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471 lines (433 loc) · 10.5 KB
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// Copyright 2025 The Go Authors. All rights reserved.
// Use of this source code is governed by a BSD-style
// license that can be found in the LICENSE file.
package mpt
import (
"bytes"
"encoding/binary"
"fmt"
)
// hash returns the hash for the given tree node.
// pbit is the parent bit depth, controlling whether n is viewed as a leaf.
func (n *diskNode) hash(t *diskTree, pbit int) (Hash, error) {
if n.bit() <= pbit {
key, val, err := n.keyVal(t)
if err != nil {
return Hash{}, err
}
return hashLeaf(key, val), nil
}
return n.ihash(), nil
}
var lazyHash = false
// unhash marks n's hash invalid or recomputes it,
// depending on the [lazyHash] setting.
func (n *diskNode) unhash(t *diskTree, pbit int) error {
if !lazyHash {
_, err := n.rehash(t, pbit, true)
return err
}
if n.dirty() {
return nil
}
return n.setDirty(t, true)
}
// rehash updates n.hash if needed and then returns it.
func (n *diskNode) rehash(t *diskTree, pbit int, force bool) (Hash, error) {
nbit := n.bit()
if nbit <= pbit {
return n.hash(t, pbit)
}
if n.dirty() || force {
left, err := t.node(n.left())
if err != nil {
return Hash{}, err
}
lhash, err := left.rehash(t, nbit, false)
if err != nil {
return Hash{}, err
}
right, err := t.node(n.right())
if err != nil {
return Hash{}, err
}
rhash, err := right.rehash(t, nbit, false)
if err != nil {
return Hash{}, err
}
if err := n.setIHash(t, hashInner(nbit, lhash, rhash)); err != nil {
return Hash{}, err
}
if err := n.setDirty(t, false); err != nil {
return Hash{}, err
}
}
return n.ihash(), nil
}
// Snap returns a snapshot of t.
func (t *diskTree) Snap(version int64) (Snapshot, error) {
t.mmu.RLock()
defer t.mmu.RUnlock()
if err := t.snap(version); err != nil {
return Snapshot{}, err
}
_ = t.check // t.check()
return Snapshot{t.hdr().version(), t.hdr().hash()}, nil
}
func (t *diskTree) snap(version int64) error {
if t.err != nil {
return t.err
}
if t.hdr().dirty() {
// Note: Not using a mutation group because we might be
// updating arbitrarily many hashes during rehash.
// Without group, ordering matters: write hash before dirty
// and both before version.
//
// Also note: dirty implies that tree is non-empty, so there is a root.
root, err := t.node(t.hdr().root())
if err != nil {
return err
}
hash, err := root.rehash(t, -1, false)
if err != nil {
return err
}
if err := t.hdr().setHash(t, hash); err != nil {
return err
}
if err := t.hdr().setDirty(t, false); err != nil {
return err
}
}
if version >= 0 {
if err := t.hdr().setVersion(t, version); err != nil {
return err
}
}
return nil
}
// Version returns version information about the tree.
func (t *diskTree) Version() (version int64, exact bool) {
t.mmu.RLock()
defer t.mmu.RUnlock()
hdr := t.hdr()
return hdr.version(), hdr.exact()
}
// PersistedVersion returns the latest version number that has been
// completely written and synced to disk.
func (t *diskTree) PersistedVersion() int64 {
t.mmu.RLock()
defer t.mmu.RUnlock()
return t.persistedVersion
}
// Set sets the value associated with key to val.
func (t *diskTree) Set(key Key, val Val) error {
t.mmu.RLock()
defer t.mmu.RUnlock()
if t.err != nil {
return t.err
}
if t.hdr().exact() {
// Clear exact and flush to disk (in the memory files)
// before we make any writes to the disk leaf file,
// so that we know the disk leaf file may be ahead of the memory file.
if err := t.hdr().setExact(t, false); err != nil {
return err
}
if err := t.pmem.Sync(); err != nil {
return err
}
}
// Keep all writes for this Set in the same group.
// We write one node and the dirty field for log N nodes,
// so it fits easily in the mutation group limit.
t.pmem.BeginGroup()
defer t.pmem.EndGroup()
if !t.hdr().dirty() {
if err := t.hdr().setDirty(t, true); err != nil {
return err
}
}
if t.hdr().root() == 0 {
n, err := t.newNode()
if err != nil {
return err
}
n.init(t, key, val, 0, nil, nil)
if err := t.hdr().setRoot(t, n); err != nil {
return err
}
} else {
b, err := t.setChild(-1, hdrRoot, key, val)
if err != nil {
return err
}
if b >= 0 {
panic("bad add")
}
root, err := t.node(t.hdr().root())
if err != nil {
return err
}
if err := root.unhash(t, -1); err != nil {
return err
}
}
_ = t.check // t.check()
return nil
}
func (n *diskNode) set(t *diskTree, pbit int, key Key, val Val) (int, error) {
nbit := n.bit()
if nbit <= pbit {
// view n as leaf
nkey, err := n.key(t)
if err != nil {
return 0, err
}
b := nkey.overlap(key)
if b == maxKeyBits {
if err := n.setVal(t, val); err != nil {
return 0, err
}
return -1, nil
}
// Caller must create a node splitting at bit b.
return b, nil
}
ptr := t.addr(n) + nodeLeft
if nbit >= 0 && key.bit(nbit) != 0 {
ptr = t.addr(n) + nodeRight
}
b, err := t.setChild(nbit, ptr, key, val)
if err != nil {
return 0, err
}
if b < 0 {
if err := n.unhash(t, pbit); err != nil {
return 0, err
}
}
return b, nil
}
func (t *diskTree) setChild(nbit int, childp addr, key Key, val Val) (int, error) {
child, err := t.node(t.addrAt(childp))
if err != nil {
return 0, err
}
b, err := child.set(t, nbit, key, val)
if err != nil {
return 0, err
}
if nbit < b {
n, err := t.newNode()
if err != nil {
return 0, err
}
var left, right *diskNode
if key.bit(b) == 0 {
left, right = n, child
} else {
left, right = child, n
}
n.init(t, key, val, b, left, right)
if err := t.setAddrAt(childp, t.addr(n)); err != nil {
return 0, err
}
b = -1
}
return b, nil
}
// Predict returns the hash of the tree that would result from
// applying the given changes (sorted by key) to the tree,
// without modifying the tree.
func (t *diskTree) Predict(changes []KeyVal) (Hash, error) {
t.mmu.RLock()
defer t.mmu.RUnlock()
if t.err != nil {
return Hash{}, t.err
}
if t.hdr().dirty() {
return Hash{}, ErrModifiedTree
}
if err := checkChanges(changes); err != nil {
return Hash{}, err
}
s, list, err := t.predict([]node{}, t.hdr().root(), -1, changes)
if err != nil {
return Hash{}, err
}
for _, kv := range list {
s = reduce(append(s, node{prefix(kv.Key, maxKeyBits), hashLeaf(kv.Key, kv.Val)}))
}
return hashStack(s), nil
}
// predict calculates the edited tree hash for the subtree at address a.
func (t *diskTree) predict(s []node, a addr, pbit int, list []KeyVal) ([]node, []KeyVal, error) {
if a == 0 {
return s, list, nil
}
n, err := t.node(a)
if err != nil {
return nil, nil, err
}
key, val, err := n.keyVal(t)
if err != nil {
return nil, nil, err
}
nbit := n.bit()
bits := nbit
if nbit <= pbit {
bits = maxKeyBits
}
pkey := prefix(key, bits)
// Stack modifications before node.
for len(list) > 0 && prefix(list[0].Key, bits).compare(pkey) < 0 {
k, v := list[0].Key, list[0].Val
list = list[1:]
s = reduce(append(s, node{prefix(k, maxKeyBits), hashLeaf(k, v)}))
}
// Stack leaf node, possibly replaced.
if bits == maxKeyBits {
if len(list) > 0 && bytes.Equal(list[0].Key, key) {
val = list[0].Val
list = list[1:]
}
s = reduce(append(s, node{pkey, hashLeaf(key, val)}))
return s, list, nil
}
// Stack entire subtree, if no modifications inside it.
if len(list) == 0 || pkey.compare(prefix(list[0].Key, bits)) < 0 {
h, err := n.hash(t, pbit)
if err != nil {
return nil, nil, err
}
s = reduce(append(s, node{pkey, h}))
return s, list, nil
}
// Otherwise, apply modifications within subtree.
s, list, err = t.predict(s, n.left(), nbit, list)
if err != nil {
return nil, nil, err
}
s, list, err = t.predict(s, n.right(), nbit, list)
if err != nil {
return nil, nil, err
}
return s, list, nil
}
// Prove returns a proof of the presence or absence of key in t.
func (t *diskTree) Prove(key Key) (val Val, ok bool, proof Proof, err error) {
t.mmu.RLock()
defer t.mmu.RUnlock()
if t.err != nil {
return Val{}, false, nil, t.err
}
if t.hdr().dirty() {
return Val{}, false, nil, ErrModifiedTree
}
root, err := t.node(t.hdr().root())
if err != nil {
return Val{}, false, nil, err
}
if root == nil {
return Val{}, false, Proof{}, nil
}
return root.prove(t, -1, key)
}
func (n *diskNode) prove(t *diskTree, pbit int, key Key) (val Val, ok bool, proof Proof, err error) {
nbit := n.bit()
if nbit <= pbit {
// view n as leaf
nkey, nval, err := n.keyVal(t)
if err != nil {
return Val{}, false, nil, err
}
if bytes.Equal(nkey, key) {
return nval, true, Proof{}, nil
}
var p Proof
p = binary.AppendUvarint(p, uint64(len(nkey)))
p = append(p, nkey[:]...)
p = binary.AppendUvarint(p, uint64(len(nval)))
p = append(p, nval[:]...)
return Val{}, false, p, nil
}
childAddr, sibAddr := n.left(), n.right()
if key.bit(nbit) == 1 {
childAddr, sibAddr = sibAddr, childAddr
}
child, err := t.node(childAddr)
if err != nil {
return Val{}, false, nil, err
}
sib, err := t.node(sibAddr)
if err != nil {
return Val{}, false, nil, err
}
sibHash, err := sib.hash(t, nbit)
if err != nil {
return Val{}, false, nil, err
}
val, ok, proof, err = child.prove(t, nbit, key)
if err != nil {
return
}
proof = binary.AppendUvarint(proof, uint64(nbit))
proof = append(proof, sibHash[:]...)
return
}
func (t *diskTree) check() {
println("check")
root, err := t.node(t.hdr().root())
if err != nil {
panic(err)
}
if root == nil {
return
}
var sawNil bool
h := root.check(t, 1, -1, &sawNil)
if h != t.hdr().hash() && !t.hdr().dirty() {
fmt.Printf("have %v want %v\n", t.hdr().hash(), h)
panic("bad hash")
}
if !sawNil {
panic("lost nil")
}
println("check OK")
}
func (n *diskNode) check(t *diskTree, depth, pbit int, sawNil *bool) Hash {
if n.bit() == -1 {
if *sawNil {
panic("multiple nils")
}
*sawNil = true
}
if n.bit() <= pbit {
// view as leaf
nkey, nval, err := n.keyVal(t)
if err != nil {
panic(err)
}
fmt.Printf("%*sleaf(%d) %#x %v %v %#x %#x %v dirty=%v\n", depth*2, "", n.bit(), t.addr(n), nkey, nval, n.left(), n.right(), hashLeaf(nkey, nval), n.dirty())
return hashLeaf(nkey, nval)
}
fmt.Printf("%*s%d %#x %#x %#x %v dirty=%v\n", depth*2, "", n.bit(), t.addr(n), n.left(), n.right(), n.ihash(), n.dirty())
left, err := t.node(n.left())
if err != nil {
panic(err)
}
right, err := t.node(n.right())
if err != nil {
panic(err)
}
h := hashInner(n.bit(),
left.check(t, depth+1, n.bit(), sawNil),
right.check(t, depth+1, n.bit(), sawNil))
if h != n.ihash() && !n.dirty() {
fmt.Printf("%*shave %v want %v\n", depth*2, "", n.ihash(), h)
panic("bad hash")
}
return h
}