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Merge pull request #2494 from tomwilkie/remote-write-sharding
Dynamically reshard the QueueManager based on observed load.
This commit is contained in:
commit
40e41a4776
66
storage/remote/ewma.go
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66
storage/remote/ewma.go
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@ -0,0 +1,66 @@
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// Copyright 2013 The Prometheus Authors
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// Licensed under the Apache License, Version 2.0 (the "License");
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// you may not use this file except in compliance with the License.
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// You may obtain a copy of the License at
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//
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// http://www.apache.org/licenses/LICENSE-2.0
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//
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// Unless required by applicable law or agreed to in writing, software
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// distributed under the License is distributed on an "AS IS" BASIS,
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// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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// See the License for the specific language governing permissions and
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// limitations under the License.
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package remote
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import (
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"sync"
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"sync/atomic"
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"time"
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)
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// ewmaRate tracks an exponentially weighted moving average of a per-second rate.
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type ewmaRate struct {
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newEvents int64
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alpha float64
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interval time.Duration
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lastRate float64
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init bool
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mutex sync.Mutex
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}
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func newEWMARate(alpha float64, interval time.Duration) ewmaRate {
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return ewmaRate{
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alpha: alpha,
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interval: interval,
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}
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}
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// rate returns the per-second rate.
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func (r *ewmaRate) rate() float64 {
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r.mutex.Lock()
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defer r.mutex.Unlock()
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return r.lastRate
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}
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// tick assumes to be called every r.interval.
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func (r *ewmaRate) tick() {
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newEvents := atomic.LoadInt64(&r.newEvents)
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atomic.AddInt64(&r.newEvents, -newEvents)
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instantRate := float64(newEvents) / r.interval.Seconds()
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r.mutex.Lock()
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defer r.mutex.Unlock()
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if r.init {
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r.lastRate += r.alpha * (instantRate - r.lastRate)
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} else {
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r.init = true
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r.lastRate = instantRate
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}
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}
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// inc counts one event.
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func (r *ewmaRate) incr(incr int64) {
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atomic.AddInt64(&r.newEvents, incr)
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}
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@ -14,6 +14,7 @@
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package remote
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import (
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"math"
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"sync"
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"time"
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@ -32,13 +33,28 @@ const (
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subsystem = "remote_storage"
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queue = "queue"
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defaultShards = 10
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// With a maximum of 1000 shards, assuming an average of 100ms remote write
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// time and 100 samples per batch, we will be able to push 1M samples/s.
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defaultMaxShards = 1000
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defaultMaxSamplesPerSend = 100
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// The queue capacity is per shard.
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defaultQueueCapacity = 100 * 1024 / defaultShards
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// defaultQueueCapacity is per shard - at 1000 shards, this will buffer
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// 100M samples. It is configured to buffer 1000 batches, which at 100ms
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// per batch is 1:40mins.
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defaultQueueCapacity = defaultMaxSamplesPerSend * 1000
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defaultBatchSendDeadline = 5 * time.Second
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logRateLimit = 0.1 // Limit to 1 log event every 10s
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logBurst = 10
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// We track samples in/out and how long pushes take using an Exponentially
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// Weighted Moving Average.
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ewmaWeight = 0.2
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shardUpdateDuration = 10 * time.Second
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// Allow 30% too many shards before scaling down.
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shardToleranceFraction = 0.3
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// Limit to 1 log event every 10s
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logRateLimit = 0.1
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logBurst = 10
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)
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var (
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@ -97,6 +113,15 @@ var (
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},
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[]string{queue},
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)
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numShards = prometheus.NewGaugeVec(
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prometheus.GaugeOpts{
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Namespace: namespace,
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Subsystem: subsystem,
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Name: "shards",
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Help: "The number of shards used for parallel sending to the remote storage.",
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},
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[]string{queue},
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)
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)
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func init() {
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@ -106,6 +131,7 @@ func init() {
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prometheus.MustRegister(sentBatchDuration)
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prometheus.MustRegister(queueLength)
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prometheus.MustRegister(queueCapacity)
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prometheus.MustRegister(numShards)
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}
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// StorageClient defines an interface for sending a batch of samples to an
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@ -120,7 +146,7 @@ type StorageClient interface {
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// QueueManagerConfig configures a storage queue.
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type QueueManagerConfig struct {
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QueueCapacity int // Number of samples to buffer per shard before we start dropping them.
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Shards int // Number of shards, i.e. amount of concurrency.
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MaxShards int // Max number of shards, i.e. amount of concurrency.
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MaxSamplesPerSend int // Maximum number of samples per send.
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BatchSendDeadline time.Duration // Maximum time sample will wait in buffer.
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ExternalLabels model.LabelSet
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@ -132,11 +158,18 @@ type QueueManagerConfig struct {
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// indicated by the provided StorageClient.
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type QueueManager struct {
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cfg QueueManagerConfig
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shards []chan *model.Sample
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wg sync.WaitGroup
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done chan struct{}
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queueName string
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logLimiter *rate.Limiter
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shardsMtx sync.Mutex
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shards *shards
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numShards int
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reshardChan chan int
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quit chan struct{}
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wg sync.WaitGroup
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samplesIn, samplesOut, samplesOutDuration ewmaRate
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integralAccumulator float64
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}
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// NewQueueManager builds a new QueueManager.
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@ -144,8 +177,8 @@ func NewQueueManager(cfg QueueManagerConfig) *QueueManager {
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if cfg.QueueCapacity == 0 {
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cfg.QueueCapacity = defaultQueueCapacity
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}
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if cfg.Shards == 0 {
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cfg.Shards = defaultShards
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if cfg.MaxShards == 0 {
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cfg.MaxShards = defaultMaxShards
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}
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if cfg.MaxSamplesPerSend == 0 {
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cfg.MaxSamplesPerSend = defaultMaxSamplesPerSend
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@ -154,21 +187,22 @@ func NewQueueManager(cfg QueueManagerConfig) *QueueManager {
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cfg.BatchSendDeadline = defaultBatchSendDeadline
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}
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shards := make([]chan *model.Sample, cfg.Shards)
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for i := 0; i < cfg.Shards; i++ {
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shards[i] = make(chan *model.Sample, cfg.QueueCapacity)
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}
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t := &QueueManager{
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cfg: cfg,
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shards: shards,
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done: make(chan struct{}),
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queueName: cfg.Client.Name(),
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logLimiter: rate.NewLimiter(logRateLimit, logBurst),
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}
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cfg: cfg,
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queueName: cfg.Client.Name(),
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logLimiter: rate.NewLimiter(logRateLimit, logBurst),
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numShards: 1,
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reshardChan: make(chan int),
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quit: make(chan struct{}),
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samplesIn: newEWMARate(ewmaWeight, shardUpdateDuration),
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samplesOut: newEWMARate(ewmaWeight, shardUpdateDuration),
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samplesOutDuration: newEWMARate(ewmaWeight, shardUpdateDuration),
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}
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t.shards = t.newShards(t.numShards)
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numShards.WithLabelValues(t.queueName).Set(float64(t.numShards))
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queueCapacity.WithLabelValues(t.queueName).Set(float64(t.cfg.QueueCapacity))
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t.wg.Add(cfg.Shards)
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return t
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}
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@ -193,13 +227,13 @@ func (t *QueueManager) Append(s *model.Sample) error {
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return nil
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}
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fp := snew.Metric.FastFingerprint()
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shard := uint64(fp) % uint64(t.cfg.Shards)
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t.shardsMtx.Lock()
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enqueued := t.shards.enqueue(&snew)
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t.shardsMtx.Unlock()
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select {
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case t.shards[shard] <- &snew:
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if enqueued {
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queueLength.WithLabelValues(t.queueName).Inc()
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default:
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} else {
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droppedSamplesTotal.WithLabelValues(t.queueName).Inc()
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if t.logLimiter.Allow() {
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log.Warn("Remote storage queue full, discarding sample. Multiple subsequent messages of this kind may be suppressed.")
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@ -218,25 +252,186 @@ func (*QueueManager) NeedsThrottling() bool {
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// Start the queue manager sending samples to the remote storage.
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// Does not block.
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func (t *QueueManager) Start() {
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for i := 0; i < t.cfg.Shards; i++ {
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go t.runShard(i)
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}
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t.wg.Add(2)
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go t.updateShardsLoop()
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go t.reshardLoop()
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t.shardsMtx.Lock()
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defer t.shardsMtx.Unlock()
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t.shards.start()
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}
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// Stop stops sending samples to the remote storage and waits for pending
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// sends to complete.
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func (t *QueueManager) Stop() {
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log.Infof("Stopping remote storage...")
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for _, shard := range t.shards {
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close(shard)
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}
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close(t.quit)
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t.wg.Wait()
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t.shardsMtx.Lock()
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defer t.shardsMtx.Unlock()
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t.shards.stop()
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log.Info("Remote storage stopped.")
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}
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func (t *QueueManager) runShard(i int) {
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func (t *QueueManager) updateShardsLoop() {
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defer t.wg.Done()
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shard := t.shards[i]
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ticker := time.Tick(shardUpdateDuration)
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for {
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select {
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case <-ticker:
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t.calculateDesiredShards()
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case <-t.quit:
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return
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}
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}
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}
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func (t *QueueManager) calculateDesiredShards() {
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t.samplesIn.tick()
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t.samplesOut.tick()
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t.samplesOutDuration.tick()
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// We use the number of incoming samples as a prediction of how much work we
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// will need to do next iteration. We add to this any pending samples
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// (received - send) so we can catch up with any backlog. We use the average
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// outgoing batch latency to work out how many shards we need.
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var (
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samplesIn = t.samplesIn.rate()
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samplesOut = t.samplesOut.rate()
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samplesPending = samplesIn - samplesOut
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samplesOutDuration = t.samplesOutDuration.rate()
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)
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// We use an integral accumulator, like in a PID, to help dampen oscillation.
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t.integralAccumulator = t.integralAccumulator + (samplesPending * 0.1)
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if samplesOut <= 0 {
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return
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}
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var (
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timePerSample = samplesOutDuration / samplesOut
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desiredShards = (timePerSample * (samplesIn + samplesPending + t.integralAccumulator)) / float64(time.Second)
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)
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log.Debugf("QueueManager.caclulateDesiredShards samplesIn=%f, samplesOut=%f, samplesPending=%f, desiredShards=%f",
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samplesIn, samplesOut, samplesPending, desiredShards)
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// Changes in the number of shards must be greater than shardToleranceFraction.
|
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var (
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lowerBound = float64(t.numShards) * (1. - shardToleranceFraction)
|
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upperBound = float64(t.numShards) * (1. + shardToleranceFraction)
|
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)
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log.Debugf("QueueManager.updateShardsLoop %f <= %f <= %f", lowerBound, desiredShards, upperBound)
|
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if lowerBound <= desiredShards && desiredShards <= upperBound {
|
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return
|
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}
|
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|
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numShards := int(math.Ceil(desiredShards))
|
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if numShards > t.cfg.MaxShards {
|
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numShards = t.cfg.MaxShards
|
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}
|
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if numShards == t.numShards {
|
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return
|
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}
|
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|
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// Resharding can take some time, and we want this loop
|
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// to stay close to shardUpdateDuration.
|
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select {
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case t.reshardChan <- numShards:
|
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log.Infof("Remote storage resharding from %d to %d shards.", t.numShards, numShards)
|
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t.numShards = numShards
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default:
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log.Infof("Currently resharding, skipping.")
|
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}
|
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}
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func (t *QueueManager) reshardLoop() {
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defer t.wg.Done()
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|
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for {
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select {
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case numShards := <-t.reshardChan:
|
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t.reshard(numShards)
|
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case <-t.quit:
|
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return
|
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}
|
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}
|
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}
|
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|
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func (t *QueueManager) reshard(n int) {
|
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numShards.WithLabelValues(t.queueName).Set(float64(n))
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|
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t.shardsMtx.Lock()
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newShards := t.newShards(n)
|
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oldShards := t.shards
|
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t.shards = newShards
|
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t.shardsMtx.Unlock()
|
||||
|
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oldShards.stop()
|
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|
||||
// We start the newShards after we have stopped (the therefore completely
|
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// flushed) the oldShards, to guarantee we only every deliver samples in
|
||||
// order.
|
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newShards.start()
|
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}
|
||||
|
||||
type shards struct {
|
||||
qm *QueueManager
|
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queues []chan *model.Sample
|
||||
done chan struct{}
|
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wg sync.WaitGroup
|
||||
}
|
||||
|
||||
func (t *QueueManager) newShards(numShards int) *shards {
|
||||
queues := make([]chan *model.Sample, numShards)
|
||||
for i := 0; i < numShards; i++ {
|
||||
queues[i] = make(chan *model.Sample, t.cfg.QueueCapacity)
|
||||
}
|
||||
s := &shards{
|
||||
qm: t,
|
||||
queues: queues,
|
||||
done: make(chan struct{}),
|
||||
}
|
||||
s.wg.Add(numShards)
|
||||
return s
|
||||
}
|
||||
|
||||
func (s *shards) len() int {
|
||||
return len(s.queues)
|
||||
}
|
||||
|
||||
func (s *shards) start() {
|
||||
for i := 0; i < len(s.queues); i++ {
|
||||
go s.runShard(i)
|
||||
}
|
||||
}
|
||||
|
||||
func (s *shards) stop() {
|
||||
for _, shard := range s.queues {
|
||||
close(shard)
|
||||
}
|
||||
s.wg.Wait()
|
||||
}
|
||||
|
||||
func (s *shards) enqueue(sample *model.Sample) bool {
|
||||
s.qm.samplesIn.incr(1)
|
||||
|
||||
fp := sample.Metric.FastFingerprint()
|
||||
shard := uint64(fp) % uint64(len(s.queues))
|
||||
|
||||
select {
|
||||
case s.queues[shard] <- sample:
|
||||
return true
|
||||
default:
|
||||
return false
|
||||
}
|
||||
}
|
||||
|
||||
func (s *shards) runShard(i int) {
|
||||
defer s.wg.Done()
|
||||
queue := s.queues[i]
|
||||
|
||||
// Send batches of at most MaxSamplesPerSend samples to the remote storage.
|
||||
// If we have fewer samples than that, flush them out after a deadline
|
||||
|
@ -245,45 +440,48 @@ func (t *QueueManager) runShard(i int) {
|
|||
|
||||
for {
|
||||
select {
|
||||
case s, ok := <-shard:
|
||||
case sample, ok := <-queue:
|
||||
if !ok {
|
||||
if len(pendingSamples) > 0 {
|
||||
log.Infof("Flushing %d samples to remote storage...", len(pendingSamples))
|
||||
t.sendSamples(pendingSamples)
|
||||
log.Infof("Done flushing.")
|
||||
log.Debugf("Flushing %d samples to remote storage...", len(pendingSamples))
|
||||
s.sendSamples(pendingSamples)
|
||||
log.Debugf("Done flushing.")
|
||||
}
|
||||
return
|
||||
}
|
||||
|
||||
queueLength.WithLabelValues(t.queueName).Dec()
|
||||
pendingSamples = append(pendingSamples, s)
|
||||
queueLength.WithLabelValues(s.qm.queueName).Dec()
|
||||
pendingSamples = append(pendingSamples, sample)
|
||||
|
||||
for len(pendingSamples) >= t.cfg.MaxSamplesPerSend {
|
||||
t.sendSamples(pendingSamples[:t.cfg.MaxSamplesPerSend])
|
||||
pendingSamples = pendingSamples[t.cfg.MaxSamplesPerSend:]
|
||||
for len(pendingSamples) >= s.qm.cfg.MaxSamplesPerSend {
|
||||
s.sendSamples(pendingSamples[:s.qm.cfg.MaxSamplesPerSend])
|
||||
pendingSamples = pendingSamples[s.qm.cfg.MaxSamplesPerSend:]
|
||||
}
|
||||
case <-time.After(t.cfg.BatchSendDeadline):
|
||||
case <-time.After(s.qm.cfg.BatchSendDeadline):
|
||||
if len(pendingSamples) > 0 {
|
||||
t.sendSamples(pendingSamples)
|
||||
s.sendSamples(pendingSamples)
|
||||
pendingSamples = pendingSamples[:0]
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
func (t *QueueManager) sendSamples(s model.Samples) {
|
||||
func (s *shards) sendSamples(samples model.Samples) {
|
||||
// Samples are sent to the remote storage on a best-effort basis. If a
|
||||
// sample isn't sent correctly the first time, it's simply dropped on the
|
||||
// floor.
|
||||
begin := time.Now()
|
||||
err := t.cfg.Client.Store(s)
|
||||
duration := time.Since(begin).Seconds()
|
||||
err := s.qm.cfg.Client.Store(samples)
|
||||
duration := time.Since(begin)
|
||||
|
||||
if err != nil {
|
||||
log.Warnf("error sending %d samples to remote storage: %s", len(s), err)
|
||||
failedSamplesTotal.WithLabelValues(t.queueName).Add(float64(len(s)))
|
||||
log.Warnf("error sending %d samples to remote storage: %s", len(samples), err)
|
||||
failedSamplesTotal.WithLabelValues(s.qm.queueName).Add(float64(len(samples)))
|
||||
} else {
|
||||
sentSamplesTotal.WithLabelValues(t.queueName).Add(float64(len(s)))
|
||||
sentSamplesTotal.WithLabelValues(s.qm.queueName).Add(float64(len(samples)))
|
||||
}
|
||||
sentBatchDuration.WithLabelValues(t.queueName).Observe(duration)
|
||||
sentBatchDuration.WithLabelValues(s.qm.queueName).Observe(duration.Seconds())
|
||||
|
||||
s.qm.samplesOut.incr(int64(len(samples)))
|
||||
s.qm.samplesOutDuration.incr(int64(duration))
|
||||
}
|
||||
|
|
|
@ -98,8 +98,8 @@ func TestSampleDelivery(t *testing.T) {
|
|||
c.expectSamples(samples[:len(samples)/2])
|
||||
|
||||
m := NewQueueManager(QueueManagerConfig{
|
||||
Client: c,
|
||||
Shards: 1,
|
||||
Client: c,
|
||||
MaxShards: 1,
|
||||
})
|
||||
|
||||
// These should be received by the client.
|
||||
|
@ -185,8 +185,10 @@ func (c *TestBlockingStorageClient) Name() string {
|
|||
}
|
||||
|
||||
func (t *QueueManager) queueLen() int {
|
||||
t.shardsMtx.Lock()
|
||||
defer t.shardsMtx.Unlock()
|
||||
queueLength := 0
|
||||
for _, shard := range t.shards {
|
||||
for _, shard := range t.shards.queues {
|
||||
queueLength += len(shard)
|
||||
}
|
||||
return queueLength
|
||||
|
@ -197,7 +199,7 @@ func TestSpawnNotMoreThanMaxConcurrentSendsGoroutines(t *testing.T) {
|
|||
// `MaxSamplesPerSend*Shards` samples should be consumed by the
|
||||
// per-shard goroutines, and then another `MaxSamplesPerSend`
|
||||
// should be left on the queue.
|
||||
n := defaultMaxSamplesPerSend*defaultShards + defaultMaxSamplesPerSend
|
||||
n := defaultMaxSamplesPerSend*1 + defaultMaxSamplesPerSend
|
||||
|
||||
samples := make(model.Samples, 0, n)
|
||||
for i := 0; i < n; i++ {
|
||||
|
@ -214,6 +216,7 @@ func TestSpawnNotMoreThanMaxConcurrentSendsGoroutines(t *testing.T) {
|
|||
m := NewQueueManager(QueueManagerConfig{
|
||||
Client: c,
|
||||
QueueCapacity: n,
|
||||
MaxShards: 1,
|
||||
})
|
||||
|
||||
m.Start()
|
||||
|
@ -250,7 +253,7 @@ func TestSpawnNotMoreThanMaxConcurrentSendsGoroutines(t *testing.T) {
|
|||
}
|
||||
|
||||
numCalls := c.NumCalls()
|
||||
if numCalls != uint64(defaultShards) {
|
||||
t.Errorf("Saw %d concurrent sends, expected %d", numCalls, defaultShards)
|
||||
if numCalls != uint64(1) {
|
||||
t.Errorf("Saw %d concurrent sends, expected 1", numCalls)
|
||||
}
|
||||
}
|
||||
|
|
Loading…
Reference in a new issue