iterator.go 16 KB

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  1. // Copyright 2014 The go-ethereum Authors
  2. // This file is part of the go-ethereum library.
  3. //
  4. // The go-ethereum library is free software: you can redistribute it and/or modify
  5. // it under the terms of the GNU Lesser General Public License as published by
  6. // the Free Software Foundation, either version 3 of the License, or
  7. // (at your option) any later version.
  8. //
  9. // The go-ethereum library is distributed in the hope that it will be useful,
  10. // but WITHOUT ANY WARRANTY; without even the implied warranty of
  11. // MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  12. // GNU Lesser General Public License for more details.
  13. //
  14. // You should have received a copy of the GNU Lesser General Public License
  15. // along with the go-ethereum library. If not, see <http://www.gnu.org/licenses/>.
  16. package trie
  17. import (
  18. "bytes"
  19. "container/heap"
  20. "errors"
  21. "github.com/ethereum/go-ethereum/common"
  22. "github.com/ethereum/go-ethereum/rlp"
  23. )
  24. // Iterator is a key-value trie iterator that traverses a Trie.
  25. type Iterator struct {
  26. nodeIt NodeIterator
  27. Key []byte // Current data key on which the iterator is positioned on
  28. Value []byte // Current data value on which the iterator is positioned on
  29. Err error
  30. }
  31. // NewIterator creates a new key-value iterator from a node iterator
  32. func NewIterator(it NodeIterator) *Iterator {
  33. return &Iterator{
  34. nodeIt: it,
  35. }
  36. }
  37. // Next moves the iterator forward one key-value entry.
  38. func (it *Iterator) Next() bool {
  39. for it.nodeIt.Next(true) {
  40. if it.nodeIt.Leaf() {
  41. it.Key = it.nodeIt.LeafKey()
  42. it.Value = it.nodeIt.LeafBlob()
  43. return true
  44. }
  45. }
  46. it.Key = nil
  47. it.Value = nil
  48. it.Err = it.nodeIt.Error()
  49. return false
  50. }
  51. // Prove generates the Merkle proof for the leaf node the iterator is currently
  52. // positioned on.
  53. func (it *Iterator) Prove() [][]byte {
  54. return it.nodeIt.LeafProof()
  55. }
  56. // NodeIterator is an iterator to traverse the trie pre-order.
  57. type NodeIterator interface {
  58. // Next moves the iterator to the next node. If the parameter is false, any child
  59. // nodes will be skipped.
  60. Next(bool) bool
  61. // Error returns the error status of the iterator.
  62. Error() error
  63. // Hash returns the hash of the current node.
  64. Hash() common.Hash
  65. // Parent returns the hash of the parent of the current node. The hash may be the one
  66. // grandparent if the immediate parent is an internal node with no hash.
  67. Parent() common.Hash
  68. // Path returns the hex-encoded path to the current node.
  69. // Callers must not retain references to the return value after calling Next.
  70. // For leaf nodes, the last element of the path is the 'terminator symbol' 0x10.
  71. Path() []byte
  72. // Leaf returns true iff the current node is a leaf node.
  73. Leaf() bool
  74. // LeafKey returns the key of the leaf. The method panics if the iterator is not
  75. // positioned at a leaf. Callers must not retain references to the value after
  76. // calling Next.
  77. LeafKey() []byte
  78. // LeafBlob returns the content of the leaf. The method panics if the iterator
  79. // is not positioned at a leaf. Callers must not retain references to the value
  80. // after calling Next.
  81. LeafBlob() []byte
  82. // LeafProof returns the Merkle proof of the leaf. The method panics if the
  83. // iterator is not positioned at a leaf. Callers must not retain references
  84. // to the value after calling Next.
  85. LeafProof() [][]byte
  86. }
  87. // nodeIteratorState represents the iteration state at one particular node of the
  88. // trie, which can be resumed at a later invocation.
  89. type nodeIteratorState struct {
  90. hash common.Hash // Hash of the node being iterated (nil if not standalone)
  91. node node // Trie node being iterated
  92. parent common.Hash // Hash of the first full ancestor node (nil if current is the root)
  93. index int // Child to be processed next
  94. pathlen int // Length of the path to this node
  95. }
  96. type nodeIterator struct {
  97. trie *Trie // Trie being iterated
  98. stack []*nodeIteratorState // Hierarchy of trie nodes persisting the iteration state
  99. path []byte // Path to the current node
  100. err error // Failure set in case of an internal error in the iterator
  101. }
  102. // errIteratorEnd is stored in nodeIterator.err when iteration is done.
  103. var errIteratorEnd = errors.New("end of iteration")
  104. // seekError is stored in nodeIterator.err if the initial seek has failed.
  105. type seekError struct {
  106. key []byte
  107. err error
  108. }
  109. func (e seekError) Error() string {
  110. return "seek error: " + e.err.Error()
  111. }
  112. func newNodeIterator(trie *Trie, start []byte) NodeIterator {
  113. if trie.Hash() == emptyState {
  114. return new(nodeIterator)
  115. }
  116. it := &nodeIterator{trie: trie}
  117. it.err = it.seek(start)
  118. return it
  119. }
  120. func (it *nodeIterator) Hash() common.Hash {
  121. if len(it.stack) == 0 {
  122. return common.Hash{}
  123. }
  124. return it.stack[len(it.stack)-1].hash
  125. }
  126. func (it *nodeIterator) Parent() common.Hash {
  127. if len(it.stack) == 0 {
  128. return common.Hash{}
  129. }
  130. return it.stack[len(it.stack)-1].parent
  131. }
  132. func (it *nodeIterator) Leaf() bool {
  133. return hasTerm(it.path)
  134. }
  135. func (it *nodeIterator) LeafKey() []byte {
  136. if len(it.stack) > 0 {
  137. if _, ok := it.stack[len(it.stack)-1].node.(valueNode); ok {
  138. return hexToKeybytes(it.path)
  139. }
  140. }
  141. panic("not at leaf")
  142. }
  143. func (it *nodeIterator) LeafBlob() []byte {
  144. if len(it.stack) > 0 {
  145. if node, ok := it.stack[len(it.stack)-1].node.(valueNode); ok {
  146. return []byte(node)
  147. }
  148. }
  149. panic("not at leaf")
  150. }
  151. func (it *nodeIterator) LeafProof() [][]byte {
  152. if len(it.stack) > 0 {
  153. if _, ok := it.stack[len(it.stack)-1].node.(valueNode); ok {
  154. hasher := newHasher(nil)
  155. defer returnHasherToPool(hasher)
  156. proofs := make([][]byte, 0, len(it.stack))
  157. for i, item := range it.stack[:len(it.stack)-1] {
  158. // Gather nodes that end up as hash nodes (or the root)
  159. node, _, _ := hasher.hashChildren(item.node, nil)
  160. hashed, _ := hasher.store(node, nil, false)
  161. if _, ok := hashed.(hashNode); ok || i == 0 {
  162. enc, _ := rlp.EncodeToBytes(node)
  163. proofs = append(proofs, enc)
  164. }
  165. }
  166. return proofs
  167. }
  168. }
  169. panic("not at leaf")
  170. }
  171. func (it *nodeIterator) Path() []byte {
  172. return it.path
  173. }
  174. func (it *nodeIterator) Error() error {
  175. if it.err == errIteratorEnd {
  176. return nil
  177. }
  178. if seek, ok := it.err.(seekError); ok {
  179. return seek.err
  180. }
  181. return it.err
  182. }
  183. // Next moves the iterator to the next node, returning whether there are any
  184. // further nodes. In case of an internal error this method returns false and
  185. // sets the Error field to the encountered failure. If `descend` is false,
  186. // skips iterating over any subnodes of the current node.
  187. func (it *nodeIterator) Next(descend bool) bool {
  188. if it.err == errIteratorEnd {
  189. return false
  190. }
  191. if seek, ok := it.err.(seekError); ok {
  192. if it.err = it.seek(seek.key); it.err != nil {
  193. return false
  194. }
  195. }
  196. // Otherwise step forward with the iterator and report any errors.
  197. state, parentIndex, path, err := it.peek(descend)
  198. it.err = err
  199. if it.err != nil {
  200. return false
  201. }
  202. it.push(state, parentIndex, path)
  203. return true
  204. }
  205. func (it *nodeIterator) seek(prefix []byte) error {
  206. // The path we're looking for is the hex encoded key without terminator.
  207. key := keybytesToHex(prefix)
  208. key = key[:len(key)-1]
  209. // Move forward until we're just before the closest match to key.
  210. for {
  211. state, parentIndex, path, err := it.peek(bytes.HasPrefix(key, it.path))
  212. if err == errIteratorEnd {
  213. return errIteratorEnd
  214. } else if err != nil {
  215. return seekError{prefix, err}
  216. } else if bytes.Compare(path, key) >= 0 {
  217. return nil
  218. }
  219. it.push(state, parentIndex, path)
  220. }
  221. }
  222. // peek creates the next state of the iterator.
  223. func (it *nodeIterator) peek(descend bool) (*nodeIteratorState, *int, []byte, error) {
  224. if len(it.stack) == 0 {
  225. // Initialize the iterator if we've just started.
  226. root := it.trie.Hash()
  227. state := &nodeIteratorState{node: it.trie.root, index: -1}
  228. if root != emptyRoot {
  229. state.hash = root
  230. }
  231. err := state.resolve(it.trie, nil)
  232. return state, nil, nil, err
  233. }
  234. if !descend {
  235. // If we're skipping children, pop the current node first
  236. it.pop()
  237. }
  238. // Continue iteration to the next child
  239. for len(it.stack) > 0 {
  240. parent := it.stack[len(it.stack)-1]
  241. ancestor := parent.hash
  242. if (ancestor == common.Hash{}) {
  243. ancestor = parent.parent
  244. }
  245. state, path, ok := it.nextChild(parent, ancestor)
  246. if ok {
  247. if err := state.resolve(it.trie, path); err != nil {
  248. return parent, &parent.index, path, err
  249. }
  250. return state, &parent.index, path, nil
  251. }
  252. // No more child nodes, move back up.
  253. it.pop()
  254. }
  255. return nil, nil, nil, errIteratorEnd
  256. }
  257. func (st *nodeIteratorState) resolve(tr *Trie, path []byte) error {
  258. if hash, ok := st.node.(hashNode); ok {
  259. resolved, err := tr.resolveHash(hash, path)
  260. if err != nil {
  261. return err
  262. }
  263. st.node = resolved
  264. st.hash = common.BytesToHash(hash)
  265. }
  266. return nil
  267. }
  268. func (it *nodeIterator) nextChild(parent *nodeIteratorState, ancestor common.Hash) (*nodeIteratorState, []byte, bool) {
  269. switch node := parent.node.(type) {
  270. case *fullNode:
  271. // Full node, move to the first non-nil child.
  272. for i := parent.index + 1; i < len(node.Children); i++ {
  273. child := node.Children[i]
  274. if child != nil {
  275. hash, _ := child.cache()
  276. state := &nodeIteratorState{
  277. hash: common.BytesToHash(hash),
  278. node: child,
  279. parent: ancestor,
  280. index: -1,
  281. pathlen: len(it.path),
  282. }
  283. path := append(it.path, byte(i))
  284. parent.index = i - 1
  285. return state, path, true
  286. }
  287. }
  288. case *shortNode:
  289. // Short node, return the pointer singleton child
  290. if parent.index < 0 {
  291. hash, _ := node.Val.cache()
  292. state := &nodeIteratorState{
  293. hash: common.BytesToHash(hash),
  294. node: node.Val,
  295. parent: ancestor,
  296. index: -1,
  297. pathlen: len(it.path),
  298. }
  299. path := append(it.path, node.Key...)
  300. return state, path, true
  301. }
  302. }
  303. return parent, it.path, false
  304. }
  305. func (it *nodeIterator) push(state *nodeIteratorState, parentIndex *int, path []byte) {
  306. it.path = path
  307. it.stack = append(it.stack, state)
  308. if parentIndex != nil {
  309. *parentIndex++
  310. }
  311. }
  312. func (it *nodeIterator) pop() {
  313. parent := it.stack[len(it.stack)-1]
  314. it.path = it.path[:parent.pathlen]
  315. it.stack = it.stack[:len(it.stack)-1]
  316. }
  317. func compareNodes(a, b NodeIterator) int {
  318. if cmp := bytes.Compare(a.Path(), b.Path()); cmp != 0 {
  319. return cmp
  320. }
  321. if a.Leaf() && !b.Leaf() {
  322. return -1
  323. } else if b.Leaf() && !a.Leaf() {
  324. return 1
  325. }
  326. if cmp := bytes.Compare(a.Hash().Bytes(), b.Hash().Bytes()); cmp != 0 {
  327. return cmp
  328. }
  329. if a.Leaf() && b.Leaf() {
  330. return bytes.Compare(a.LeafBlob(), b.LeafBlob())
  331. }
  332. return 0
  333. }
  334. type differenceIterator struct {
  335. a, b NodeIterator // Nodes returned are those in b - a.
  336. eof bool // Indicates a has run out of elements
  337. count int // Number of nodes scanned on either trie
  338. }
  339. // NewDifferenceIterator constructs a NodeIterator that iterates over elements in b that
  340. // are not in a. Returns the iterator, and a pointer to an integer recording the number
  341. // of nodes seen.
  342. func NewDifferenceIterator(a, b NodeIterator) (NodeIterator, *int) {
  343. a.Next(true)
  344. it := &differenceIterator{
  345. a: a,
  346. b: b,
  347. }
  348. return it, &it.count
  349. }
  350. func (it *differenceIterator) Hash() common.Hash {
  351. return it.b.Hash()
  352. }
  353. func (it *differenceIterator) Parent() common.Hash {
  354. return it.b.Parent()
  355. }
  356. func (it *differenceIterator) Leaf() bool {
  357. return it.b.Leaf()
  358. }
  359. func (it *differenceIterator) LeafKey() []byte {
  360. return it.b.LeafKey()
  361. }
  362. func (it *differenceIterator) LeafBlob() []byte {
  363. return it.b.LeafBlob()
  364. }
  365. func (it *differenceIterator) LeafProof() [][]byte {
  366. return it.b.LeafProof()
  367. }
  368. func (it *differenceIterator) Path() []byte {
  369. return it.b.Path()
  370. }
  371. func (it *differenceIterator) Next(bool) bool {
  372. // Invariants:
  373. // - We always advance at least one element in b.
  374. // - At the start of this function, a's path is lexically greater than b's.
  375. if !it.b.Next(true) {
  376. return false
  377. }
  378. it.count++
  379. if it.eof {
  380. // a has reached eof, so we just return all elements from b
  381. return true
  382. }
  383. for {
  384. switch compareNodes(it.a, it.b) {
  385. case -1:
  386. // b jumped past a; advance a
  387. if !it.a.Next(true) {
  388. it.eof = true
  389. return true
  390. }
  391. it.count++
  392. case 1:
  393. // b is before a
  394. return true
  395. case 0:
  396. // a and b are identical; skip this whole subtree if the nodes have hashes
  397. hasHash := it.a.Hash() == common.Hash{}
  398. if !it.b.Next(hasHash) {
  399. return false
  400. }
  401. it.count++
  402. if !it.a.Next(hasHash) {
  403. it.eof = true
  404. return true
  405. }
  406. it.count++
  407. }
  408. }
  409. }
  410. func (it *differenceIterator) Error() error {
  411. if err := it.a.Error(); err != nil {
  412. return err
  413. }
  414. return it.b.Error()
  415. }
  416. type nodeIteratorHeap []NodeIterator
  417. func (h nodeIteratorHeap) Len() int { return len(h) }
  418. func (h nodeIteratorHeap) Less(i, j int) bool { return compareNodes(h[i], h[j]) < 0 }
  419. func (h nodeIteratorHeap) Swap(i, j int) { h[i], h[j] = h[j], h[i] }
  420. func (h *nodeIteratorHeap) Push(x interface{}) { *h = append(*h, x.(NodeIterator)) }
  421. func (h *nodeIteratorHeap) Pop() interface{} {
  422. n := len(*h)
  423. x := (*h)[n-1]
  424. *h = (*h)[0 : n-1]
  425. return x
  426. }
  427. type unionIterator struct {
  428. items *nodeIteratorHeap // Nodes returned are the union of the ones in these iterators
  429. count int // Number of nodes scanned across all tries
  430. }
  431. // NewUnionIterator constructs a NodeIterator that iterates over elements in the union
  432. // of the provided NodeIterators. Returns the iterator, and a pointer to an integer
  433. // recording the number of nodes visited.
  434. func NewUnionIterator(iters []NodeIterator) (NodeIterator, *int) {
  435. h := make(nodeIteratorHeap, len(iters))
  436. copy(h, iters)
  437. heap.Init(&h)
  438. ui := &unionIterator{items: &h}
  439. return ui, &ui.count
  440. }
  441. func (it *unionIterator) Hash() common.Hash {
  442. return (*it.items)[0].Hash()
  443. }
  444. func (it *unionIterator) Parent() common.Hash {
  445. return (*it.items)[0].Parent()
  446. }
  447. func (it *unionIterator) Leaf() bool {
  448. return (*it.items)[0].Leaf()
  449. }
  450. func (it *unionIterator) LeafKey() []byte {
  451. return (*it.items)[0].LeafKey()
  452. }
  453. func (it *unionIterator) LeafBlob() []byte {
  454. return (*it.items)[0].LeafBlob()
  455. }
  456. func (it *unionIterator) LeafProof() [][]byte {
  457. return (*it.items)[0].LeafProof()
  458. }
  459. func (it *unionIterator) Path() []byte {
  460. return (*it.items)[0].Path()
  461. }
  462. // Next returns the next node in the union of tries being iterated over.
  463. //
  464. // It does this by maintaining a heap of iterators, sorted by the iteration
  465. // order of their next elements, with one entry for each source trie. Each
  466. // time Next() is called, it takes the least element from the heap to return,
  467. // advancing any other iterators that also point to that same element. These
  468. // iterators are called with descend=false, since we know that any nodes under
  469. // these nodes will also be duplicates, found in the currently selected iterator.
  470. // Whenever an iterator is advanced, it is pushed back into the heap if it still
  471. // has elements remaining.
  472. //
  473. // In the case that descend=false - eg, we're asked to ignore all subnodes of the
  474. // current node - we also advance any iterators in the heap that have the current
  475. // path as a prefix.
  476. func (it *unionIterator) Next(descend bool) bool {
  477. if len(*it.items) == 0 {
  478. return false
  479. }
  480. // Get the next key from the union
  481. least := heap.Pop(it.items).(NodeIterator)
  482. // Skip over other nodes as long as they're identical, or, if we're not descending, as
  483. // long as they have the same prefix as the current node.
  484. for len(*it.items) > 0 && ((!descend && bytes.HasPrefix((*it.items)[0].Path(), least.Path())) || compareNodes(least, (*it.items)[0]) == 0) {
  485. skipped := heap.Pop(it.items).(NodeIterator)
  486. // Skip the whole subtree if the nodes have hashes; otherwise just skip this node
  487. if skipped.Next(skipped.Hash() == common.Hash{}) {
  488. it.count++
  489. // If there are more elements, push the iterator back on the heap
  490. heap.Push(it.items, skipped)
  491. }
  492. }
  493. if least.Next(descend) {
  494. it.count++
  495. heap.Push(it.items, least)
  496. }
  497. return len(*it.items) > 0
  498. }
  499. func (it *unionIterator) Error() error {
  500. for i := 0; i < len(*it.items); i++ {
  501. if err := (*it.items)[i].Error(); err != nil {
  502. return err
  503. }
  504. }
  505. return nil
  506. }