mirror of
https://github.com/luxfi/zapdb.git
synced 2026-07-27 06:54:45 +00:00
Removed /v4 suffix from module path and all internal imports. Go module is now github.com/luxfi/zapdb (no major version suffix). Import as: import "github.com/luxfi/zapdb" No code changes — only module path and import rewrite.
523 lines
16 KiB
Go
523 lines
16 KiB
Go
/*
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* SPDX-FileCopyrightText: © 2017-2025 Istari Digital, Inc.
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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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"context"
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"sort"
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"sync"
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"sync/atomic"
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"time"
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humanize "github.com/dustin/go-humanize"
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"github.com/luxfi/zapdb/pb"
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"github.com/luxfi/zapdb/y"
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"github.com/dgraph-io/ristretto/v2/z"
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)
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const batchSize = 16 << 20 // 16 MB
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// maxStreamSize is the maximum allowed size of a stream batch. This is a soft limit
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// as a single list that is still over the limit will have to be sent as is since it
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// cannot be split further. This limit prevents the framework from creating batches
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// so big that sending them causes issues (e.g running into the max size gRPC limit).
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var maxStreamSize = uint64(100 << 20) // 100MB
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// Stream provides a framework to concurrently iterate over a snapshot of Badger, pick up
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// key-values, batch them up and call Send. Stream does concurrent iteration over many smaller key
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// ranges. It does NOT send keys in lexicographical sorted order. To get keys in sorted
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// order, use Iterator.
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type Stream struct {
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// Prefix to only iterate over certain range of keys. If set to nil (default), Stream would
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// iterate over the entire DB.
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Prefix []byte
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// Number of goroutines to use for iterating over key ranges. Defaults to 8.
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NumGo int
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// Badger would produce log entries in Infof to indicate the progress of Stream. LogPrefix can
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// be used to help differentiate them from other activities. Default is "Badger.Stream".
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LogPrefix string
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// ChooseKey is invoked each time a new key is encountered. Note that this is not called
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// on every version of the value, only the first encountered version (i.e. the highest version
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// of the value a key has). ChooseKey can be left nil to select all keys.
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//
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// Note: Calls to ChooseKey are concurrent.
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ChooseKey func(item *Item) bool
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// MaxSize is the maximum allowed size of a stream batch. This is a soft limit
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// as a single list that is still over the limit will have to be sent as is since it
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// cannot be split further. This limit prevents the framework from creating batches
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// so big that sending them causes issues (e.g running into the max size gRPC limit).
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// If necessary, set it up before the Stream starts synchronisation
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// This is not a concurrency-safe setting
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MaxSize uint64
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// KeyToList, similar to ChooseKey, is only invoked on the highest version of the value. It
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// is upto the caller to iterate over the versions and generate zero, one or more KVs. It
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// is expected that the user would advance the iterator to go through the versions of the
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// values. However, the user MUST immediately return from this function on the first encounter
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// with a mismatching key. See example usage in ToList function. Can be left nil to use ToList
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// function by default.
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//
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// KeyToList has access to z.Allocator accessible via stream.Allocator(itr.ThreadId). This
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// allocator can be used to allocate KVs, to decrease the memory pressure on Go GC. Stream
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// framework takes care of releasing those resources after calling Send. AllocRef does
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// NOT need to be set in the returned KVList, as Stream framework would ignore that field,
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// instead using the allocator assigned to that thread id.
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//
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// Note: Calls to KeyToList are concurrent.
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KeyToList func(key []byte, itr *Iterator) (*pb.KVList, error)
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// UseKeyToListWithThreadId is used to indicate that KeyToListWithThreadId should be used
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// instead of KeyToList. This is a new api that can be used to figure out parallelism
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// of the stream. Each threadId would be run serially. KeyToList being concurrent makes you
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// take care of concurrency in KeyToList. Here threadId could be used to do some things serially.
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// Once a thread finishes FinishThread() would be called.
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UseKeyToListWithThreadId bool
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KeyToListWithThreadId func(key []byte, itr *Iterator, threadId int) (*pb.KVList, error)
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FinishThread func(threadId int) (*pb.KVList, error)
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// This is the method where Stream sends the final output. All calls to Send are done by a
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// single goroutine, i.e. logic within Send method can expect single threaded execution.
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Send func(buf *z.Buffer) error
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// Read data above the sinceTs. All keys with version =< sinceTs will be ignored.
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SinceTs uint64
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readTs uint64
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db *DB
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rangeCh chan keyRange
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kvChan chan *z.Buffer
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nextStreamId atomic.Uint32
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doneMarkers bool
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scanned atomic.Uint64 // used to estimate the ETA for data scan.
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numProducers atomic.Int32
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}
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// SendDoneMarkers when true would send out done markers on the stream. False by default.
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func (st *Stream) SendDoneMarkers(done bool) {
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st.doneMarkers = done
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}
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// ToList is a default implementation of KeyToList. It picks up all valid versions of the key,
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// skipping over deleted or expired keys.
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func (st *Stream) ToList(key []byte, itr *Iterator) (*pb.KVList, error) {
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a := itr.Alloc
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ka := a.Copy(key)
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list := &pb.KVList{}
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for ; itr.Valid(); itr.Next() {
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item := itr.Item()
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if item.IsDeletedOrExpired() {
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break
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}
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if !bytes.Equal(key, item.Key()) {
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// Break out on the first encounter with another key.
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break
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}
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kv := y.NewKV(a)
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kv.Key = ka
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if err := item.Value(func(val []byte) error {
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kv.Value = a.Copy(val)
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return nil
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}); err != nil {
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return nil, err
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}
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kv.Version = item.Version()
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kv.ExpiresAt = item.ExpiresAt()
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kv.UserMeta = a.Copy([]byte{item.UserMeta()})
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list.Kv = append(list.Kv, kv)
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if st.db.opt.NumVersionsToKeep == 1 {
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break
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}
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if item.DiscardEarlierVersions() {
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break
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}
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}
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return list, nil
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}
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// keyRange is [start, end), including start, excluding end. Do ensure that the start,
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// end byte slices are owned by keyRange struct.
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func (st *Stream) produceRanges(ctx context.Context) {
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ranges := st.db.Ranges(st.Prefix, st.NumGo)
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y.AssertTrue(len(ranges) > 0)
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y.AssertTrue(ranges[0].left == nil)
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y.AssertTrue(ranges[len(ranges)-1].right == nil)
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st.db.opt.Infof("Number of ranges found: %d\n", len(ranges))
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// Sort in descending order of size.
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sort.Slice(ranges, func(i, j int) bool {
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return ranges[i].size > ranges[j].size
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})
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for i, r := range ranges {
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st.rangeCh <- *r
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st.db.opt.Infof("Sent range %d for iteration: [%x, %x) of size: %s\n",
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i, r.left, r.right, humanize.IBytes(uint64(r.size)))
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}
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close(st.rangeCh)
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}
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// produceKVs picks up ranges from rangeCh, generates KV lists and sends them to kvChan.
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func (st *Stream) produceKVs(ctx context.Context, threadId int) error {
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st.numProducers.Add(1)
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defer st.numProducers.Add(-1)
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var txn *Txn
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if st.readTs > 0 {
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txn = st.db.NewTransactionAt(st.readTs, false)
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} else {
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txn = st.db.NewTransaction(false)
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}
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defer txn.Discard()
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// produceKVs is running iterate serially. So, we can define the outList here.
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outList := z.NewBuffer(2*batchSize, "Stream.ProduceKVs")
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defer func() {
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// The outList variable changes. So, we need to evaluate the variable in the defer. DO NOT
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// call `defer outList.Release()`.
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_ = outList.Release()
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}()
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iterate := func(kr keyRange) error {
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iterOpts := DefaultIteratorOptions
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iterOpts.AllVersions = true
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iterOpts.Prefix = st.Prefix
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iterOpts.PrefetchValues = true
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iterOpts.SinceTs = st.SinceTs
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itr := txn.NewIterator(iterOpts)
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itr.ThreadId = threadId
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defer itr.Close()
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itr.Alloc = z.NewAllocator(1<<20, "Stream.Iterate")
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defer itr.Alloc.Release()
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// This unique stream id is used to identify all the keys from this iteration.
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streamId := st.nextStreamId.Add(1)
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var scanned int
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sendIt := func() error {
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select {
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case st.kvChan <- outList:
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outList = z.NewBuffer(2*batchSize, "Stream.ProduceKVs")
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st.scanned.Add(uint64(itr.scanned - scanned))
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scanned = itr.scanned
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case <-ctx.Done():
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return ctx.Err()
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}
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return nil
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}
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var prevKey []byte
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for itr.Seek(kr.left); itr.Valid(); {
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// it.Valid would only return true for keys with the provided Prefix in iterOpts.
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item := itr.Item()
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if bytes.Equal(item.Key(), prevKey) {
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itr.Next()
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continue
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}
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prevKey = append(prevKey[:0], item.Key()...)
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// Check if we reached the end of the key range.
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if len(kr.right) > 0 && bytes.Compare(item.Key(), kr.right) >= 0 {
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break
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}
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// Check if we should pick this key.
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if st.ChooseKey != nil && !st.ChooseKey(item) {
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continue
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}
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// Now convert to key value.
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itr.Alloc.Reset()
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var list *pb.KVList
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var err error
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if st.UseKeyToListWithThreadId {
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list, err = st.KeyToListWithThreadId(item.KeyCopy(nil), itr, threadId)
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} else {
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list, err = st.KeyToList(item.KeyCopy(nil), itr)
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}
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if err != nil {
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st.db.opt.Warningf("While reading key: %x, got error: %v", item.Key(), err)
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continue
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}
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if list == nil || len(list.Kv) == 0 {
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continue
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}
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for _, kv := range list.Kv {
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kv.StreamId = streamId
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KVToBuffer(kv, outList)
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if outList.LenNoPadding() < batchSize {
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continue
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}
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if err := sendIt(); err != nil {
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return err
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}
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}
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}
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if st.UseKeyToListWithThreadId {
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if kvs, err := st.FinishThread(threadId); err != nil {
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return err
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} else {
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for _, kv := range kvs.Kv {
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kv.StreamId = streamId
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KVToBuffer(kv, outList)
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if outList.LenNoPadding() < batchSize {
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continue
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}
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if err := sendIt(); err != nil {
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return err
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}
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}
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}
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}
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// Mark the stream as done.
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if st.doneMarkers {
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kv := &pb.KV{
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StreamId: streamId,
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StreamDone: true,
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}
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KVToBuffer(kv, outList)
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}
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return sendIt()
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}
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for {
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select {
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case kr, ok := <-st.rangeCh:
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if !ok {
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// Done with the keys.
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return nil
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}
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if err := iterate(kr); err != nil {
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return err
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}
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case <-ctx.Done():
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return ctx.Err()
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}
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}
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}
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func (st *Stream) streamKVs(ctx context.Context) error {
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onDiskSize, uncompressedSize := st.db.EstimateSize(st.Prefix)
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// Manish has seen uncompressed size to be in 20% error margin.
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uncompressedSize = uint64(float64(uncompressedSize) * 1.2)
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st.db.opt.Infof("%s Streaming about %s of uncompressed data (%s on disk)\n",
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st.LogPrefix, humanize.IBytes(uncompressedSize), humanize.IBytes(onDiskSize))
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tickerDur := 5 * time.Second
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var bytesSent uint64
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t := time.NewTicker(tickerDur)
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defer t.Stop()
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now := time.Now()
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sendBatch := func(batch *z.Buffer) error {
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defer func() { _ = batch.Release() }()
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sz := uint64(batch.LenNoPadding())
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if sz == 0 {
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return nil
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}
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bytesSent += sz
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// st.db.opt.Infof("%s Sending batch of size: %s.\n", st.LogPrefix, humanize.IBytes(sz))
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if err := st.Send(batch); err != nil {
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st.db.opt.Warningf("Error while sending: %v\n", err)
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return err
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}
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return nil
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}
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slurp := func(batch *z.Buffer) error {
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loop:
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for {
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// Send the batch immediately if it already exceeds the maximum allowed size.
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// If the size of the batch exceeds maxStreamSize, break from the loop to
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// avoid creating a batch that is so big that certain limits are reached.
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if uint64(batch.LenNoPadding()) > st.MaxSize {
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break loop
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}
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select {
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case kvs, ok := <-st.kvChan:
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if !ok {
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break loop
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}
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y.AssertTrue(kvs != nil)
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y.Check2(batch.Write(kvs.Bytes()))
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y.Check(kvs.Release())
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default:
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break loop
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}
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}
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return sendBatch(batch)
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} // end of slurp.
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writeRate := y.NewRateMonitor(20)
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scanRate := y.NewRateMonitor(20)
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outer:
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for {
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var batch *z.Buffer
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select {
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case <-ctx.Done():
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return ctx.Err()
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case <-t.C:
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// Instead of calculating speed over the entire lifetime, we average the speed over
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// ticker duration.
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writeRate.Capture(bytesSent)
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scanned := st.scanned.Load()
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scanRate.Capture(scanned)
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numProducers := st.numProducers.Load()
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st.db.opt.Infof("%s [%s] Scan (%d): ~%s/%s at %s/sec. Sent: %s at %s/sec."+
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" jemalloc: %s\n",
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st.LogPrefix, y.FixedDuration(time.Since(now)), numProducers,
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y.IBytesToString(scanned, 1), humanize.IBytes(uncompressedSize),
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humanize.IBytes(scanRate.Rate()),
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y.IBytesToString(bytesSent, 1), humanize.IBytes(writeRate.Rate()),
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humanize.IBytes(uint64(z.NumAllocBytes())))
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case kvs, ok := <-st.kvChan:
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if !ok {
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break outer
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}
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y.AssertTrue(kvs != nil)
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batch = kvs
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// Otherwise, slurp more keys into this batch.
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if err := slurp(batch); err != nil {
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return err
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}
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}
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}
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st.db.opt.Infof("%s Sent data of size %s\n", st.LogPrefix, humanize.IBytes(bytesSent))
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return nil
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}
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// Orchestrate runs Stream. It picks up ranges from the SSTables, then runs NumGo number of
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// goroutines to iterate over these ranges and batch up KVs in lists. It concurrently runs a single
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// goroutine to pick these lists, batch them up further and send to Output.Send. Orchestrate also
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// spits logs out to Infof, using provided LogPrefix. Note that all calls to Output.Send
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// are serial. In case any of these steps encounter an error, Orchestrate would stop execution and
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// return that error. Orchestrate can be called multiple times, but in serial order.
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func (st *Stream) Orchestrate(ctx context.Context) error {
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ctx, cancel := context.WithCancel(ctx)
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defer cancel()
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st.rangeCh = make(chan keyRange, 3) // Contains keys for posting lists.
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// kvChan should only have a small capacity to ensure that we don't buffer up too much data if
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// sending is slow. Page size is set to 4MB, which is used to lazily cap the size of each
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// KVList. To get 128MB buffer, we can set the channel size to 32.
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st.kvChan = make(chan *z.Buffer, 32)
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if st.KeyToList == nil {
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st.KeyToList = st.ToList
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}
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// Picks up ranges from Badger, and sends them to rangeCh.
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go st.produceRanges(ctx)
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errCh := make(chan error, st.NumGo) // Stores error by consumeKeys.
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var wg sync.WaitGroup
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for i := 0; i < st.NumGo; i++ {
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wg.Add(1)
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go func(threadId int) {
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defer wg.Done()
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// Picks up ranges from rangeCh, generates KV lists, and sends them to kvChan.
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if err := st.produceKVs(ctx, threadId); err != nil {
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select {
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case errCh <- err:
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default:
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}
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}
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}(i)
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}
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// Pick up key-values from kvChan and send to stream.
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kvErr := make(chan error, 1)
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go func() {
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// Picks up KV lists from kvChan, and sends them to Output.
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err := st.streamKVs(ctx)
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if err != nil {
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cancel() // Stop all the go routines.
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}
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kvErr <- err
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}()
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wg.Wait() // Wait for produceKVs to be over.
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close(st.kvChan) // Now we can close kvChan.
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defer func() {
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// If due to some error, we have buffers left in kvChan, we should release them.
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for buf := range st.kvChan {
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_ = buf.Release()
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}
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}()
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select {
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case err := <-errCh: // Check error from produceKVs.
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return err
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default:
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}
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// Wait for key streaming to be over.
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err := <-kvErr
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return err
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}
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func (db *DB) newStream() *Stream {
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return &Stream{
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db: db,
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NumGo: db.opt.NumGoroutines,
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LogPrefix: "Badger.Stream",
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MaxSize: maxStreamSize,
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}
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}
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// NewStream creates a new Stream.
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func (db *DB) NewStream() *Stream {
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if db.opt.managedTxns {
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panic("This API can not be called in managed mode.")
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}
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return db.newStream()
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}
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// NewStreamAt creates a new Stream at a particular timestamp. Should only be used with managed DB.
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func (db *DB) NewStreamAt(readTs uint64) *Stream {
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if !db.opt.managedTxns {
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panic("This API can only be called in managed mode.")
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|
}
|
|
stream := db.newStream()
|
|
stream.readTs = readTs
|
|
return stream
|
|
}
|
|
|
|
func BufferToKVList(buf *z.Buffer) (*pb.KVList, error) {
|
|
var list pb.KVList
|
|
err := buf.SliceIterate(func(s []byte) error {
|
|
kv := new(pb.KV)
|
|
if err := pb.Unmarshal(s, kv); err != nil {
|
|
return err
|
|
}
|
|
list.Kv = append(list.Kv, kv)
|
|
return nil
|
|
})
|
|
return &list, err
|
|
}
|
|
|
|
func KVToBuffer(kv *pb.KV, buf *z.Buffer) {
|
|
in := buf.SliceAllocate(pb.Size(kv))[:0]
|
|
_, err := pb.MarshalOptions{}.MarshalAppend(in, kv)
|
|
y.AssertTrue(err == nil)
|
|
}
|