mirror of
https://github.com/ethereum/go-ethereum.git
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270 lines
7 KiB
Go
270 lines
7 KiB
Go
// Copyright 2025 The go-ethereum Authors
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// This file is part of the go-ethereum library.
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//
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// The go-ethereum library is free software: you can redistribute it and/or modify
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// it under the terms of the GNU Lesser General Public License as published by
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// the Free Software Foundation, either version 3 of the License, or
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// (at your option) any later version.
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//
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// The go-ethereum library is distributed in the hope that it will be useful,
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// but WITHOUT ANY WARRANTY; without even the implied warranty of
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// MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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// GNU Lesser General Public License for more details.
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//
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// You should have received a copy of the GNU Lesser General Public License
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// along with the go-ethereum library. If not, see <http://www.gnu.org/licenses/>.
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package bintrie
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import (
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"errors"
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"github.com/ethereum/go-ethereum/common"
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"github.com/ethereum/go-ethereum/trie"
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)
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var errIteratorEnd = errors.New("end of iteration")
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type binaryNodeIteratorState struct {
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Node NodeRef
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Index int
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}
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type binaryNodeIterator struct {
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trie *BinaryTrie
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store *NodeStore
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current NodeRef
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lastErr error
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stack []binaryNodeIteratorState
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}
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func newBinaryNodeIterator(t *BinaryTrie, _ []byte) (trie.NodeIterator, error) {
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if t.Hash() == zero {
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return &binaryNodeIterator{trie: t, store: t.store, lastErr: errIteratorEnd}, nil
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}
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it := &binaryNodeIterator{trie: t, store: t.store, current: t.store.Root()}
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return it, nil
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}
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// Next moves the iterator to the next node.
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func (it *binaryNodeIterator) Next(descend bool) bool {
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if it.lastErr == errIteratorEnd {
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return false
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}
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if len(it.stack) == 0 {
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it.stack = append(it.stack, binaryNodeIteratorState{Node: it.trie.store.Root()})
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it.current = it.trie.store.Root()
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return true
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}
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switch it.current.Kind() {
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case KindInternal:
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node := it.store.getInternal(it.current.Index())
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context := &it.stack[len(it.stack)-1]
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if !descend {
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// Skip children: pop this node and advance parent
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if len(it.stack) == 1 {
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it.lastErr = errIteratorEnd
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return false
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}
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it.stack = it.stack[:len(it.stack)-1]
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it.current = it.stack[len(it.stack)-1].Node
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it.stack[len(it.stack)-1].Index++
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return it.Next(true)
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}
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if context.Index == 0 {
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if !node.left.IsEmpty() {
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it.stack = append(it.stack, binaryNodeIteratorState{Node: node.left})
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it.current = node.left
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return it.Next(descend)
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}
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context.Index++
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}
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if context.Index == 1 {
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if !node.right.IsEmpty() {
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it.stack = append(it.stack, binaryNodeIteratorState{Node: node.right})
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it.current = node.right
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return it.Next(descend)
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}
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context.Index++
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}
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if len(it.stack) == 1 {
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it.lastErr = errIteratorEnd
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return false
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}
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it.stack = it.stack[:len(it.stack)-1]
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it.current = it.stack[len(it.stack)-1].Node
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it.stack[len(it.stack)-1].Index++
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return it.Next(descend)
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case KindStem:
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sn := it.store.getStem(it.current.Index())
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for i := it.stack[len(it.stack)-1].Index; i < 256; i++ {
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if sn.hasValue(byte(i)) {
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it.stack[len(it.stack)-1].Index = i + 1
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return true
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}
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}
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if len(it.stack) == 1 {
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it.lastErr = errIteratorEnd
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return false
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}
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it.stack = it.stack[:len(it.stack)-1]
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it.current = it.stack[len(it.stack)-1].Node
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it.stack[len(it.stack)-1].Index++
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return it.Next(descend)
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case KindHashed:
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if len(it.stack) < 2 {
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it.lastErr = errors.New("cannot resolve hashed root during iteration")
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return false
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}
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hn := it.store.getHashed(it.current.Index())
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data, err := it.trie.nodeResolver(it.Path(), hn.hash)
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if err != nil {
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it.lastErr = err
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return false
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}
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resolved, err := it.store.DeserializeNodeWithHash(data, len(it.stack)-1, hn.hash)
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if err != nil {
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it.lastErr = err
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return false
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}
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// Update the stack and parent with the resolved node
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it.current = resolved
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it.stack[len(it.stack)-1].Node = resolved
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parent := &it.stack[len(it.stack)-2]
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parentNode := it.store.getInternal(parent.Node.Index())
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if parent.Index == 0 {
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parentNode.left = resolved
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} else {
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parentNode.right = resolved
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}
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return it.Next(descend)
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case KindEmpty:
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return false
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default:
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panic("invalid node type")
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}
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}
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// Error returns the error status of the iterator.
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func (it *binaryNodeIterator) Error() error {
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if it.lastErr == errIteratorEnd {
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return nil
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}
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return it.lastErr
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}
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// Hash returns the hash of the current node.
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func (it *binaryNodeIterator) Hash() common.Hash {
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return it.store.ComputeHash(it.current)
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}
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// Parent returns the hash of the parent of the current node.
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func (it *binaryNodeIterator) Parent() common.Hash {
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return it.store.ComputeHash(it.stack[len(it.stack)-1].Node)
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}
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// Path returns the hex-encoded path to the current node.
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func (it *binaryNodeIterator) Path() []byte {
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if it.Leaf() {
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return it.LeafKey()
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}
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var path []byte
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for i, state := range it.stack {
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if i >= len(it.stack)-1 {
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break
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}
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path = append(path, byte(state.Index))
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}
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return path
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}
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// NodeBlob returns the serialized bytes of the current node.
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func (it *binaryNodeIterator) NodeBlob() []byte {
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return it.store.SerializeNode(it.current)
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}
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// Leaf returns true iff the current node is a leaf node.
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func (it *binaryNodeIterator) Leaf() bool {
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if it.current.Kind() != KindStem {
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return false
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}
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if len(it.stack) == 0 {
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return false
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}
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idx := it.stack[len(it.stack)-1].Index
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if idx == 0 || idx > 256 {
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return false
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}
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sn := it.store.getStem(it.current.Index())
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currentValueIndex := idx - 1
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return sn.hasValue(byte(currentValueIndex))
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}
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// LeafKey returns the key of the leaf.
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func (it *binaryNodeIterator) LeafKey() []byte {
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if it.current.Kind() != KindStem {
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panic("Leaf() called on an binary node iterator not at a leaf location")
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}
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sn := it.store.getStem(it.current.Index())
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return sn.Key(it.stack[len(it.stack)-1].Index - 1)
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}
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// LeafBlob returns the content of the leaf.
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func (it *binaryNodeIterator) LeafBlob() []byte {
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if it.current.Kind() != KindStem {
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panic("LeafBlob() called on an binary node iterator not at a leaf location")
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}
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sn := it.store.getStem(it.current.Index())
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return sn.getValue(byte(it.stack[len(it.stack)-1].Index - 1))
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}
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// LeafProof returns the Merkle proof of the leaf.
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func (it *binaryNodeIterator) LeafProof() [][]byte {
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if it.current.Kind() != KindStem {
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panic("LeafProof() called on an binary node iterator not at a leaf location")
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}
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sn := it.store.getStem(it.current.Index())
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proof := make([][]byte, 0, len(it.stack)+StemNodeWidth)
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for i := range it.stack[:len(it.stack)-2] {
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state := it.stack[i]
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internalNode := it.store.getInternal(state.Node.Index())
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if state.Index == 0 {
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rh := it.store.ComputeHash(internalNode.right)
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proof = append(proof, rh.Bytes())
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} else {
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lh := it.store.ComputeHash(internalNode.left)
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proof = append(proof, lh.Bytes())
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}
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}
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// Add the stem and siblings
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proof = append(proof, sn.Stem[:])
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proof = append(proof, sn.allValues()...)
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return proof
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}
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// AddResolver sets an intermediate database to use for looking up trie nodes
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// before reaching into the real persistent layer.
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func (it *binaryNodeIterator) AddResolver(trie.NodeResolver) {
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// Not implemented, but should not panic
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}
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