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* Filter metadata events before unmarshaling them per subscriber Every subscriber unmarshaled every log entry into a full event just to run the path filter, and entries carry complete chunk lists, so a fleet of path-filtered subscribers spends almost all replay CPU materializing events it then discards. A shallow wire scan now extracts just the directory, entry names and rename destination into a skeleton event, feeds the same matcher, and skips the decode for entries the subscriber cannot match. Any scan surprise (malformed bytes, merged duplicate message fields) falls back to the full decode, and the unsynced-events heartbeat keeps firing for skipped entries. * Raise the legacy replay cap The cap was sized when every replay pinned a private chunk reader per source filer. Replays now share decoded chunks, so sixteen needlessly serializes subscriber catch-up; the expensive part stays bounded by the cache's load gate. * Weight concurrent log-chunk loads by size The flat eight-load gate let eight tiny chunks through as reluctantly as eight full ones. Charge each load's chunk size against a 128MB in-flight budget instead: small chunks decode wide open while full-size ones still serialize enough to cap the transient peak. Oversized weights clamp to the budget so they can always acquire. * Propagate heartbeat send failures and reset the skip counter A failed heartbeat send means the stream is gone, so end the replay instead of scanning on. A delivered event also resets the skip counter, keeping the heartbeat cadence relative to the last thing the client actually received. * Share the unsynced-events counter across the prefilter and delivery Two independent counters could starve the heartbeat: alternating drops reset each side before either reached its threshold. One shared counter increments on every dropped entry, prefiltered or not, and only an actual delivery resets it, restoring the original cadence exactly. * Tighten comments * Benchmark the subscription match paths For a thousand-chunk event that the subscriber filters out, the shallow scan matches in 10us and 9 allocations against 175us and 4031 allocations for the full decode.
545 lines
18 KiB
Go
545 lines
18 KiB
Go
package weed_server
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import (
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"fmt"
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"sync"
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"sync/atomic"
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"testing"
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"time"
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"github.com/seaweedfs/seaweedfs/weed/filer"
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"github.com/seaweedfs/seaweedfs/weed/pb"
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"github.com/seaweedfs/seaweedfs/weed/pb/filer_pb"
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"github.com/seaweedfs/seaweedfs/weed/util/log_buffer"
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)
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// slowStream simulates a gRPC stream with configurable per-Send latency.
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// It counts individual events including those packed inside batches.
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// Atomic counters use atomic.Int64 so they stay 8-byte aligned on 32-bit
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// architectures (386, ARMv7, mips32) where a bare int64 struct field is
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// only 4-byte aligned and panics under atomic.AddInt64.
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type slowStream struct {
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sends atomic.Int64 // number of stream.Send() calls
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eventsSent atomic.Int64 // total events (1 + len(Events) per Send)
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sendDelay time.Duration
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}
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func (s *slowStream) Send(msg *filer_pb.SubscribeMetadataResponse) error {
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time.Sleep(s.sendDelay)
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s.sends.Add(1)
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s.eventsSent.Add(1 + int64(len(msg.Events)))
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return nil
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}
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type collectingStream struct {
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messages []*filer_pb.SubscribeMetadataResponse
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err error
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}
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func (s *collectingStream) Send(msg *filer_pb.SubscribeMetadataResponse) error {
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if s.err != nil {
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return s.err
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}
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s.messages = append(s.messages, msg)
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return nil
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}
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func makeEvent(dir, name string, tsNs int64) *filer_pb.SubscribeMetadataResponse {
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return &filer_pb.SubscribeMetadataResponse{
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Directory: dir,
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TsNs: tsNs,
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EventNotification: &filer_pb.EventNotification{
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NewEntry: &filer_pb.Entry{
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Name: name,
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IsDirectory: false,
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},
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},
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}
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}
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// makeOldEvents creates events with timestamps far in the past (triggers batch mode).
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func makeOldEvents(n int) []*filer_pb.SubscribeMetadataResponse {
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baseTs := time.Now().Add(-time.Hour).UnixNano() // 1 hour ago → well past batchBehindThreshold
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events := make([]*filer_pb.SubscribeMetadataResponse, n)
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for i := range events {
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events[i] = makeEvent("/bucket/dir", fmt.Sprintf("file%06d.txt", i), baseTs+int64(i))
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}
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return events
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}
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// makeRecentEvents creates events with timestamps close to now (sends one-by-one).
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func makeRecentEvents(n int) []*filer_pb.SubscribeMetadataResponse {
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baseTs := time.Now().UnixNano()
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events := make([]*filer_pb.SubscribeMetadataResponse, n)
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for i := range events {
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events[i] = makeEvent("/bucket/dir", fmt.Sprintf("file%06d.txt", i), baseTs+int64(i))
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}
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return events
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}
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// TestPipelinedSenderThroughput compares direct (blocking) stream.Send with
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// the pipelinedSender with adaptive batching.
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//
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// Simulates realistic backlog catch-up: the reader loads one log file at a time
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// from a volume server (fileReadDelay per file), producing a burst of ~300
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// events. The sender has per-Send gRPC overhead (sendDelay).
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//
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// - Direct: serial — each event: send one-by-one between file reads
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// - Pipelined+batched: file I/O overlaps with batched sending
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func TestPipelinedSenderThroughput(t *testing.T) {
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const (
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eventsPerFile = 300 // events in one minute-log file
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numFiles = 7 // files to process
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totalEvents = eventsPerFile * numFiles // 2100
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fileReadDelay = 5 * time.Millisecond // volume server read per log file
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sendDelay = 50 * time.Microsecond // gRPC round-trip per Send()
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)
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// Partition old events into file-sized bursts
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files := make([][]*filer_pb.SubscribeMetadataResponse, numFiles)
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baseTs := time.Now().Add(-time.Hour).UnixNano()
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for f := 0; f < numFiles; f++ {
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files[f] = make([]*filer_pb.SubscribeMetadataResponse, eventsPerFile)
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for i := 0; i < eventsPerFile; i++ {
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idx := f*eventsPerFile + i
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files[f][i] = makeEvent("/bucket/dir", fmt.Sprintf("file%06d.txt", idx), baseTs+int64(idx))
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}
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}
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// --- Direct (old behavior): read file, send events one-by-one, repeat ---
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var directRate float64
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t.Run("direct_send", func(t *testing.T) {
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stream := &slowStream{sendDelay: sendDelay}
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start := time.Now()
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for _, file := range files {
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time.Sleep(fileReadDelay) // read log file from volume server
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for _, ev := range file {
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if err := stream.Send(ev); err != nil {
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t.Fatalf("send error: %v", err)
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}
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}
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}
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elapsed := time.Since(start)
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directRate = float64(stream.eventsSent.Load()) / elapsed.Seconds()
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t.Logf("direct: %d events %4d sends %v %6.0f events/sec",
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stream.eventsSent.Load(), stream.sends.Load(), elapsed.Round(time.Millisecond), directRate)
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})
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// --- Pipelined + batched (new behavior): file reads overlap with batched sends ---
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var batchedRate float64
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t.Run("pipelined_batched_send", func(t *testing.T) {
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stream := &slowStream{sendDelay: sendDelay}
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sender := newPipelinedSender(stream, 1024, true)
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start := time.Now()
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for _, file := range files {
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time.Sleep(fileReadDelay) // read log file from volume server
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for _, ev := range file {
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if err := sender.Send(ev); err != nil {
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t.Fatalf("send error: %v", err)
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}
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}
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}
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if err := sender.Close(); err != nil {
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t.Fatalf("close error: %v", err)
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}
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elapsed := time.Since(start)
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batchedRate = float64(stream.eventsSent.Load()) / elapsed.Seconds()
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t.Logf("pipelined+batch: %d events %4d sends %v %6.0f events/sec",
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stream.eventsSent.Load(), stream.sends.Load(), elapsed.Round(time.Millisecond), batchedRate)
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})
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if directRate > 0 {
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t.Logf("Speedup: %.1fx (pipelined+batched vs direct)", batchedRate/directRate)
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}
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}
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func TestEachEventNotificationFnMatchesRenameTargetsForAllWatchTypes(t *testing.T) {
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fs := &FilerServer{
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option: &FilerOption{Host: pb.ServerAddress("127.0.0.1:8888")},
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filer: &filer.Filer{Signature: 123},
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}
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tests := []struct {
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name string
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req *filer_pb.SubscribeMetadataRequest
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}{
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{
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name: "additional path prefix",
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req: &filer_pb.SubscribeMetadataRequest{
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ClientName: "test",
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PathPrefix: "/data/",
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PathPrefixes: []string{"/etc/remote"},
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},
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},
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{
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name: "directory watch",
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req: &filer_pb.SubscribeMetadataRequest{
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ClientName: "test",
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PathPrefix: "/data/",
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Directories: []string{"/etc/iam/identities"},
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},
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},
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}
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for _, tt := range tests {
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t.Run(tt.name, func(t *testing.T) {
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stream := &collectingStream{}
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var unsyncedEvents int64
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eachEventFn := fs.eachEventNotificationFn(tt.req, stream, "client", &unsyncedEvents)
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newDir := "/etc/remote"
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if len(tt.req.Directories) > 0 {
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newDir = tt.req.Directories[0]
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}
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err := eachEventFn("/tmp", &filer_pb.EventNotification{
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OldEntry: &filer_pb.Entry{Name: "old"},
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NewEntry: &filer_pb.Entry{Name: "new"},
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NewParentPath: newDir,
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}, time.Now().UnixNano())
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if err != nil {
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t.Fatalf("eachEventFn: %v", err)
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}
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if len(stream.messages) != 1 {
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t.Fatalf("messages sent = %d, want 1", len(stream.messages))
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}
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})
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}
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}
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// TestBatchingAdaptive verifies the adaptive behavior: old events are batched,
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// recent events are sent one-by-one.
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func TestBatchingAdaptive(t *testing.T) {
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const numEvents = 500
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t.Run("old_events_are_batched", func(t *testing.T) {
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stream := &slowStream{sendDelay: 10 * time.Microsecond}
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sender := newPipelinedSender(stream, 1024, true)
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// Push all events at once (no read delay) so the sender can batch aggressively
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for _, ev := range makeOldEvents(numEvents) {
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sender.Send(ev)
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}
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sender.Close()
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sends := stream.sends.Load()
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events := stream.eventsSent.Load()
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t.Logf("old events: %d events in %d sends (avg batch size: %.1f)",
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events, sends, float64(events)/float64(sends))
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if sends >= int64(numEvents) {
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t.Errorf("expected batching to reduce sends below %d, got %d", numEvents, sends)
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}
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})
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t.Run("recent_events_sent_individually", func(t *testing.T) {
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stream := &slowStream{sendDelay: 10 * time.Microsecond}
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sender := newPipelinedSender(stream, 1024, true)
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for _, ev := range makeRecentEvents(numEvents) {
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sender.Send(ev)
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}
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sender.Close()
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sends := stream.sends.Load()
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events := stream.eventsSent.Load()
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t.Logf("recent events: %d events in %d sends (avg batch size: %.1f)",
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events, sends, float64(events)/float64(sends))
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if sends != int64(numEvents) {
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t.Errorf("expected 1:1 sends for recent events, got %d sends for %d events", sends, numEvents)
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}
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})
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}
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// errorStreamImpl is a metadataStreamSender that returns an error after N sends.
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// count uses atomic.Int64 so it stays 8-byte aligned on 32-bit architectures
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// (386, ARMv7, mips32) where a bare int64 struct field after smaller fields
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// is only 4-byte aligned and panics under atomic.AddInt64.
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type errorStreamImpl struct {
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count atomic.Int64
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failAfter int
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err error
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}
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func (s *errorStreamImpl) Send(msg *filer_pb.SubscribeMetadataResponse) error {
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n := s.count.Add(1)
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if int(n) > s.failAfter {
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return s.err
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}
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return nil
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}
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// TestPipelinedSenderErrorPropagation verifies that when stream.Send fails,
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// the error propagates to pipelinedSender.Send callers and Close.
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func TestPipelinedSenderErrorPropagation(t *testing.T) {
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sendErr := fmt.Errorf("connection reset")
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t.Run("send_returns_error", func(t *testing.T) {
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// Stream fails after 5 successful sends
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stream := &errorStreamImpl{failAfter: 5, err: sendErr}
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sender := newPipelinedSender(stream, 4, true)
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var lastErr error
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for i := 0; i < 100; i++ {
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ev := makeOldEvents(1)[0]
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if err := sender.Send(ev); err != nil {
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lastErr = err
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break
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}
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}
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if lastErr == nil {
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t.Fatal("expected Send to return an error after stream failure")
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}
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t.Logf("Send returned error after stream failure: %v", lastErr)
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})
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t.Run("close_returns_error_if_not_consumed", func(t *testing.T) {
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// Stream fails on the very first send — error surfaces via Close
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// since Send may have already returned before the sender goroutine
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// processes the message.
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stream := &errorStreamImpl{failAfter: 0, err: sendErr}
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sender := newPipelinedSender(stream, 1024, true)
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ev := makeOldEvents(1)[0]
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sender.Send(ev)
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closeErr := sender.Close()
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if closeErr == nil {
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t.Log("Close returned nil (error was consumed by Send)")
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} else {
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t.Logf("Close returned error: %v", closeErr)
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}
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})
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}
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// TestPipelinedSingleVsParallelStreams shows 1 pipelined+batched stream vs
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// N parallel pipelined+batched streams, using the realistic burst-read pattern.
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func TestPipelinedSingleVsParallelStreams(t *testing.T) {
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const (
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numDirs = 10
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filesPerDir = 7 // log files per directory
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eventsPerFile = 300 // events per log file
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totalEvents = numDirs * filesPerDir * eventsPerFile // 21000
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fileReadDelay = 5 * time.Millisecond
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sendDelay = 50 * time.Microsecond
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)
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// Generate partitioned OLD events grouped into file-sized bursts
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baseTs := time.Now().Add(-time.Hour).UnixNano()
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type logFile []*filer_pb.SubscribeMetadataResponse
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// partitions[dir][file][event]
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partitions := make([][]logFile, numDirs)
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var allFiles []logFile
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idx := 0
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for d := 0; d < numDirs; d++ {
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dir := fmt.Sprintf("/bucket/dir%03d", d)
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for f := 0; f < filesPerDir; f++ {
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file := make(logFile, eventsPerFile)
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for i := 0; i < eventsPerFile; i++ {
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file[i] = makeEvent(dir, fmt.Sprintf("file%06d.txt", idx), baseTs+int64(idx))
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idx++
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}
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partitions[d] = append(partitions[d], file)
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allFiles = append(allFiles, file)
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}
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}
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// simulatePipeline: read files with I/O delay, push events, send via pipelinedSender
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simulatePipeline := func(files []logFile) (eventsSent, sends int64, elapsed time.Duration, err error) {
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stream := &slowStream{sendDelay: sendDelay}
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sender := newPipelinedSender(stream, 1024, true)
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start := time.Now()
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outer:
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for _, file := range files {
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time.Sleep(fileReadDelay) // volume server read
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for _, ev := range file {
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if err = sender.Send(ev); err != nil {
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break outer
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}
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}
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}
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if closeErr := sender.Close(); closeErr != nil && err == nil {
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err = closeErr
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}
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elapsed = time.Since(start)
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eventsSent = stream.eventsSent.Load()
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sends = stream.sends.Load()
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return
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}
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var singleRate float64
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t.Run("1_pipelined_stream", func(t *testing.T) {
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eventsSent, sends, elapsed, err := simulatePipeline(allFiles)
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if err != nil {
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t.Fatalf("pipeline error: %v", err)
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}
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singleRate = float64(eventsSent) / elapsed.Seconds()
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t.Logf("1 stream: %5d events %4d sends %v %7.0f events/sec",
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eventsSent, sends, elapsed.Round(time.Millisecond), singleRate)
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})
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var parallelRate float64
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t.Run("10_pipelined_streams", func(t *testing.T) {
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// atomic.Int64 guarantees 8-byte alignment on 32-bit architectures where
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// a local int64 variable's address is only 4-byte aligned and atomic
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// 64-bit operations panic with "unaligned 64-bit atomic operation".
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var totalEventsSent, totalSends atomic.Int64
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var wg sync.WaitGroup
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start := time.Now()
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for d := 0; d < numDirs; d++ {
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wg.Add(1)
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go func(files []logFile) {
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defer wg.Done()
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eventsSent, sends, _, _ := simulatePipeline(files)
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totalEventsSent.Add(eventsSent)
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totalSends.Add(sends)
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}(partitions[d])
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}
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wg.Wait()
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elapsed := time.Since(start)
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totalEvents := totalEventsSent.Load()
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parallelRate = float64(totalEvents) / elapsed.Seconds()
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t.Logf("%d streams: %5d events %4d sends %v %7.0f events/sec",
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numDirs, totalEvents, totalSends.Load(), elapsed.Round(time.Millisecond), parallelRate)
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})
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if singleRate > 0 && parallelRate > 0 {
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t.Logf("Speedup: %.1fx (%d parallel pipelined streams vs 1)", parallelRate/singleRate, numDirs)
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}
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}
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func TestMaybeSendIdleHeartbeat(t *testing.T) {
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lb := log_buffer.NewLogBuffer("test", time.Minute, nil, nil, nil)
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defer lb.ShutdownLogBuffer()
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fs := &FilerServer{}
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const recentEvent = int64(1_000_000)
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t.Run("not opted in", func(t *testing.T) {
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lb.LastTsNs.Store(recentEvent)
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s := &collectingStream{}
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req := &filer_pb.SubscribeMetadataRequest{ClientSupportsIdleHeartbeat: false}
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got := fs.maybeSendIdleHeartbeat(req, s, lb, recentEvent, recentEvent, 0)
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if got != 0 || len(s.messages) != 0 {
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t.Fatalf("expected no heartbeat, got lastHeartbeat=%d msgs=%d", got, len(s.messages))
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}
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})
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t.Run("behind buffer head", func(t *testing.T) {
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lb.LastTsNs.Store(recentEvent)
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s := &collectingStream{}
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req := &filer_pb.SubscribeMetadataRequest{ClientSupportsIdleHeartbeat: true}
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// startTs and lastSeen both below the buffer head: still replaying.
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got := fs.maybeSendIdleHeartbeat(req, s, lb, 0, recentEvent-1, 0)
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if got != 0 || len(s.messages) != 0 {
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t.Fatalf("expected no heartbeat while behind, got lastHeartbeat=%d msgs=%d", got, len(s.messages))
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}
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})
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t.Run("caught up via lastSeen", func(t *testing.T) {
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lb.LastTsNs.Store(recentEvent)
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s := &collectingStream{}
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req := &filer_pb.SubscribeMetadataRequest{ClientSupportsIdleHeartbeat: true}
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got := fs.maybeSendIdleHeartbeat(req, s, lb, 0, recentEvent, 0)
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if len(s.messages) != 1 {
|
|
t.Fatalf("expected one heartbeat, got %d", len(s.messages))
|
|
}
|
|
hb := s.messages[0]
|
|
if hb.EventNotification != nil || len(hb.Events) != 0 || hb.TsNs <= 0 {
|
|
t.Fatalf("heartbeat should be an empty timestamped response, got %+v", hb)
|
|
}
|
|
if got != hb.TsNs {
|
|
t.Fatalf("expected returned lastHeartbeat %d to equal sent ts %d", got, hb.TsNs)
|
|
}
|
|
})
|
|
|
|
t.Run("caught up via read position floor", func(t *testing.T) {
|
|
// The read cursor has advanced past the buffer head while lastSeen stayed
|
|
// 0. This is the idle-source case (subscribed from "now", read nothing) and
|
|
// also metadata-chunks mode, where persisted entries replay as log file
|
|
// refs and never reach eachLogEntryFn.
|
|
lb.LastTsNs.Store(recentEvent)
|
|
s := &collectingStream{}
|
|
req := &filer_pb.SubscribeMetadataRequest{ClientSupportsIdleHeartbeat: true}
|
|
readPosition := time.Now().UnixNano()
|
|
got := fs.maybeSendIdleHeartbeat(req, s, lb, readPosition, 0, 0)
|
|
if len(s.messages) != 1 || got <= 0 {
|
|
t.Fatalf("expected heartbeat for caught-up subscriber, got msgs=%d lastHeartbeat=%d", len(s.messages), got)
|
|
}
|
|
})
|
|
|
|
t.Run("throttled within interval", func(t *testing.T) {
|
|
lb.LastTsNs.Store(recentEvent)
|
|
s := &collectingStream{}
|
|
req := &filer_pb.SubscribeMetadataRequest{ClientSupportsIdleHeartbeat: true}
|
|
justSent := time.Now().UnixNano()
|
|
got := fs.maybeSendIdleHeartbeat(req, s, lb, 0, recentEvent, justSent)
|
|
if got != justSent || len(s.messages) != 0 {
|
|
t.Fatalf("expected throttled (no send), got lastHeartbeat=%d msgs=%d", got, len(s.messages))
|
|
}
|
|
})
|
|
|
|
t.Run("send error keeps prior heartbeat time", func(t *testing.T) {
|
|
lb.LastTsNs.Store(recentEvent)
|
|
s := &collectingStream{err: fmt.Errorf("broken stream")}
|
|
req := &filer_pb.SubscribeMetadataRequest{ClientSupportsIdleHeartbeat: true}
|
|
got := fs.maybeSendIdleHeartbeat(req, s, lb, 0, recentEvent, 0)
|
|
if got != 0 {
|
|
t.Fatalf("expected lastHeartbeat unchanged on send error, got %d", got)
|
|
}
|
|
})
|
|
}
|
|
|
|
// TestFilteredEventsEmitMaxUnsyncedMarker pins the source-side shape the client
|
|
// keys off: after MaxUnsyncedEvents filtered events, eachEventNotificationFn
|
|
// emits a marker with a fresh timestamp and a non-nil but empty EventNotification.
|
|
// Consumed by TestFilerSyncOffsetStaysFreshOnFilteredMarker.
|
|
func TestFilteredEventsEmitMaxUnsyncedMarker(t *testing.T) {
|
|
fs := &FilerServer{
|
|
option: &FilerOption{Host: pb.ServerAddress("127.0.0.1:8888")},
|
|
filer: &filer.Filer{Signature: 123},
|
|
}
|
|
req := &filer_pb.SubscribeMetadataRequest{ClientName: "syncFrom_A_To_B", PathPrefix: "/watched/"}
|
|
|
|
stream := &collectingStream{}
|
|
var unsyncedEvents int64
|
|
eachEventFn := fs.eachEventNotificationFn(req, stream, "client", &unsyncedEvents)
|
|
|
|
base := time.Now().UnixNano()
|
|
var lastTsNs int64
|
|
// Feed MaxUnsyncedEvents+1 events on a NON-watched path so every one is filtered.
|
|
total := int(MaxUnsyncedEvents) + 1
|
|
for i := 0; i < total; i++ {
|
|
lastTsNs = base + int64(i)
|
|
err := eachEventFn("/other/dir", &filer_pb.EventNotification{
|
|
NewEntry: &filer_pb.Entry{Name: fmt.Sprintf("file%d", i)},
|
|
}, lastTsNs)
|
|
if err != nil {
|
|
t.Fatalf("eachEventFn: %v", err)
|
|
}
|
|
}
|
|
|
|
if len(stream.messages) != 1 {
|
|
t.Fatalf("expected exactly 1 MaxUnsyncedEvents marker, got %d", len(stream.messages))
|
|
}
|
|
marker := stream.messages[0]
|
|
if !filer_pb.IsEmpty(marker) {
|
|
t.Errorf("marker should have empty EventNotification (IsEmpty), got %+v", marker.EventNotification)
|
|
}
|
|
if marker.EventNotification == nil {
|
|
t.Error("marker EventNotification should be non-nil but empty (the shape the client keys off)")
|
|
}
|
|
if marker.TsNs != lastTsNs {
|
|
t.Errorf("marker TsNs = %d, want fresh source ts %d", marker.TsNs, lastTsNs)
|
|
}
|
|
t.Logf("source emits marker{EventNotification:&{}, TsNs:%d} after %d filtered events", marker.TsNs, total)
|
|
}
|