| 
									
										
										
										
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										 |  |  | // Copyright 2015 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/>. | 
					
						
							|  |  |  | 
 | 
					
						
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										 |  |  | package trie | 
					
						
							|  |  |  | 
 | 
					
						
							|  |  |  | import ( | 
					
						
							|  |  |  | 	"bytes" | 
					
						
							| 
									
										
										
										
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										 |  |  | 	"errors" | 
					
						
							| 
									
										
										
										
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										 |  |  | 	"fmt" | 
					
						
							|  |  |  | 
 | 
					
						
							|  |  |  | 	"github.com/ethereum/go-ethereum/common" | 
					
						
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										 |  |  | 	"github.com/ethereum/go-ethereum/ethdb" | 
					
						
							| 
									
										
										
										
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										 |  |  | 	"github.com/ethereum/go-ethereum/ethdb/memorydb" | 
					
						
							| 
									
										
										
										
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										 |  |  | 	"github.com/ethereum/go-ethereum/log" | 
					
						
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										 |  |  | 	"github.com/ethereum/go-ethereum/rlp" | 
					
						
							|  |  |  | ) | 
					
						
							|  |  |  | 
 | 
					
						
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										 |  |  | // Prove constructs a merkle proof for key. The result contains all encoded nodes | 
					
						
							|  |  |  | // on the path to the value at key. The value itself is also included in the last | 
					
						
							|  |  |  | // node and can be retrieved by verifying the proof. | 
					
						
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										 |  |  | // | 
					
						
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										 |  |  | // If the trie does not contain a value for key, the returned proof contains all | 
					
						
							|  |  |  | // nodes of the longest existing prefix of the key (at least the root node), ending | 
					
						
							|  |  |  | // with the node that proves the absence of the key. | 
					
						
							| 
									
										
										
											
												all: integrate the freezer with fast sync
* all: freezer style syncing
core, eth, les, light: clean up freezer relative APIs
core, eth, les, trie, ethdb, light: clean a bit
core, eth, les, light: add unit tests
core, light: rewrite setHead function
core, eth: fix downloader unit tests
core: add receipt chain insertion test
core: use constant instead of hardcoding table name
core: fix rollback
core: fix setHead
core/rawdb: remove canonical block first and then iterate side chain
core/rawdb, ethdb: add hasAncient interface
eth/downloader: calculate ancient limit via cht first
core, eth, ethdb: lots of fixes
* eth/downloader: print ancient disable log only for fast sync
											
										 
											2019-04-25 22:59:48 +08:00
										 |  |  | func (t *Trie) Prove(key []byte, fromLevel uint, proofDb ethdb.KeyValueWriter) error { | 
					
						
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										 |  |  | 	// Collect all nodes on the path to key. | 
					
						
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										 |  |  | 	key = keybytesToHex(key) | 
					
						
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										 |  |  | 	var nodes []node | 
					
						
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										 |  |  | 	tn := t.root | 
					
						
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										 |  |  | 	for len(key) > 0 && tn != nil { | 
					
						
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										 |  |  | 		switch n := tn.(type) { | 
					
						
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										 |  |  | 		case *shortNode: | 
					
						
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										 |  |  | 			if len(key) < len(n.Key) || !bytes.Equal(n.Key, key[:len(n.Key)]) { | 
					
						
							|  |  |  | 				// The trie doesn't contain the key. | 
					
						
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										 |  |  | 				tn = nil | 
					
						
							|  |  |  | 			} else { | 
					
						
							|  |  |  | 				tn = n.Val | 
					
						
							|  |  |  | 				key = key[len(n.Key):] | 
					
						
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										 |  |  | 			} | 
					
						
							|  |  |  | 			nodes = append(nodes, n) | 
					
						
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										 |  |  | 		case *fullNode: | 
					
						
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										 |  |  | 			tn = n.Children[key[0]] | 
					
						
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										 |  |  | 			key = key[1:] | 
					
						
							|  |  |  | 			nodes = append(nodes, n) | 
					
						
							|  |  |  | 		case hashNode: | 
					
						
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										 |  |  | 			var err error | 
					
						
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										 |  |  | 			tn, err = t.resolveHash(n, nil) | 
					
						
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										 |  |  | 			if err != nil { | 
					
						
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										 |  |  | 				log.Error(fmt.Sprintf("Unhandled trie error: %v", err)) | 
					
						
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										 |  |  | 				return err | 
					
						
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										 |  |  | 			} | 
					
						
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										 |  |  | 		default: | 
					
						
							|  |  |  | 			panic(fmt.Sprintf("%T: invalid node: %v", tn, tn)) | 
					
						
							|  |  |  | 		} | 
					
						
							|  |  |  | 	} | 
					
						
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										 |  |  | 	hasher := newHasher(false) | 
					
						
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										 |  |  | 	defer returnHasherToPool(hasher) | 
					
						
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										 |  |  | 
 | 
					
						
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										 |  |  | 	for i, n := range nodes { | 
					
						
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										 |  |  | 		if fromLevel > 0 { | 
					
						
							|  |  |  | 			fromLevel-- | 
					
						
							|  |  |  | 			continue | 
					
						
							|  |  |  | 		} | 
					
						
							|  |  |  | 		var hn node | 
					
						
							|  |  |  | 		n, hn = hasher.proofHash(n) | 
					
						
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										 |  |  | 		if hash, ok := hn.(hashNode); ok || i == 0 { | 
					
						
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										 |  |  | 			// If the node's database encoding is a hash (or is the | 
					
						
							|  |  |  | 			// root node), it becomes a proof element. | 
					
						
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										 |  |  | 			enc, _ := rlp.EncodeToBytes(n) | 
					
						
							|  |  |  | 			if !ok { | 
					
						
							|  |  |  | 				hash = hasher.hashData(enc) | 
					
						
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										 |  |  | 			} | 
					
						
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										 |  |  | 			proofDb.Put(hash, enc) | 
					
						
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										 |  |  | 		} | 
					
						
							|  |  |  | 	} | 
					
						
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										 |  |  | 	return nil | 
					
						
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										 |  |  | } | 
					
						
							|  |  |  | 
 | 
					
						
							| 
									
										
										
										
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										 |  |  | // Prove constructs a merkle proof for key. The result contains all encoded nodes | 
					
						
							|  |  |  | // on the path to the value at key. The value itself is also included in the last | 
					
						
							|  |  |  | // node and can be retrieved by verifying the proof. | 
					
						
							|  |  |  | // | 
					
						
							|  |  |  | // If the trie does not contain a value for key, the returned proof contains all | 
					
						
							|  |  |  | // nodes of the longest existing prefix of the key (at least the root node), ending | 
					
						
							|  |  |  | // with the node that proves the absence of the key. | 
					
						
							| 
									
										
										
											
												all: integrate the freezer with fast sync
* all: freezer style syncing
core, eth, les, light: clean up freezer relative APIs
core, eth, les, trie, ethdb, light: clean a bit
core, eth, les, light: add unit tests
core, light: rewrite setHead function
core, eth: fix downloader unit tests
core: add receipt chain insertion test
core: use constant instead of hardcoding table name
core: fix rollback
core: fix setHead
core/rawdb: remove canonical block first and then iterate side chain
core/rawdb, ethdb: add hasAncient interface
eth/downloader: calculate ancient limit via cht first
core, eth, ethdb: lots of fixes
* eth/downloader: print ancient disable log only for fast sync
											
										 
											2019-04-25 22:59:48 +08:00
										 |  |  | func (t *SecureTrie) Prove(key []byte, fromLevel uint, proofDb ethdb.KeyValueWriter) error { | 
					
						
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										 |  |  | 	return t.trie.Prove(key, fromLevel, proofDb) | 
					
						
							|  |  |  | } | 
					
						
							|  |  |  | 
 | 
					
						
							|  |  |  | // VerifyProof checks merkle proofs. The given proof must contain the value for | 
					
						
							|  |  |  | // key in a trie with the given root hash. VerifyProof returns an error if the | 
					
						
							|  |  |  | // proof contains invalid trie nodes or the wrong value. | 
					
						
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										 |  |  | func VerifyProof(rootHash common.Hash, key []byte, proofDb ethdb.KeyValueReader) (value []byte, err error) { | 
					
						
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										 |  |  | 	key = keybytesToHex(key) | 
					
						
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										 |  |  | 	wantHash := rootHash | 
					
						
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										 |  |  | 	for i := 0; ; i++ { | 
					
						
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										 |  |  | 		buf, _ := proofDb.Get(wantHash[:]) | 
					
						
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										 |  |  | 		if buf == nil { | 
					
						
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										 |  |  | 			return nil, fmt.Errorf("proof node %d (hash %064x) missing", i, wantHash) | 
					
						
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										 |  |  | 		} | 
					
						
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										 |  |  | 		n, err := decodeNode(wantHash[:], buf) | 
					
						
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										 |  |  | 		if err != nil { | 
					
						
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										 |  |  | 			return nil, fmt.Errorf("bad proof node %d: %v", i, err) | 
					
						
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										 |  |  | 		} | 
					
						
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										 |  |  | 		keyrest, cld := get(n, key, true) | 
					
						
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										 |  |  | 		switch cld := cld.(type) { | 
					
						
							|  |  |  | 		case nil: | 
					
						
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										 |  |  | 			// The trie doesn't contain the key. | 
					
						
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										 |  |  | 			return nil, nil | 
					
						
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										 |  |  | 		case hashNode: | 
					
						
							|  |  |  | 			key = keyrest | 
					
						
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										 |  |  | 			copy(wantHash[:], cld) | 
					
						
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										 |  |  | 		case valueNode: | 
					
						
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										 |  |  | 			return cld, nil | 
					
						
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										 |  |  | 		} | 
					
						
							|  |  |  | 	} | 
					
						
							|  |  |  | } | 
					
						
							|  |  |  | 
 | 
					
						
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										 |  |  | // proofToPath converts a merkle proof to trie node path. The main purpose of | 
					
						
							|  |  |  | // this function is recovering a node path from the merkle proof stream. All | 
					
						
							|  |  |  | // necessary nodes will be resolved and leave the remaining as hashnode. | 
					
						
							|  |  |  | // | 
					
						
							|  |  |  | // The given edge proof is allowed to be an existent or non-existent proof. | 
					
						
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										 |  |  | func proofToPath(rootHash common.Hash, root node, key []byte, proofDb ethdb.KeyValueReader, allowNonExistent bool) (node, []byte, error) { | 
					
						
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										 |  |  | 	// resolveNode retrieves and resolves trie node from merkle proof stream | 
					
						
							|  |  |  | 	resolveNode := func(hash common.Hash) (node, error) { | 
					
						
							|  |  |  | 		buf, _ := proofDb.Get(hash[:]) | 
					
						
							|  |  |  | 		if buf == nil { | 
					
						
							|  |  |  | 			return nil, fmt.Errorf("proof node (hash %064x) missing", hash) | 
					
						
							|  |  |  | 		} | 
					
						
							|  |  |  | 		n, err := decodeNode(hash[:], buf) | 
					
						
							|  |  |  | 		if err != nil { | 
					
						
							|  |  |  | 			return nil, fmt.Errorf("bad proof node %v", err) | 
					
						
							|  |  |  | 		} | 
					
						
							|  |  |  | 		return n, err | 
					
						
							|  |  |  | 	} | 
					
						
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										 |  |  | 	// If the root node is empty, resolve it first. | 
					
						
							|  |  |  | 	// Root node must be included in the proof. | 
					
						
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										 |  |  | 	if root == nil { | 
					
						
							|  |  |  | 		n, err := resolveNode(rootHash) | 
					
						
							|  |  |  | 		if err != nil { | 
					
						
							| 
									
										
										
										
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										 |  |  | 			return nil, nil, err | 
					
						
							| 
									
										
										
										
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										 |  |  | 		} | 
					
						
							|  |  |  | 		root = n | 
					
						
							|  |  |  | 	} | 
					
						
							|  |  |  | 	var ( | 
					
						
							|  |  |  | 		err           error | 
					
						
							|  |  |  | 		child, parent node | 
					
						
							|  |  |  | 		keyrest       []byte | 
					
						
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										 |  |  | 		valnode       []byte | 
					
						
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										 |  |  | 	) | 
					
						
							|  |  |  | 	key, parent = keybytesToHex(key), root | 
					
						
							|  |  |  | 	for { | 
					
						
							|  |  |  | 		keyrest, child = get(parent, key, false) | 
					
						
							|  |  |  | 		switch cld := child.(type) { | 
					
						
							|  |  |  | 		case nil: | 
					
						
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											2020-05-20 20:45:38 +08:00
										 |  |  | 			// The trie doesn't contain the key. It's possible | 
					
						
							|  |  |  | 			// the proof is a non-existing proof, but at least | 
					
						
							|  |  |  | 			// we can prove all resolved nodes are correct, it's | 
					
						
							|  |  |  | 			// enough for us to prove range. | 
					
						
							|  |  |  | 			if allowNonExistent { | 
					
						
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										 |  |  | 				return root, nil, nil | 
					
						
							| 
									
										
										
										
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										 |  |  | 			} | 
					
						
							| 
									
										
										
										
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										 |  |  | 			return nil, nil, errors.New("the node is not contained in trie") | 
					
						
							| 
									
										
										
										
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										 |  |  | 		case *shortNode: | 
					
						
							|  |  |  | 			key, parent = keyrest, child // Already resolved | 
					
						
							|  |  |  | 			continue | 
					
						
							|  |  |  | 		case *fullNode: | 
					
						
							|  |  |  | 			key, parent = keyrest, child // Already resolved | 
					
						
							|  |  |  | 			continue | 
					
						
							|  |  |  | 		case hashNode: | 
					
						
							|  |  |  | 			child, err = resolveNode(common.BytesToHash(cld)) | 
					
						
							|  |  |  | 			if err != nil { | 
					
						
							| 
									
										
										
										
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										 |  |  | 				return nil, nil, err | 
					
						
							| 
									
										
										
										
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										 |  |  | 			} | 
					
						
							|  |  |  | 		case valueNode: | 
					
						
							| 
									
										
										
										
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										 |  |  | 			valnode = cld | 
					
						
							| 
									
										
										
										
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										 |  |  | 		} | 
					
						
							|  |  |  | 		// Link the parent and child. | 
					
						
							|  |  |  | 		switch pnode := parent.(type) { | 
					
						
							|  |  |  | 		case *shortNode: | 
					
						
							|  |  |  | 			pnode.Val = child | 
					
						
							|  |  |  | 		case *fullNode: | 
					
						
							|  |  |  | 			pnode.Children[key[0]] = child | 
					
						
							|  |  |  | 		default: | 
					
						
							|  |  |  | 			panic(fmt.Sprintf("%T: invalid node: %v", pnode, pnode)) | 
					
						
							|  |  |  | 		} | 
					
						
							| 
									
										
										
										
											2020-05-27 22:37:37 +08:00
										 |  |  | 		if len(valnode) > 0 { | 
					
						
							|  |  |  | 			return root, valnode, nil // The whole path is resolved | 
					
						
							| 
									
										
										
										
											2020-04-24 19:37:56 +08:00
										 |  |  | 		} | 
					
						
							|  |  |  | 		key, parent = keyrest, child | 
					
						
							|  |  |  | 	} | 
					
						
							|  |  |  | } | 
					
						
							|  |  |  | 
 | 
					
						
							|  |  |  | // unsetInternal removes all internal node references(hashnode, embedded node). | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | // It should be called after a trie is constructed with two edge paths. Also | 
					
						
							|  |  |  | // the given boundary keys must be the one used to construct the edge paths. | 
					
						
							| 
									
										
										
										
											2020-04-24 19:37:56 +08:00
										 |  |  | // | 
					
						
							|  |  |  | // It's the key step for range proof. All visited nodes should be marked dirty | 
					
						
							|  |  |  | // since the node content might be modified. Besides it can happen that some | 
					
						
							|  |  |  | // fullnodes only have one child which is disallowed. But if the proof is valid, | 
					
						
							|  |  |  | // the missing children will be filled, otherwise it will be thrown anyway. | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | // | 
					
						
							|  |  |  | // Note we have the assumption here the given boundary keys are different | 
					
						
							|  |  |  | // and right is larger than left. | 
					
						
							| 
									
										
										
										
											2021-01-22 17:11:24 +08:00
										 |  |  | func unsetInternal(n node, left []byte, right []byte) (bool, error) { | 
					
						
							| 
									
										
										
										
											2020-04-24 19:37:56 +08:00
										 |  |  | 	left, right = keybytesToHex(left), keybytesToHex(right) | 
					
						
							|  |  |  | 
 | 
					
						
							| 
									
										
										
										
											2020-05-26 18:11:29 +08:00
										 |  |  | 	// Step down to the fork point. There are two scenarios can happen: | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | 	// - the fork point is a shortnode: either the key of left proof or | 
					
						
							|  |  |  | 	//   right proof doesn't match with shortnode's key. | 
					
						
							|  |  |  | 	// - the fork point is a fullnode: both two edge proofs are allowed | 
					
						
							|  |  |  | 	//   to point to a non-existent key. | 
					
						
							| 
									
										
										
										
											2020-05-26 18:11:29 +08:00
										 |  |  | 	var ( | 
					
						
							|  |  |  | 		pos    = 0 | 
					
						
							|  |  |  | 		parent node | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | 
 | 
					
						
							|  |  |  | 		// fork indicator, 0 means no fork, -1 means proof is less, 1 means proof is greater | 
					
						
							|  |  |  | 		shortForkLeft, shortForkRight int | 
					
						
							| 
									
										
										
										
											2020-05-26 18:11:29 +08:00
										 |  |  | 	) | 
					
						
							|  |  |  | findFork: | 
					
						
							| 
									
										
										
										
											2020-04-24 19:37:56 +08:00
										 |  |  | 	for { | 
					
						
							| 
									
										
										
										
											2020-05-20 20:45:38 +08:00
										 |  |  | 		switch rn := (n).(type) { | 
					
						
							| 
									
										
										
										
											2020-04-24 19:37:56 +08:00
										 |  |  | 		case *shortNode: | 
					
						
							| 
									
										
										
										
											2020-05-26 18:11:29 +08:00
										 |  |  | 			rn.flags = nodeFlag{dirty: true} | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | 
 | 
					
						
							|  |  |  | 			// If either the key of left proof or right proof doesn't match with | 
					
						
							|  |  |  | 			// shortnode, stop here and the forkpoint is the shortnode. | 
					
						
							|  |  |  | 			if len(left)-pos < len(rn.Key) { | 
					
						
							|  |  |  | 				shortForkLeft = bytes.Compare(left[pos:], rn.Key) | 
					
						
							|  |  |  | 			} else { | 
					
						
							|  |  |  | 				shortForkLeft = bytes.Compare(left[pos:pos+len(rn.Key)], rn.Key) | 
					
						
							|  |  |  | 			} | 
					
						
							|  |  |  | 			if len(right)-pos < len(rn.Key) { | 
					
						
							|  |  |  | 				shortForkRight = bytes.Compare(right[pos:], rn.Key) | 
					
						
							|  |  |  | 			} else { | 
					
						
							|  |  |  | 				shortForkRight = bytes.Compare(right[pos:pos+len(rn.Key)], rn.Key) | 
					
						
							|  |  |  | 			} | 
					
						
							|  |  |  | 			if shortForkLeft != 0 || shortForkRight != 0 { | 
					
						
							| 
									
										
										
										
											2020-05-26 18:11:29 +08:00
										 |  |  | 				break findFork | 
					
						
							| 
									
										
										
										
											2020-05-20 20:45:38 +08:00
										 |  |  | 			} | 
					
						
							|  |  |  | 			parent = n | 
					
						
							|  |  |  | 			n, pos = rn.Val, pos+len(rn.Key) | 
					
						
							| 
									
										
										
										
											2020-04-24 19:37:56 +08:00
										 |  |  | 		case *fullNode: | 
					
						
							| 
									
										
										
										
											2020-05-20 20:45:38 +08:00
										 |  |  | 			rn.flags = nodeFlag{dirty: true} | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | 
 | 
					
						
							|  |  |  | 			// If either the node pointed by left proof or right proof is nil, | 
					
						
							|  |  |  | 			// stop here and the forkpoint is the fullnode. | 
					
						
							|  |  |  | 			leftnode, rightnode := rn.Children[left[pos]], rn.Children[right[pos]] | 
					
						
							|  |  |  | 			if leftnode == nil || rightnode == nil || leftnode != rightnode { | 
					
						
							| 
									
										
										
										
											2020-05-26 18:11:29 +08:00
										 |  |  | 				break findFork | 
					
						
							|  |  |  | 			} | 
					
						
							| 
									
										
										
										
											2020-05-20 20:45:38 +08:00
										 |  |  | 			parent = n | 
					
						
							| 
									
										
										
										
											2020-05-26 18:11:29 +08:00
										 |  |  | 			n, pos = rn.Children[left[pos]], pos+1 | 
					
						
							| 
									
										
										
										
											2020-04-24 19:37:56 +08:00
										 |  |  | 		default: | 
					
						
							| 
									
										
										
										
											2020-05-20 20:45:38 +08:00
										 |  |  | 			panic(fmt.Sprintf("%T: invalid node: %v", n, n)) | 
					
						
							| 
									
										
										
										
											2020-04-24 19:37:56 +08:00
										 |  |  | 		} | 
					
						
							|  |  |  | 	} | 
					
						
							| 
									
										
										
										
											2020-05-26 18:11:29 +08:00
										 |  |  | 	switch rn := n.(type) { | 
					
						
							|  |  |  | 	case *shortNode: | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | 		// There can have these five scenarios: | 
					
						
							|  |  |  | 		// - both proofs are less than the trie path => no valid range | 
					
						
							|  |  |  | 		// - both proofs are greater than the trie path => no valid range | 
					
						
							|  |  |  | 		// - left proof is less and right proof is greater => valid range, unset the shortnode entirely | 
					
						
							|  |  |  | 		// - left proof points to the shortnode, but right proof is greater | 
					
						
							|  |  |  | 		// - right proof points to the shortnode, but left proof is less | 
					
						
							|  |  |  | 		if shortForkLeft == -1 && shortForkRight == -1 { | 
					
						
							| 
									
										
										
										
											2021-01-22 17:11:24 +08:00
										 |  |  | 			return false, errors.New("empty range") | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | 		} | 
					
						
							|  |  |  | 		if shortForkLeft == 1 && shortForkRight == 1 { | 
					
						
							| 
									
										
										
										
											2021-01-22 17:11:24 +08:00
										 |  |  | 			return false, errors.New("empty range") | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | 		} | 
					
						
							|  |  |  | 		if shortForkLeft != 0 && shortForkRight != 0 { | 
					
						
							| 
									
										
										
										
											2021-01-22 17:11:24 +08:00
										 |  |  | 			// The fork point is root node, unset the entire trie | 
					
						
							|  |  |  | 			if parent == nil { | 
					
						
							|  |  |  | 				return true, nil | 
					
						
							|  |  |  | 			} | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | 			parent.(*fullNode).Children[left[pos-1]] = nil | 
					
						
							| 
									
										
										
										
											2021-01-22 17:11:24 +08:00
										 |  |  | 			return false, nil | 
					
						
							| 
									
										
										
										
											2020-05-26 18:11:29 +08:00
										 |  |  | 		} | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | 		// Only one proof points to non-existent key. | 
					
						
							|  |  |  | 		if shortForkRight != 0 { | 
					
						
							|  |  |  | 			if _, ok := rn.Val.(valueNode); ok { | 
					
						
							| 
									
										
										
										
											2021-01-22 17:11:24 +08:00
										 |  |  | 				// The fork point is root node, unset the entire trie | 
					
						
							|  |  |  | 				if parent == nil { | 
					
						
							|  |  |  | 					return true, nil | 
					
						
							|  |  |  | 				} | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | 				parent.(*fullNode).Children[left[pos-1]] = nil | 
					
						
							| 
									
										
										
										
											2021-01-22 17:11:24 +08:00
										 |  |  | 				return false, nil | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | 			} | 
					
						
							| 
									
										
										
										
											2021-01-22 17:11:24 +08:00
										 |  |  | 			return false, unset(rn, rn.Val, left[pos:], len(rn.Key), false) | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | 		} | 
					
						
							|  |  |  | 		if shortForkLeft != 0 { | 
					
						
							|  |  |  | 			if _, ok := rn.Val.(valueNode); ok { | 
					
						
							| 
									
										
										
										
											2021-01-22 17:11:24 +08:00
										 |  |  | 				// The fork point is root node, unset the entire trie | 
					
						
							|  |  |  | 				if parent == nil { | 
					
						
							|  |  |  | 					return true, nil | 
					
						
							|  |  |  | 				} | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | 				parent.(*fullNode).Children[right[pos-1]] = nil | 
					
						
							| 
									
										
										
										
											2021-01-22 17:11:24 +08:00
										 |  |  | 				return false, nil | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | 			} | 
					
						
							| 
									
										
										
										
											2021-01-22 17:11:24 +08:00
										 |  |  | 			return false, unset(rn, rn.Val, right[pos:], len(rn.Key), true) | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | 		} | 
					
						
							| 
									
										
										
										
											2021-01-22 17:11:24 +08:00
										 |  |  | 		return false, nil | 
					
						
							| 
									
										
										
										
											2020-05-26 18:11:29 +08:00
										 |  |  | 	case *fullNode: | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | 		// unset all internal nodes in the forkpoint | 
					
						
							| 
									
										
										
										
											2020-05-26 18:11:29 +08:00
										 |  |  | 		for i := left[pos] + 1; i < right[pos]; i++ { | 
					
						
							|  |  |  | 			rn.Children[i] = nil | 
					
						
							|  |  |  | 		} | 
					
						
							|  |  |  | 		if err := unset(rn, rn.Children[left[pos]], left[pos:], 1, false); err != nil { | 
					
						
							| 
									
										
										
										
											2021-01-22 17:11:24 +08:00
										 |  |  | 			return false, err | 
					
						
							| 
									
										
										
										
											2020-05-26 18:11:29 +08:00
										 |  |  | 		} | 
					
						
							|  |  |  | 		if err := unset(rn, rn.Children[right[pos]], right[pos:], 1, true); err != nil { | 
					
						
							| 
									
										
										
										
											2021-01-22 17:11:24 +08:00
										 |  |  | 			return false, err | 
					
						
							| 
									
										
										
										
											2020-05-26 18:11:29 +08:00
										 |  |  | 		} | 
					
						
							| 
									
										
										
										
											2021-01-22 17:11:24 +08:00
										 |  |  | 		return false, nil | 
					
						
							| 
									
										
										
										
											2020-05-26 18:11:29 +08:00
										 |  |  | 	default: | 
					
						
							|  |  |  | 		panic(fmt.Sprintf("%T: invalid node: %v", n, n)) | 
					
						
							| 
									
										
										
										
											2020-05-20 20:45:38 +08:00
										 |  |  | 	} | 
					
						
							| 
									
										
										
										
											2020-04-24 19:37:56 +08:00
										 |  |  | } | 
					
						
							|  |  |  | 
 | 
					
						
							|  |  |  | // unset removes all internal node references either the left most or right most. | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | // It can meet these scenarios: | 
					
						
							| 
									
										
										
										
											2020-05-20 20:45:38 +08:00
										 |  |  | // | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | // - The given path is existent in the trie, unset the associated nodes with the | 
					
						
							|  |  |  | //   specific direction | 
					
						
							| 
									
										
										
										
											2020-05-20 20:45:38 +08:00
										 |  |  | // - The given path is non-existent in the trie | 
					
						
							|  |  |  | //   - the fork point is a fullnode, the corresponding child pointed by path | 
					
						
							|  |  |  | //     is nil, return | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | //   - the fork point is a shortnode, the shortnode is included in the range, | 
					
						
							| 
									
										
										
										
											2020-05-20 20:45:38 +08:00
										 |  |  | //     keep the entire branch and return. | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | //   - the fork point is a shortnode, the shortnode is excluded in the range, | 
					
						
							| 
									
										
										
										
											2020-05-20 20:45:38 +08:00
										 |  |  | //     unset the entire branch. | 
					
						
							|  |  |  | func unset(parent node, child node, key []byte, pos int, removeLeft bool) error { | 
					
						
							|  |  |  | 	switch cld := child.(type) { | 
					
						
							| 
									
										
										
										
											2020-04-24 19:37:56 +08:00
										 |  |  | 	case *fullNode: | 
					
						
							|  |  |  | 		if removeLeft { | 
					
						
							| 
									
										
										
										
											2020-05-20 20:45:38 +08:00
										 |  |  | 			for i := 0; i < int(key[pos]); i++ { | 
					
						
							|  |  |  | 				cld.Children[i] = nil | 
					
						
							| 
									
										
										
										
											2020-04-24 19:37:56 +08:00
										 |  |  | 			} | 
					
						
							| 
									
										
										
										
											2020-05-20 20:45:38 +08:00
										 |  |  | 			cld.flags = nodeFlag{dirty: true} | 
					
						
							| 
									
										
										
										
											2020-04-24 19:37:56 +08:00
										 |  |  | 		} else { | 
					
						
							| 
									
										
										
										
											2020-05-20 20:45:38 +08:00
										 |  |  | 			for i := key[pos] + 1; i < 16; i++ { | 
					
						
							|  |  |  | 				cld.Children[i] = nil | 
					
						
							| 
									
										
										
										
											2020-04-24 19:37:56 +08:00
										 |  |  | 			} | 
					
						
							| 
									
										
										
										
											2020-05-20 20:45:38 +08:00
										 |  |  | 			cld.flags = nodeFlag{dirty: true} | 
					
						
							| 
									
										
										
										
											2020-04-24 19:37:56 +08:00
										 |  |  | 		} | 
					
						
							| 
									
										
										
										
											2020-05-20 20:45:38 +08:00
										 |  |  | 		return unset(cld, cld.Children[key[pos]], key, pos+1, removeLeft) | 
					
						
							| 
									
										
										
										
											2020-04-24 19:37:56 +08:00
										 |  |  | 	case *shortNode: | 
					
						
							| 
									
										
										
										
											2020-05-20 20:45:38 +08:00
										 |  |  | 		if len(key[pos:]) < len(cld.Key) || !bytes.Equal(cld.Key, key[pos:pos+len(cld.Key)]) { | 
					
						
							|  |  |  | 			// Find the fork point, it's an non-existent branch. | 
					
						
							|  |  |  | 			if removeLeft { | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | 				if bytes.Compare(cld.Key, key[pos:]) < 0 { | 
					
						
							|  |  |  | 					// The key of fork shortnode is less than the path | 
					
						
							|  |  |  | 					// (it belongs to the range), unset the entrie | 
					
						
							|  |  |  | 					// branch. The parent must be a fullnode. | 
					
						
							|  |  |  | 					fn := parent.(*fullNode) | 
					
						
							|  |  |  | 					fn.Children[key[pos-1]] = nil | 
					
						
							|  |  |  | 				} else { | 
					
						
							|  |  |  | 					// The key of fork shortnode is greater than the | 
					
						
							|  |  |  | 					// path(it doesn't belong to the range), keep | 
					
						
							|  |  |  | 					// it with the cached hash available. | 
					
						
							|  |  |  | 				} | 
					
						
							| 
									
										
										
										
											2020-05-20 20:45:38 +08:00
										 |  |  | 			} else { | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | 				if bytes.Compare(cld.Key, key[pos:]) > 0 { | 
					
						
							|  |  |  | 					// The key of fork shortnode is greater than the | 
					
						
							|  |  |  | 					// path(it belongs to the range), unset the entrie | 
					
						
							|  |  |  | 					// branch. The parent must be a fullnode. | 
					
						
							|  |  |  | 					fn := parent.(*fullNode) | 
					
						
							|  |  |  | 					fn.Children[key[pos-1]] = nil | 
					
						
							|  |  |  | 				} else { | 
					
						
							|  |  |  | 					// The key of fork shortnode is less than the | 
					
						
							|  |  |  | 					// path(it doesn't belong to the range), keep | 
					
						
							|  |  |  | 					// it with the cached hash available. | 
					
						
							|  |  |  | 				} | 
					
						
							| 
									
										
										
										
											2020-05-20 20:45:38 +08:00
										 |  |  | 			} | 
					
						
							| 
									
										
										
										
											2020-05-26 18:11:29 +08:00
										 |  |  | 			return nil | 
					
						
							| 
									
										
										
										
											2020-05-20 20:45:38 +08:00
										 |  |  | 		} | 
					
						
							|  |  |  | 		if _, ok := cld.Val.(valueNode); ok { | 
					
						
							|  |  |  | 			fn := parent.(*fullNode) | 
					
						
							|  |  |  | 			fn.Children[key[pos-1]] = nil | 
					
						
							|  |  |  | 			return nil | 
					
						
							| 
									
										
										
										
											2020-04-24 19:37:56 +08:00
										 |  |  | 		} | 
					
						
							| 
									
										
										
										
											2020-05-20 20:45:38 +08:00
										 |  |  | 		cld.flags = nodeFlag{dirty: true} | 
					
						
							|  |  |  | 		return unset(cld, cld.Val, key, pos+len(cld.Key), removeLeft) | 
					
						
							|  |  |  | 	case nil: | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | 		// If the node is nil, then it's a child of the fork point | 
					
						
							|  |  |  | 		// fullnode(it's a non-existent branch). | 
					
						
							| 
									
										
										
										
											2020-05-20 20:45:38 +08:00
										 |  |  | 		return nil | 
					
						
							|  |  |  | 	default: | 
					
						
							|  |  |  | 		panic("it shouldn't happen") // hashNode, valueNode | 
					
						
							| 
									
										
										
										
											2020-04-24 19:37:56 +08:00
										 |  |  | 	} | 
					
						
							|  |  |  | } | 
					
						
							|  |  |  | 
 | 
					
						
							| 
									
										
										
										
											2020-05-27 22:37:37 +08:00
										 |  |  | // hasRightElement returns the indicator whether there exists more elements | 
					
						
							|  |  |  | // in the right side of the given path. The given path can point to an existent | 
					
						
							|  |  |  | // key or a non-existent one. This function has the assumption that the whole | 
					
						
							|  |  |  | // path should already be resolved. | 
					
						
							|  |  |  | func hasRightElement(node node, key []byte) bool { | 
					
						
							|  |  |  | 	pos, key := 0, keybytesToHex(key) | 
					
						
							|  |  |  | 	for node != nil { | 
					
						
							|  |  |  | 		switch rn := node.(type) { | 
					
						
							|  |  |  | 		case *fullNode: | 
					
						
							|  |  |  | 			for i := key[pos] + 1; i < 16; i++ { | 
					
						
							|  |  |  | 				if rn.Children[i] != nil { | 
					
						
							|  |  |  | 					return true | 
					
						
							|  |  |  | 				} | 
					
						
							|  |  |  | 			} | 
					
						
							|  |  |  | 			node, pos = rn.Children[key[pos]], pos+1 | 
					
						
							|  |  |  | 		case *shortNode: | 
					
						
							|  |  |  | 			if len(key)-pos < len(rn.Key) || !bytes.Equal(rn.Key, key[pos:pos+len(rn.Key)]) { | 
					
						
							|  |  |  | 				return bytes.Compare(rn.Key, key[pos:]) > 0 | 
					
						
							|  |  |  | 			} | 
					
						
							|  |  |  | 			node, pos = rn.Val, pos+len(rn.Key) | 
					
						
							|  |  |  | 		case valueNode: | 
					
						
							|  |  |  | 			return false // We have resolved the whole path | 
					
						
							|  |  |  | 		default: | 
					
						
							|  |  |  | 			panic(fmt.Sprintf("%T: invalid node: %v", node, node)) // hashnode | 
					
						
							|  |  |  | 		} | 
					
						
							|  |  |  | 	} | 
					
						
							|  |  |  | 	return false | 
					
						
							|  |  |  | } | 
					
						
							|  |  |  | 
 | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | // VerifyRangeProof checks whether the given leaf nodes and edge proof | 
					
						
							|  |  |  | // can prove the given trie leaves range is matched with the specific root. | 
					
						
							| 
									
										
										
										
											2020-12-14 11:27:15 +02:00
										 |  |  | // Besides, the range should be consecutive (no gap inside) and monotonic | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | // increasing. | 
					
						
							| 
									
										
										
										
											2020-05-20 20:45:38 +08:00
										 |  |  | // | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | // Note the given proof actually contains two edge proofs. Both of them can | 
					
						
							|  |  |  | // be non-existent proofs. For example the first proof is for a non-existent | 
					
						
							|  |  |  | // key 0x03, the last proof is for a non-existent key 0x10. The given batch | 
					
						
							|  |  |  | // leaves are [0x04, 0x05, .. 0x09]. It's still feasible to prove the given | 
					
						
							|  |  |  | // batch is valid. | 
					
						
							| 
									
										
										
										
											2020-05-20 20:45:38 +08:00
										 |  |  | // | 
					
						
							|  |  |  | // The firstKey is paired with firstProof, not necessarily the same as keys[0] | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | // (unless firstProof is an existent proof). Similarly, lastKey and lastProof | 
					
						
							|  |  |  | // are paired. | 
					
						
							| 
									
										
										
										
											2020-05-20 20:45:38 +08:00
										 |  |  | // | 
					
						
							|  |  |  | // Expect the normal case, this function can also be used to verify the following | 
					
						
							| 
									
										
										
										
											2020-09-23 16:03:21 +08:00
										 |  |  | // range proofs: | 
					
						
							| 
									
										
										
										
											2020-05-20 20:45:38 +08:00
										 |  |  | // | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | // - All elements proof. In this case the proof can be nil, but the range should | 
					
						
							|  |  |  | //   be all the leaves in the trie. | 
					
						
							| 
									
										
										
										
											2020-05-20 20:45:38 +08:00
										 |  |  | // | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | // - One element proof. In this case no matter the edge proof is a non-existent | 
					
						
							| 
									
										
										
										
											2020-05-20 20:45:38 +08:00
										 |  |  | //   proof or not, we can always verify the correctness of the proof. | 
					
						
							| 
									
										
										
										
											2020-05-27 22:37:37 +08:00
										 |  |  | // | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | // - Zero element proof. In this case a single non-existent proof is enough to prove. | 
					
						
							|  |  |  | //   Besides, if there are still some other leaves available on the right side, then | 
					
						
							| 
									
										
										
										
											2020-09-23 16:03:21 +08:00
										 |  |  | //   an error will be returned. | 
					
						
							|  |  |  | // | 
					
						
							| 
									
										
										
										
											2020-05-27 22:37:37 +08:00
										 |  |  | // Except returning the error to indicate the proof is valid or not, the function will | 
					
						
							|  |  |  | // also return a flag to indicate whether there exists more accounts/slots in the trie. | 
					
						
							| 
									
										
										
										
											2021-04-28 23:09:15 +03:00
										 |  |  | // | 
					
						
							|  |  |  | // Note: This method does not verify that the proof is of minimal form. If the input | 
					
						
							|  |  |  | // proofs are 'bloated' with neighbour leaves or random data, aside from the 'useful' | 
					
						
							|  |  |  | // data, then the proof will still be accepted. | 
					
						
							|  |  |  | func VerifyRangeProof(rootHash common.Hash, firstKey []byte, lastKey []byte, keys [][]byte, values [][]byte, proof ethdb.KeyValueReader) (bool, error) { | 
					
						
							| 
									
										
										
										
											2020-04-24 19:37:56 +08:00
										 |  |  | 	if len(keys) != len(values) { | 
					
						
							| 
									
										
										
										
											2021-04-28 23:09:15 +03:00
										 |  |  | 		return false, fmt.Errorf("inconsistent proof data, keys: %d, values: %d", len(keys), len(values)) | 
					
						
							| 
									
										
										
										
											2020-05-27 22:37:37 +08:00
										 |  |  | 	} | 
					
						
							|  |  |  | 	// Ensure the received batch is monotonic increasing. | 
					
						
							|  |  |  | 	for i := 0; i < len(keys)-1; i++ { | 
					
						
							|  |  |  | 		if bytes.Compare(keys[i], keys[i+1]) >= 0 { | 
					
						
							| 
									
										
										
										
											2021-04-28 23:09:15 +03:00
										 |  |  | 			return false, errors.New("range is not monotonically increasing") | 
					
						
							| 
									
										
										
										
											2020-05-27 22:37:37 +08:00
										 |  |  | 		} | 
					
						
							| 
									
										
										
										
											2020-04-24 19:37:56 +08:00
										 |  |  | 	} | 
					
						
							| 
									
										
										
										
											2020-05-20 20:45:38 +08:00
										 |  |  | 	// Special case, there is no edge proof at all. The given range is expected | 
					
						
							|  |  |  | 	// to be the whole leaf-set in the trie. | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | 	if proof == nil { | 
					
						
							| 
									
										
										
										
											2021-04-28 23:09:15 +03:00
										 |  |  | 		tr := NewStackTrie(nil) | 
					
						
							| 
									
										
										
										
											2020-05-20 20:45:38 +08:00
										 |  |  | 		for index, key := range keys { | 
					
						
							| 
									
										
										
										
											2020-12-14 11:27:15 +02:00
										 |  |  | 			tr.TryUpdate(key, values[index]) | 
					
						
							|  |  |  | 		} | 
					
						
							| 
									
										
										
										
											2021-04-28 21:47:48 +02:00
										 |  |  | 		if have, want := tr.Hash(), rootHash; have != want { | 
					
						
							| 
									
										
										
										
											2021-04-28 23:09:15 +03:00
										 |  |  | 			return false, fmt.Errorf("invalid proof, want hash %x, got %x", want, have) | 
					
						
							| 
									
										
										
										
											2020-05-20 20:45:38 +08:00
										 |  |  | 		} | 
					
						
							| 
									
										
										
										
											2021-04-28 23:09:15 +03:00
										 |  |  | 		return false, nil // No more elements | 
					
						
							| 
									
										
										
										
											2020-04-24 19:37:56 +08:00
										 |  |  | 	} | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | 	// Special case, there is a provided edge proof but zero key/value | 
					
						
							| 
									
										
										
										
											2020-09-23 16:03:21 +08:00
										 |  |  | 	// pairs, ensure there are no more accounts / slots in the trie. | 
					
						
							|  |  |  | 	if len(keys) == 0 { | 
					
						
							| 
									
										
										
										
											2021-04-28 23:09:15 +03:00
										 |  |  | 		root, val, err := proofToPath(rootHash, nil, firstKey, proof, true) | 
					
						
							| 
									
										
										
										
											2020-09-23 16:03:21 +08:00
										 |  |  | 		if err != nil { | 
					
						
							| 
									
										
										
										
											2021-04-28 23:09:15 +03:00
										 |  |  | 			return false, err | 
					
						
							| 
									
										
										
										
											2020-09-23 16:03:21 +08:00
										 |  |  | 		} | 
					
						
							|  |  |  | 		if val != nil || hasRightElement(root, firstKey) { | 
					
						
							| 
									
										
										
										
											2021-04-28 23:09:15 +03:00
										 |  |  | 			return false, errors.New("more entries available") | 
					
						
							| 
									
										
										
										
											2020-09-23 16:03:21 +08:00
										 |  |  | 		} | 
					
						
							| 
									
										
										
										
											2021-04-28 23:09:15 +03:00
										 |  |  | 		return hasRightElement(root, firstKey), nil | 
					
						
							| 
									
										
										
										
											2020-09-23 16:03:21 +08:00
										 |  |  | 	} | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | 	// Special case, there is only one element and two edge keys are same. | 
					
						
							|  |  |  | 	// In this case, we can't construct two edge paths. So handle it here. | 
					
						
							|  |  |  | 	if len(keys) == 1 && bytes.Equal(firstKey, lastKey) { | 
					
						
							| 
									
										
										
										
											2021-04-28 23:09:15 +03:00
										 |  |  | 		root, val, err := proofToPath(rootHash, nil, firstKey, proof, false) | 
					
						
							| 
									
										
										
										
											2020-04-24 19:37:56 +08:00
										 |  |  | 		if err != nil { | 
					
						
							| 
									
										
										
										
											2021-04-28 23:09:15 +03:00
										 |  |  | 			return false, err | 
					
						
							| 
									
										
										
										
											2020-04-24 19:37:56 +08:00
										 |  |  | 		} | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | 		if !bytes.Equal(firstKey, keys[0]) { | 
					
						
							| 
									
										
										
										
											2021-04-28 23:09:15 +03:00
										 |  |  | 			return false, errors.New("correct proof but invalid key") | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | 		} | 
					
						
							| 
									
										
										
										
											2020-05-27 22:37:37 +08:00
										 |  |  | 		if !bytes.Equal(val, values[0]) { | 
					
						
							| 
									
										
										
										
											2021-04-28 23:09:15 +03:00
										 |  |  | 			return false, errors.New("correct proof but invalid data") | 
					
						
							| 
									
										
										
										
											2020-12-14 11:27:15 +02:00
										 |  |  | 		} | 
					
						
							| 
									
										
										
										
											2021-04-28 23:09:15 +03:00
										 |  |  | 		return hasRightElement(root, firstKey), nil | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | 	} | 
					
						
							|  |  |  | 	// Ok, in all other cases, we require two edge paths available. | 
					
						
							|  |  |  | 	// First check the validity of edge keys. | 
					
						
							|  |  |  | 	if bytes.Compare(firstKey, lastKey) >= 0 { | 
					
						
							| 
									
										
										
										
											2021-04-28 23:09:15 +03:00
										 |  |  | 		return false, errors.New("invalid edge keys") | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | 	} | 
					
						
							|  |  |  | 	// todo(rjl493456442) different length edge keys should be supported | 
					
						
							|  |  |  | 	if len(firstKey) != len(lastKey) { | 
					
						
							| 
									
										
										
										
											2021-04-28 23:09:15 +03:00
										 |  |  | 		return false, errors.New("inconsistent edge keys") | 
					
						
							| 
									
										
										
										
											2020-04-24 19:37:56 +08:00
										 |  |  | 	} | 
					
						
							|  |  |  | 	// Convert the edge proofs to edge trie paths. Then we can | 
					
						
							|  |  |  | 	// have the same tree architecture with the original one. | 
					
						
							| 
									
										
										
										
											2020-05-20 20:45:38 +08:00
										 |  |  | 	// For the first edge proof, non-existent proof is allowed. | 
					
						
							| 
									
										
										
										
											2021-04-28 23:09:15 +03:00
										 |  |  | 	root, _, err := proofToPath(rootHash, nil, firstKey, proof, true) | 
					
						
							| 
									
										
										
										
											2020-04-24 19:37:56 +08:00
										 |  |  | 	if err != nil { | 
					
						
							| 
									
										
										
										
											2021-04-28 23:09:15 +03:00
										 |  |  | 		return false, err | 
					
						
							| 
									
										
										
										
											2020-04-24 19:37:56 +08:00
										 |  |  | 	} | 
					
						
							|  |  |  | 	// Pass the root node here, the second path will be merged | 
					
						
							| 
									
										
										
										
											2020-05-20 20:45:38 +08:00
										 |  |  | 	// with the first one. For the last edge proof, non-existent | 
					
						
							| 
									
										
										
										
											2020-09-23 17:44:09 +08:00
										 |  |  | 	// proof is also allowed. | 
					
						
							| 
									
										
										
										
											2021-04-28 23:09:15 +03:00
										 |  |  | 	root, _, err = proofToPath(rootHash, root, lastKey, proof, true) | 
					
						
							| 
									
										
										
										
											2020-04-24 19:37:56 +08:00
										 |  |  | 	if err != nil { | 
					
						
							| 
									
										
										
										
											2021-04-28 23:09:15 +03:00
										 |  |  | 		return false, err | 
					
						
							| 
									
										
										
										
											2020-04-24 19:37:56 +08:00
										 |  |  | 	} | 
					
						
							|  |  |  | 	// Remove all internal references. All the removed parts should | 
					
						
							|  |  |  | 	// be re-filled(or re-constructed) by the given leaves range. | 
					
						
							| 
									
										
										
										
											2021-01-22 17:11:24 +08:00
										 |  |  | 	empty, err := unsetInternal(root, firstKey, lastKey) | 
					
						
							|  |  |  | 	if err != nil { | 
					
						
							| 
									
										
										
										
											2021-04-28 23:09:15 +03:00
										 |  |  | 		return false, err | 
					
						
							| 
									
										
										
										
											2020-04-24 19:37:56 +08:00
										 |  |  | 	} | 
					
						
							| 
									
										
										
										
											2020-12-14 11:27:15 +02:00
										 |  |  | 	// Rebuild the trie with the leaf stream, the shape of trie | 
					
						
							| 
									
										
										
										
											2020-04-24 19:37:56 +08:00
										 |  |  | 	// should be same with the original one. | 
					
						
							| 
									
										
										
										
											2021-04-28 23:09:15 +03:00
										 |  |  | 	tr := &Trie{root: root, db: NewDatabase(memorydb.New())} | 
					
						
							| 
									
										
										
										
											2021-01-22 17:11:24 +08:00
										 |  |  | 	if empty { | 
					
						
							|  |  |  | 		tr.root = nil | 
					
						
							|  |  |  | 	} | 
					
						
							| 
									
										
										
										
											2020-04-24 19:37:56 +08:00
										 |  |  | 	for index, key := range keys { | 
					
						
							| 
									
										
										
										
											2020-12-14 11:27:15 +02:00
										 |  |  | 		tr.TryUpdate(key, values[index]) | 
					
						
							|  |  |  | 	} | 
					
						
							|  |  |  | 	if tr.Hash() != rootHash { | 
					
						
							| 
									
										
										
										
											2021-04-28 23:09:15 +03:00
										 |  |  | 		return false, fmt.Errorf("invalid proof, want hash %x, got %x", rootHash, tr.Hash()) | 
					
						
							| 
									
										
										
										
											2020-04-24 19:37:56 +08:00
										 |  |  | 	} | 
					
						
							| 
									
										
										
										
											2021-04-28 23:09:15 +03:00
										 |  |  | 	return hasRightElement(root, keys[len(keys)-1]), nil | 
					
						
							| 
									
										
										
										
											2020-04-24 19:37:56 +08:00
										 |  |  | } | 
					
						
							|  |  |  | 
 | 
					
						
							|  |  |  | // get returns the child of the given node. Return nil if the | 
					
						
							|  |  |  | // node with specified key doesn't exist at all. | 
					
						
							|  |  |  | // | 
					
						
							|  |  |  | // There is an additional flag `skipResolved`. If it's set then | 
					
						
							|  |  |  | // all resolved nodes won't be returned. | 
					
						
							|  |  |  | func get(tn node, key []byte, skipResolved bool) ([]byte, node) { | 
					
						
							| 
									
										
										
										
											2017-06-27 15:57:06 +02:00
										 |  |  | 	for { | 
					
						
							| 
									
										
										
										
											2015-09-09 03:35:41 +02:00
										 |  |  | 		switch n := tn.(type) { | 
					
						
							| 
									
										
										
										
											2016-10-14 18:04:33 +02:00
										 |  |  | 		case *shortNode: | 
					
						
							| 
									
										
										
										
											2015-09-09 03:35:41 +02:00
										 |  |  | 			if len(key) < len(n.Key) || !bytes.Equal(n.Key, key[:len(n.Key)]) { | 
					
						
							|  |  |  | 				return nil, nil | 
					
						
							|  |  |  | 			} | 
					
						
							|  |  |  | 			tn = n.Val | 
					
						
							|  |  |  | 			key = key[len(n.Key):] | 
					
						
							| 
									
										
										
										
											2020-04-24 19:37:56 +08:00
										 |  |  | 			if !skipResolved { | 
					
						
							|  |  |  | 				return key, tn | 
					
						
							|  |  |  | 			} | 
					
						
							| 
									
										
										
										
											2016-10-14 18:04:33 +02:00
										 |  |  | 		case *fullNode: | 
					
						
							| 
									
										
										
										
											2016-05-19 13:24:14 +03:00
										 |  |  | 			tn = n.Children[key[0]] | 
					
						
							| 
									
										
										
										
											2015-09-09 03:35:41 +02:00
										 |  |  | 			key = key[1:] | 
					
						
							| 
									
										
										
										
											2020-04-24 19:37:56 +08:00
										 |  |  | 			if !skipResolved { | 
					
						
							|  |  |  | 				return key, tn | 
					
						
							|  |  |  | 			} | 
					
						
							| 
									
										
										
										
											2015-09-09 03:35:41 +02:00
										 |  |  | 		case hashNode: | 
					
						
							|  |  |  | 			return key, n | 
					
						
							|  |  |  | 		case nil: | 
					
						
							|  |  |  | 			return key, nil | 
					
						
							| 
									
										
										
										
											2017-06-27 15:57:06 +02:00
										 |  |  | 		case valueNode: | 
					
						
							|  |  |  | 			return nil, n | 
					
						
							| 
									
										
										
										
											2015-09-09 03:35:41 +02:00
										 |  |  | 		default: | 
					
						
							|  |  |  | 			panic(fmt.Sprintf("%T: invalid node: %v", tn, tn)) | 
					
						
							|  |  |  | 		} | 
					
						
							|  |  |  | 	} | 
					
						
							|  |  |  | } |