snaps.Update(common.HexToHash("0x04"), common.HexToHash("0x03"), nil,
576 577 578 579 580 581 582 583 584 585 586 587
		randomAccountSet("0xcc", "0xf0", "0xff"), nil)

	// Create an iterator and flatten the data from underneath it
	it, _ := snaps.AccountIterator(common.HexToHash("0x04"), common.Hash{})
	defer it.Release()

	if err := snaps.Cap(common.HexToHash("0x04"), 1); err != nil {
		t.Fatalf("failed to flatten snapshot stack: %v", err)
	}
	//verifyIterator(t, 7, it)
}

588
func TestAccountIteratorSeek(t *testing.T) {
589 590 591 592 593 594 595 596 597 598 599
	// Create a snapshot stack with some initial data
	base := &diskLayer{
		diskdb: rawdb.NewMemoryDatabase(),
		root:   common.HexToHash("0x01"),
		cache:  fastcache.New(1024 * 500),
	}
	snaps := &Tree{
		layers: map[common.Hash]snapshot{
			base.root: base,
		},
	}
600
	snaps.Update(common.HexToHash("0x02"), common.HexToHash("0x01"), nil,
601 602
		randomAccountSet("0xaa", "0xee", "0xff", "0xf0"), nil)

603
	snaps.Update(common.HexToHash("0x03"), common.HexToHash("0x02"), nil,
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		randomAccountSet("0xbb", "0xdd", "0xf0"), nil)

606
	snaps.Update(common.HexToHash("0x04"), common.HexToHash("0x03"), nil,
607 608
		randomAccountSet("0xcc", "0xf0", "0xff"), nil)

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	// Account set is now
	// 02: aa, ee, f0, ff
	// 03: aa, bb, dd, ee, f0 (, f0), ff
	// 04: aa, bb, cc, dd, ee, f0 (, f0), ff (, ff)
	// Construct various iterators and ensure their traversal is correct
614 615
	it, _ := snaps.AccountIterator(common.HexToHash("0x02"), common.HexToHash("0xdd"))
	defer it.Release()
616
	verifyIterator(t, 3, it, verifyAccount) // expected: ee, f0, ff
617 618 619

	it, _ = snaps.AccountIterator(common.HexToHash("0x02"), common.HexToHash("0xaa"))
	defer it.Release()
620
	verifyIterator(t, 4, it, verifyAccount) // expected: aa, ee, f0, ff
621 622 623

	it, _ = snaps.AccountIterator(common.HexToHash("0x02"), common.HexToHash("0xff"))
	defer it.Release()
624
	verifyIterator(t, 1, it, verifyAccount) // expected: ff
625 626 627

	it, _ = snaps.AccountIterator(common.HexToHash("0x02"), common.HexToHash("0xff1"))
	defer it.Release()
628
	verifyIterator(t, 0, it, verifyAccount) // expected: nothing
629 630 631

	it, _ = snaps.AccountIterator(common.HexToHash("0x04"), common.HexToHash("0xbb"))
	defer it.Release()
632
	verifyIterator(t, 6, it, verifyAccount) // expected: bb, cc, dd, ee, f0, ff
633 634 635

	it, _ = snaps.AccountIterator(common.HexToHash("0x04"), common.HexToHash("0xef"))
	defer it.Release()
636
	verifyIterator(t, 2, it, verifyAccount) // expected: f0, ff
637 638 639

	it, _ = snaps.AccountIterator(common.HexToHash("0x04"), common.HexToHash("0xf0"))
	defer it.Release()
640
	verifyIterator(t, 2, it, verifyAccount) // expected: f0, ff
641 642 643

	it, _ = snaps.AccountIterator(common.HexToHash("0x04"), common.HexToHash("0xff"))
	defer it.Release()
644
	verifyIterator(t, 1, it, verifyAccount) // expected: ff
645 646 647

	it, _ = snaps.AccountIterator(common.HexToHash("0x04"), common.HexToHash("0xff1"))
	defer it.Release()
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	verifyIterator(t, 0, it, verifyAccount) // expected: nothing
}

func TestStorageIteratorSeek(t *testing.T) {
	// Create a snapshot stack with some initial data
	base := &diskLayer{
		diskdb: rawdb.NewMemoryDatabase(),
		root:   common.HexToHash("0x01"),
		cache:  fastcache.New(1024 * 500),
	}
	snaps := &Tree{
		layers: map[common.Hash]snapshot{
			base.root: base,
		},
	}
	// Stack three diff layers on top with various overlaps
	snaps.Update(common.HexToHash("0x02"), common.HexToHash("0x01"), nil,
		randomAccountSet("0xaa"), randomStorageSet([]string{"0xaa"}, [][]string{{"0x01", "0x03", "0x05"}}, nil))

	snaps.Update(common.HexToHash("0x03"), common.HexToHash("0x02"), nil,
		randomAccountSet("0xaa"), randomStorageSet([]string{"0xaa"}, [][]string{{"0x02", "0x05", "0x06"}}, nil))
669

670 671 672 673 674 675 676 677 678 679 680 681 682 683 684 685 686 687 688 689 690 691 692 693 694 695 696 697 698 699 700 701 702 703 704 705 706 707 708
	snaps.Update(common.HexToHash("0x04"), common.HexToHash("0x03"), nil,
		randomAccountSet("0xaa"), randomStorageSet([]string{"0xaa"}, [][]string{{"0x01", "0x05", "0x08"}}, nil))

	// Account set is now
	// 02: 01, 03, 05
	// 03: 01, 02, 03, 05 (, 05), 06
	// 04: 01(, 01), 02, 03, 05(, 05, 05), 06, 08
	// Construct various iterators and ensure their traversal is correct
	it, _ := snaps.StorageIterator(common.HexToHash("0x02"), common.HexToHash("0xaa"), common.HexToHash("0x01"))
	defer it.Release()
	verifyIterator(t, 3, it, verifyStorage) // expected: 01, 03, 05

	it, _ = snaps.StorageIterator(common.HexToHash("0x02"), common.HexToHash("0xaa"), common.HexToHash("0x02"))
	defer it.Release()
	verifyIterator(t, 2, it, verifyStorage) // expected: 03, 05

	it, _ = snaps.StorageIterator(common.HexToHash("0x02"), common.HexToHash("0xaa"), common.HexToHash("0x5"))
	defer it.Release()
	verifyIterator(t, 1, it, verifyStorage) // expected: 05

	it, _ = snaps.StorageIterator(common.HexToHash("0x02"), common.HexToHash("0xaa"), common.HexToHash("0x6"))
	defer it.Release()
	verifyIterator(t, 0, it, verifyStorage) // expected: nothing

	it, _ = snaps.StorageIterator(common.HexToHash("0x04"), common.HexToHash("0xaa"), common.HexToHash("0x01"))
	defer it.Release()
	verifyIterator(t, 6, it, verifyStorage) // expected: 01, 02, 03, 05, 06, 08

	it, _ = snaps.StorageIterator(common.HexToHash("0x04"), common.HexToHash("0xaa"), common.HexToHash("0x05"))
	defer it.Release()
	verifyIterator(t, 3, it, verifyStorage) // expected: 05, 06, 08

	it, _ = snaps.StorageIterator(common.HexToHash("0x04"), common.HexToHash("0xaa"), common.HexToHash("0x08"))
	defer it.Release()
	verifyIterator(t, 1, it, verifyStorage) // expected: 08

	it, _ = snaps.StorageIterator(common.HexToHash("0x04"), common.HexToHash("0xaa"), common.HexToHash("0x09"))
	defer it.Release()
	verifyIterator(t, 0, it, verifyStorage) // expected: nothing
709 710
}

711
// TestAccountIteratorDeletions tests that the iterator behaves correct when there are
712 713
// deleted accounts (where the Account() value is nil). The iterator
// should not output any accounts or nil-values for those cases.
714
func TestAccountIteratorDeletions(t *testing.T) {
715 716 717 718 719 720 721 722 723 724 725 726 727
	// Create an empty base layer and a snapshot tree out of it
	base := &diskLayer{
		diskdb: rawdb.NewMemoryDatabase(),
		root:   common.HexToHash("0x01"),
		cache:  fastcache.New(1024 * 500),
	}
	snaps := &Tree{
		layers: map[common.Hash]snapshot{
			base.root: base,
		},
	}
	// Stack three diff layers on top with various overlaps
	snaps.Update(common.HexToHash("0x02"), common.HexToHash("0x01"),
728
		nil, randomAccountSet("0x11", "0x22", "0x33"), nil)
729 730

	deleted := common.HexToHash("0x22")
731
	destructed := map[common.Hash]struct{}{
732
		deleted: {},
733 734 735
	}
	snaps.Update(common.HexToHash("0x03"), common.HexToHash("0x02"),
		destructed, randomAccountSet("0x11", "0x33"), nil)
736 737

	snaps.Update(common.HexToHash("0x04"), common.HexToHash("0x03"),
738
		nil, randomAccountSet("0x33", "0x44", "0x55"), nil)
739 740 741 742

	// The output should be 11,33,44,55
	it, _ := snaps.AccountIterator(common.HexToHash("0x04"), common.Hash{})
	// Do a quick check
743
	verifyIterator(t, 4, it, verifyAccount)
744 745 746 747 748 749 750 751 752 753 754 755 756 757 758 759
	it.Release()

	// And a more detailed verification that we indeed do not see '0x22'
	it, _ = snaps.AccountIterator(common.HexToHash("0x04"), common.Hash{})
	defer it.Release()
	for it.Next() {
		hash := it.Hash()
		if it.Account() == nil {
			t.Errorf("iterator returned nil-value for hash %x", hash)
		}
		if hash == deleted {
			t.Errorf("expected deleted elem %x to not be returned by iterator", deleted)
		}
	}
}

760 761 762 763 764 765 766 767 768 769 770 771 772 773 774 775 776 777 778 779 780 781 782 783 784 785 786 787 788 789 790 791 792 793 794 795 796 797 798 799 800 801 802 803 804 805 806 807 808 809 810 811 812 813 814 815 816
func TestStorageIteratorDeletions(t *testing.T) {
	// Create an empty base layer and a snapshot tree out of it
	base := &diskLayer{
		diskdb: rawdb.NewMemoryDatabase(),
		root:   common.HexToHash("0x01"),
		cache:  fastcache.New(1024 * 500),
	}
	snaps := &Tree{
		layers: map[common.Hash]snapshot{
			base.root: base,
		},
	}
	// Stack three diff layers on top with various overlaps
	snaps.Update(common.HexToHash("0x02"), common.HexToHash("0x01"), nil,
		randomAccountSet("0xaa"), randomStorageSet([]string{"0xaa"}, [][]string{{"0x01", "0x03", "0x05"}}, nil))

	snaps.Update(common.HexToHash("0x03"), common.HexToHash("0x02"), nil,
		randomAccountSet("0xaa"), randomStorageSet([]string{"0xaa"}, [][]string{{"0x02", "0x04", "0x06"}}, [][]string{{"0x01", "0x03"}}))

	// The output should be 02,04,05,06
	it, _ := snaps.StorageIterator(common.HexToHash("0x03"), common.HexToHash("0xaa"), common.Hash{})
	verifyIterator(t, 4, it, verifyStorage)
	it.Release()

	// The output should be 04,05,06
	it, _ = snaps.StorageIterator(common.HexToHash("0x03"), common.HexToHash("0xaa"), common.HexToHash("0x03"))
	verifyIterator(t, 3, it, verifyStorage)
	it.Release()

	// Destruct the whole storage
	destructed := map[common.Hash]struct{}{
		common.HexToHash("0xaa"): {},
	}
	snaps.Update(common.HexToHash("0x04"), common.HexToHash("0x03"), destructed, nil, nil)

	it, _ = snaps.StorageIterator(common.HexToHash("0x04"), common.HexToHash("0xaa"), common.Hash{})
	verifyIterator(t, 0, it, verifyStorage)
	it.Release()

	// Re-insert the slots of the same account
	snaps.Update(common.HexToHash("0x05"), common.HexToHash("0x04"), nil,
		randomAccountSet("0xaa"), randomStorageSet([]string{"0xaa"}, [][]string{{"0x07", "0x08", "0x09"}}, nil))

	// The output should be 07,08,09
	it, _ = snaps.StorageIterator(common.HexToHash("0x05"), common.HexToHash("0xaa"), common.Hash{})
	verifyIterator(t, 3, it, verifyStorage)
	it.Release()

	// Destruct the whole storage but re-create the account in the same layer
	snaps.Update(common.HexToHash("0x06"), common.HexToHash("0x05"), destructed, randomAccountSet("0xaa"), randomStorageSet([]string{"0xaa"}, [][]string{{"0x11", "0x12"}}, nil))
	it, _ = snaps.StorageIterator(common.HexToHash("0x06"), common.HexToHash("0xaa"), common.Hash{})
	verifyIterator(t, 2, it, verifyStorage) // The output should be 11,12
	it.Release()

	verifyIterator(t, 2, snaps.Snapshot(common.HexToHash("0x06")).(*diffLayer).newBinaryStorageIterator(common.HexToHash("0xaa")), verifyStorage)
}

817
// BenchmarkAccountIteratorTraversal is a bit a bit notorious -- all layers contain the
818 819
// exact same 200 accounts. That means that we need to process 2000 items, but
// only spit out 200 values eventually.
820
//
821 822 823
// The value-fetching benchmark is easy on the binary iterator, since it never has to reach
// down at any depth for retrieving the values -- all are on the toppmost layer
//
824 825 826 827 828
// BenchmarkAccountIteratorTraversal/binary_iterator_keys-6         	    2239	    483674 ns/op
// BenchmarkAccountIteratorTraversal/binary_iterator_values-6       	    2403	    501810 ns/op
// BenchmarkAccountIteratorTraversal/fast_iterator_keys-6           	    1923	    677966 ns/op
// BenchmarkAccountIteratorTraversal/fast_iterator_values-6         	    1741	    649967 ns/op
func BenchmarkAccountIteratorTraversal(b *testing.B) {
829 830
	// Create a custom account factory to recreate the same addresses
	makeAccounts := func(num int) map[common.Hash][]byte {
831 832 833 834 835 836 837 838
		accounts := make(map[common.Hash][]byte)
		for i := 0; i < num; i++ {
			h := common.Hash{}
			binary.BigEndian.PutUint64(h[:], uint64(i+1))
			accounts[h] = randomAccount()
		}
		return accounts
	}
839 840 841 842 843 844 845 846 847 848 849 850
	// Build up a large stack of snapshots
	base := &diskLayer{
		diskdb: rawdb.NewMemoryDatabase(),
		root:   common.HexToHash("0x01"),
		cache:  fastcache.New(1024 * 500),
	}
	snaps := &Tree{
		layers: map[common.Hash]snapshot{
			base.root: base,
		},
	}
	for i := 1; i <= 100; i++ {
851
		snaps.Update(common.HexToHash(fmt.Sprintf("0x%02x", i+1)), common.HexToHash(fmt.Sprintf("0x%02x", i)), nil, makeAccounts(200), nil)
852 853 854
	}
	// We call this once before the benchmark, so the creation of
	// sorted accountlists are not included in the results.
855 856 857
	head := snaps.Snapshot(common.HexToHash("0x65"))
	head.(*diffLayer).newBinaryAccountIterator()

858
	b.Run("binary iterator keys", func(b *testing.B) {
859 860
		for i := 0; i < b.N; i++ {
			got := 0
861
			it := head.(*diffLayer).newBinaryAccountIterator()
862 863 864 865 866 867 868 869
			for it.Next() {
				got++
			}
			if exp := 200; got != exp {
				b.Errorf("iterator len wrong, expected %d, got %d", exp, got)
			}
		}
	})
870 871 872
	b.Run("binary iterator values", func(b *testing.B) {
		for i := 0; i < b.N; i++ {
			got := 0
873
			it := head.(*diffLayer).newBinaryAccountIterator()
874 875
			for it.Next() {
				got++
876
				head.(*diffLayer).accountRLP(it.Hash(), 0)
877 878 879 880 881 882 883
			}
			if exp := 200; got != exp {
				b.Errorf("iterator len wrong, expected %d, got %d", exp, got)
			}
		}
	})
	b.Run("fast iterator keys", func(b *testing.B) {
884
		for i := 0; i < b.N; i++ {
885 886 887
			it, _ := snaps.AccountIterator(common.HexToHash("0x65"), common.Hash{})
			defer it.Release()

888 889 890 891 892 893 894 895 896
			got := 0
			for it.Next() {
				got++
			}
			if exp := 200; got != exp {
				b.Errorf("iterator len wrong, expected %d, got %d", exp, got)
			}
		}
	})
897 898
	b.Run("fast iterator values", func(b *testing.B) {
		for i := 0; i < b.N; i++ {
899 900 901
			it, _ := snaps.AccountIterator(common.HexToHash("0x65"), common.Hash{})
			defer it.Release()

902 903 904
			got := 0
			for it.Next() {
				got++
905
				it.Account()
906 907 908 909 910 911
			}
			if exp := 200; got != exp {
				b.Errorf("iterator len wrong, expected %d, got %d", exp, got)
			}
		}
	})
912 913
}

914
// BenchmarkAccountIteratorLargeBaselayer is a pretty realistic benchmark, where
915 916 917 918 919
// the baselayer is a lot larger than the upper layer.
//
// This is heavy on the binary iterator, which in most cases will have to
// call recursively 100 times for the majority of the values
//
920 921 922 923 924
// BenchmarkAccountIteratorLargeBaselayer/binary_iterator_(keys)-6         	     514	   1971999 ns/op
// BenchmarkAccountIteratorLargeBaselayer/binary_iterator_(values)-6       	      61	  18997492 ns/op
// BenchmarkAccountIteratorLargeBaselayer/fast_iterator_(keys)-6           	   10000	    114385 ns/op
// BenchmarkAccountIteratorLargeBaselayer/fast_iterator_(values)-6         	    4047	    296823 ns/op
func BenchmarkAccountIteratorLargeBaselayer(b *testing.B) {
925 926
	// Create a custom account factory to recreate the same addresses
	makeAccounts := func(num int) map[common.Hash][]byte {
927 928 929 930 931 932 933 934
		accounts := make(map[common.Hash][]byte)
		for i := 0; i < num; i++ {
			h := common.Hash{}
			binary.BigEndian.PutUint64(h[:], uint64(i+1))
			accounts[h] = randomAccount()
		}
		return accounts
	}
935 936 937 938 939 940 941 942 943 944 945
	// Build up a large stack of snapshots
	base := &diskLayer{
		diskdb: rawdb.NewMemoryDatabase(),
		root:   common.HexToHash("0x01"),
		cache:  fastcache.New(1024 * 500),
	}
	snaps := &Tree{
		layers: map[common.Hash]snapshot{
			base.root: base,
		},
	}
946
	snaps.Update(common.HexToHash("0x02"), common.HexToHash("0x01"), nil, makeAccounts(2000), nil)
947
	for i := 2; i <= 100; i++ {
948
		snaps.Update(common.HexToHash(fmt.Sprintf("0x%02x", i+1)), common.HexToHash(fmt.Sprintf("0x%02x", i)), nil, makeAccounts(20), nil)
949 950 951
	}
	// We call this once before the benchmark, so the creation of
	// sorted accountlists are not included in the results.
952 953 954
	head := snaps.Snapshot(common.HexToHash("0x65"))
	head.(*diffLayer).newBinaryAccountIterator()

955 956 957
	b.Run("binary iterator (keys)", func(b *testing.B) {
		for i := 0; i < b.N; i++ {
			got := 0
958
			it := head.(*diffLayer).newBinaryAccountIterator()
959 960 961 962 963 964 965 966
			for it.Next() {
				got++
			}
			if exp := 2000; got != exp {
				b.Errorf("iterator len wrong, expected %d, got %d", exp, got)
			}
		}
	})
967
	b.Run("binary iterator (values)", func(b *testing.B) {
968 969
		for i := 0; i < b.N; i++ {
			got := 0
970
			it := head.(*diffLayer).newBinaryAccountIterator()
971 972
			for it.Next() {
				got++
973 974
				v := it.Hash()
				head.(*diffLayer).accountRLP(v, 0)
975 976 977 978 979 980
			}
			if exp := 2000; got != exp {
				b.Errorf("iterator len wrong, expected %d, got %d", exp, got)
			}
		}
	})
981
	b.Run("fast iterator (keys)", func(b *testing.B) {
982
		for i := 0; i < b.N; i++ {
983 984 985
			it, _ := snaps.AccountIterator(common.HexToHash("0x65"), common.Hash{})
			defer it.Release()

986 987 988 989 990 991 992 993 994
			got := 0
			for it.Next() {
				got++
			}
			if exp := 2000; got != exp {
				b.Errorf("iterator len wrong, expected %d, got %d", exp, got)
			}
		}
	})
995
	b.Run("fast iterator (values)", func(b *testing.B) {
996
		for i := 0; i < b.N; i++ {
997 998 999
			it, _ := snaps.AccountIterator(common.HexToHash("0x65"), common.Hash{})
			defer it.Release()

1000 1001
			got := 0
			for it.Next() {
1002
				it.Account()
1003 1004 1005 1006 1007 1008 1009 1010 1011
				got++
			}
			if exp := 2000; got != exp {
				b.Errorf("iterator len wrong, expected %d, got %d", exp, got)
			}
		}
	})
}

1012 1013 1014 1015 1016 1017
/*
func BenchmarkBinaryAccountIteration(b *testing.B) {
	benchmarkAccountIteration(b, func(snap snapshot) AccountIterator {
		return snap.(*diffLayer).newBinaryAccountIterator()
	})
}
1018

1019 1020
func BenchmarkFastAccountIteration(b *testing.B) {
	benchmarkAccountIteration(b, newFastAccountIterator)
1021 1022
}

1023 1024 1025 1026 1027
func benchmarkAccountIteration(b *testing.B, iterator func(snap snapshot) AccountIterator) {
	// Create a diff stack and randomize the accounts across them
	layers := make([]map[common.Hash][]byte, 128)
	for i := 0; i < len(layers); i++ {
		layers[i] = make(map[common.Hash][]byte)
1028
	}
1029 1030 1031 1032 1033 1034
	for i := 0; i < b.N; i++ {
		depth := rand.Intn(len(layers))
		layers[depth][randomHash()] = randomAccount()
	}
	stack := snapshot(emptyLayer())
	for _, layer := range layers {
1035
		stack = stack.Update(common.Hash{}, layer, nil, nil)
1036 1037 1038
	}
	// Reset the timers and report all the stats
	it := iterator(stack)
1039

1040 1041
	b.ResetTimer()
	b.ReportAllocs()
1042

1043
	for it.Next() {
1044 1045
	}
}
1046
*/