mirror of
https://github.com/luxfi/zapdb.git
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239 lines
5.9 KiB
Go
239 lines
5.9 KiB
Go
/*
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* SPDX-FileCopyrightText: © Hypermode Inc. <hello@hypermode.com>
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* SPDX-License-Identifier: Apache-2.0
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*/
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package badger
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import (
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"bytes"
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"fmt"
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"log"
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"math"
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"sync"
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"github.com/dgraph-io/badger/v4/table"
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"github.com/dgraph-io/badger/v4/y"
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)
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type keyRange struct {
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left []byte
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right []byte
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inf bool
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size int64 // size is used for Key splits.
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}
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func (r keyRange) isEmpty() bool {
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return len(r.left) == 0 && len(r.right) == 0 && !r.inf
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}
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var infRange = keyRange{inf: true}
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func (r keyRange) String() string {
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return fmt.Sprintf("[left=%x, right=%x, inf=%v]", r.left, r.right, r.inf)
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}
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func (r keyRange) equals(dst keyRange) bool {
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return bytes.Equal(r.left, dst.left) &&
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bytes.Equal(r.right, dst.right) &&
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r.inf == dst.inf
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}
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func (r *keyRange) extend(kr keyRange) {
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// TODO(ibrahim): Is this needed?
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if kr.isEmpty() {
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return
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}
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if r.isEmpty() {
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*r = kr
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}
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if len(r.left) == 0 || y.CompareKeys(kr.left, r.left) < 0 {
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r.left = kr.left
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}
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if len(r.right) == 0 || y.CompareKeys(kr.right, r.right) > 0 {
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r.right = kr.right
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}
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if kr.inf {
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r.inf = true
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}
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}
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func (r keyRange) overlapsWith(dst keyRange) bool {
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// Empty keyRange always overlaps.
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if r.isEmpty() {
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return true
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}
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// TODO(ibrahim): Do you need this?
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// Empty dst doesn't overlap with anything.
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if dst.isEmpty() {
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return false
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}
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if r.inf || dst.inf {
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return true
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}
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// [dst.left, dst.right] ... [r.left, r.right]
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// If my left is greater than dst right, we have no overlap.
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if y.CompareKeys(r.left, dst.right) > 0 {
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return false
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}
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// [r.left, r.right] ... [dst.left, dst.right]
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// If my right is less than dst left, we have no overlap.
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if y.CompareKeys(r.right, dst.left) < 0 {
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return false
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}
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// We have overlap.
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return true
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}
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// getKeyRange returns the smallest and the biggest in the list of tables.
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// TODO(naman): Write a test for this. The smallest and the biggest should
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// be the smallest of the leftmost table and the biggest of the right most table.
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func getKeyRange(tables ...*table.Table) keyRange {
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if len(tables) == 0 {
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return keyRange{}
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}
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smallest := tables[0].Smallest()
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biggest := tables[0].Biggest()
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for i := 1; i < len(tables); i++ {
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if y.CompareKeys(tables[i].Smallest(), smallest) < 0 {
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smallest = tables[i].Smallest()
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}
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if y.CompareKeys(tables[i].Biggest(), biggest) > 0 {
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biggest = tables[i].Biggest()
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}
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}
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// We pick all the versions of the smallest and the biggest key. Note that version zero would
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// be the rightmost key, considering versions are default sorted in descending order.
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return keyRange{
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left: y.KeyWithTs(y.ParseKey(smallest), math.MaxUint64),
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right: y.KeyWithTs(y.ParseKey(biggest), 0),
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}
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}
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type levelCompactStatus struct {
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ranges []keyRange
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delSize int64
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}
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func (lcs *levelCompactStatus) debug() string {
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var b bytes.Buffer
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for _, r := range lcs.ranges {
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b.WriteString(r.String())
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}
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return b.String()
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}
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func (lcs *levelCompactStatus) overlapsWith(dst keyRange) bool {
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for _, r := range lcs.ranges {
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if r.overlapsWith(dst) {
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return true
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}
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}
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return false
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}
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func (lcs *levelCompactStatus) remove(dst keyRange) bool {
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final := lcs.ranges[:0]
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var found bool
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for _, r := range lcs.ranges {
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if !r.equals(dst) {
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final = append(final, r)
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} else {
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found = true
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}
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}
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lcs.ranges = final
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return found
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}
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type compactStatus struct {
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sync.RWMutex
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levels []*levelCompactStatus
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tables map[uint64]struct{}
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}
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func (cs *compactStatus) overlapsWith(level int, this keyRange) bool {
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cs.RLock()
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defer cs.RUnlock()
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thisLevel := cs.levels[level]
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return thisLevel.overlapsWith(this)
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}
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func (cs *compactStatus) delSize(l int) int64 {
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cs.RLock()
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defer cs.RUnlock()
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return cs.levels[l].delSize
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}
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type thisAndNextLevelRLocked struct{}
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// compareAndAdd will check whether we can run this compactDef. That it doesn't overlap with any
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// other running compaction. If it can be run, it would store this run in the compactStatus state.
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func (cs *compactStatus) compareAndAdd(_ thisAndNextLevelRLocked, cd compactDef) bool {
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cs.Lock()
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defer cs.Unlock()
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tl := cd.thisLevel.level
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y.AssertTruef(tl < len(cs.levels), "Got level %d. Max levels: %d", tl, len(cs.levels))
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thisLevel := cs.levels[cd.thisLevel.level]
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nextLevel := cs.levels[cd.nextLevel.level]
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if thisLevel.overlapsWith(cd.thisRange) {
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return false
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}
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if nextLevel.overlapsWith(cd.nextRange) {
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return false
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}
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// Check whether this level really needs compaction or not. Otherwise, we'll end up
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// running parallel compactions for the same level.
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// Update: We should not be checking size here. Compaction priority already did the size checks.
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// Here we should just be executing the wish of others.
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thisLevel.ranges = append(thisLevel.ranges, cd.thisRange)
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nextLevel.ranges = append(nextLevel.ranges, cd.nextRange)
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thisLevel.delSize += cd.thisSize
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for _, t := range append(cd.top, cd.bot...) {
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cs.tables[t.ID()] = struct{}{}
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}
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return true
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}
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func (cs *compactStatus) delete(cd compactDef) {
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cs.Lock()
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defer cs.Unlock()
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tl := cd.thisLevel.level
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y.AssertTruef(tl < len(cs.levels), "Got level %d. Max levels: %d", tl, len(cs.levels))
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thisLevel := cs.levels[cd.thisLevel.level]
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nextLevel := cs.levels[cd.nextLevel.level]
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thisLevel.delSize -= cd.thisSize
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found := thisLevel.remove(cd.thisRange)
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// The following check makes sense only if we're compacting more than one
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// table. In case of the max level, we might rewrite a single table to
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// remove stale data.
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if cd.thisLevel != cd.nextLevel && !cd.nextRange.isEmpty() {
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found = nextLevel.remove(cd.nextRange) && found
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}
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if !found {
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this := cd.thisRange
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next := cd.nextRange
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fmt.Printf("Looking for: %s in this level %d.\n", this, tl)
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fmt.Printf("This Level:\n%s\n", thisLevel.debug())
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fmt.Println()
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fmt.Printf("Looking for: %s in next level %d.\n", next, cd.nextLevel.level)
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fmt.Printf("Next Level:\n%s\n", nextLevel.debug())
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log.Fatal("keyRange not found")
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}
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for _, t := range append(cd.top, cd.bot...) {
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_, ok := cs.tables[t.ID()]
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y.AssertTrue(ok)
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delete(cs.tables, t.ID())
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}
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}
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