Files
seaweedfs/weed/util/log_buffer/flush_budget_test.go
T
David Christopher a859f0a019 filer: preserve accepted metadata log records on shutdown (#11359)
fix: flush metadata log before closing filer store

Serialize sealed-batch handoffs with shutdown, reject late appends, and wait for log-buffer workers before closing the filer metadata store.

Cover queued writes, interval and explicit flushes, late-write rejection, and pending persistence with shutdown tests.
2026-09-16 12:23:59 -07:00

247 lines
6.8 KiB
Go

package log_buffer
import (
"sync"
"sync/atomic"
"testing"
"time"
"github.com/seaweedfs/seaweedfs/weed/util/mem"
)
func TestFlushBudgetBoundsQueuedBytes(t *testing.T) {
b := newFlushBudget(100)
if got := b.reserve(0, 60); got != 60 {
t.Fatalf("first reserve returned %d, want 60", got)
}
// 60 + 60 is over the limit, so the second producer has to wait.
reserved := make(chan int)
go func() { reserved <- b.reserve(1, 60) }()
select {
case <-reserved:
t.Fatal("second reserve went through while the budget was full")
case <-time.After(50 * time.Millisecond):
}
b.release(60)
select {
case got := <-reserved:
if got != 60 {
t.Errorf("second reserve returned %d, want 60", got)
}
case <-time.After(2 * time.Second):
t.Fatal("second reserve never woke up after the release")
}
}
// A window bigger than the whole budget still has to get through, or an
// oversized entry would wedge the flush loop instead of merely spiking it.
func TestFlushBudgetAdmitsOversizedWindow(t *testing.T) {
b := newFlushBudget(100)
if got := b.reserve(0, 50); got != 50 {
t.Fatalf("reserve returned %d, want 50", got)
}
reserved := make(chan int)
go func() { reserved <- b.reserve(1, 500) }()
select {
case <-reserved:
t.Fatal("oversized reserve went through before the queue drained")
case <-time.After(50 * time.Millisecond):
}
b.release(50)
select {
case got := <-reserved:
if got != 100 {
t.Errorf("oversized reserve booked %d, want the whole %d budget", got, 100)
}
case <-time.After(2 * time.Second):
t.Fatal("oversized reserve never got through on an empty queue")
}
}
// Windows have to reach the flush loop in the order they were sealed. A
// producer can park here for seconds, so letting a later window overtake an
// earlier one would persist them out of order and walk the flushed watermarks
// backwards. Sized so only one window fits at a time, which is what makes the
// admission order observable rather than a race between the woken goroutines.
func TestFlushBudgetAdmitsInSealOrder(t *testing.T) {
const windows = 5
b := newFlushBudget(100)
b.reserve(0, 100) // fills the budget, so every window below has to wait
// Park them in reverse seal order, so arrival order cannot be what produces
// the right answer. Each window needs the whole budget, so exactly one is
// admitted per release and the order is observable.
admitted := make(chan uint64, windows)
for seq := uint64(windows); seq >= 1; seq-- {
go func(seq uint64) {
b.reserve(seq, 100)
admitted <- seq
}(seq)
time.Sleep(20 * time.Millisecond) // let it reach the wait
}
for want := uint64(1); want <= windows; want++ {
select {
case seq := <-admitted:
t.Fatalf("window %d was admitted while the budget was still held", seq)
case <-time.After(20 * time.Millisecond):
}
b.release(100)
select {
case got := <-admitted:
if got != want {
t.Fatalf("admitted window %d, want %d", got, want)
}
case <-time.After(2 * time.Second):
t.Fatalf("window %d never admitted", want)
}
}
}
// Shutdown must not be held up by a producer parked on the budget.
func TestFlushBudgetCloseReleasesWaiters(t *testing.T) {
b := newFlushBudget(100)
b.reserve(0, 100)
done := make(chan struct{})
go func() {
b.reserve(1, 100)
close(done)
}()
select {
case <-done:
t.Fatal("reserve went through while the budget was full")
case <-time.After(50 * time.Millisecond):
}
b.close()
select {
case <-done:
case <-time.After(2 * time.Second):
t.Fatal("close did not release the parked producer")
}
}
// What the queue actually holds is the pooled slab, which mem.Allocate rounds
// up to a size class. Charging the window length instead would let the queue
// retain roughly twice the ceiling.
func TestQueueFlushChargesTheSlabNotTheWindow(t *testing.T) {
stall := make(chan struct{})
lb := NewLogBuffer("slab", time.Hour, func(_ *LogBuffer, _, _ time.Time, _ []byte, _, _ int64) {
<-stall
}, nil, func() {})
defer func() { close(stall); lb.ShutdownLogBuffer() }()
// 5 MiB rounds up to an 8 MiB slot.
const windowSize = 5 << 20
data := mem.Allocate(windowSize)
if cap(data) == len(data) {
t.Skipf("allocator returned an exact fit (%d bytes), nothing to distinguish", cap(data))
}
lb.queueFlush(&dataToFlush{data: data})
lb.flushBudget.mu.Lock()
queued := lb.flushBudget.queued
lb.flushBudget.mu.Unlock()
if queued != cap(data) {
t.Errorf("charged %d bytes for a window holding a %d byte slab (len %d)", queued, cap(data), len(data))
}
}
// The point of the budget: a stalled flush must stop producers rather than let
// them keep handing over copies. Asserted on how many producers get through,
// which is independent of the counter reserve maintains.
func TestStalledFlushBlocksOversizedProducers(t *testing.T) {
stall := make(chan struct{})
var completed atomic.Int64
lb := NewLogBuffer("stalled", time.Hour, func(_ *LogBuffer, _, _ time.Time, _ []byte, _, _ int64) {
<-stall
}, nil, func() {})
// Just over BufferSize is enough to get a window per entry; the package
// leaves plenty of other LogBuffers alive, so keep the footprint small
// enough for a 32-bit runner.
entry := make([]byte, BufferSize+1)
const producers = flushQueueDepth
var wg sync.WaitGroup
for i := 0; i < producers; i++ {
wg.Add(1)
go func() {
defer wg.Done()
if err := lb.AddDataToBuffer(nil, entry, 0); err == nil {
completed.Add(1)
}
}()
}
time.Sleep(2 * time.Second)
got := completed.Load()
// Some have to get through -- a budget that admits nobody is a deadlock,
// not a bound -- and the rest have to be parked.
if got == 0 {
t.Error("no producer got through a stalled flush; the budget deadlocked")
}
if got >= producers {
t.Errorf("all %d producers got through a stalled flush; the budget did not bind", producers)
}
close(stall)
lb.ShutdownLogBuffer()
wg.Wait()
}
// ...and once the flush drains, everyone gets through: the bound must not
// deadlock the producers it parks.
func TestBlockedProducersDrainOnceFlushResumes(t *testing.T) {
stall := make(chan struct{})
var completed atomic.Int64
lb := NewLogBuffer("drain", time.Hour, func(_ *LogBuffer, _, _ time.Time, _ []byte, _, _ int64) {
<-stall
}, nil, func() {})
entry := make([]byte, BufferSize+1)
const producers = 6
var wg sync.WaitGroup
for i := 0; i < producers; i++ {
wg.Add(1)
go func() {
defer wg.Done()
if err := lb.AddDataToBuffer(nil, entry, 0); err == nil {
completed.Add(1)
}
}()
}
time.Sleep(500 * time.Millisecond)
close(stall)
done := make(chan struct{})
go func() { wg.Wait(); close(done) }()
select {
case <-done:
case <-time.After(30 * time.Second):
t.Fatal("producers never drained after the flush resumed")
}
if got := completed.Load(); got != producers {
t.Errorf("%d of %d producers completed", got, producers)
}
lb.ShutdownLogBuffer()
}