async_producer.go 25 KB

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  1. package sarama
  2. import (
  3. "fmt"
  4. "sync"
  5. "time"
  6. "github.com/eapache/go-resiliency/breaker"
  7. "github.com/eapache/queue"
  8. )
  9. func forceFlushThreshold() int {
  10. return int(MaxRequestSize - (10 * 1024)) // 10KiB is safety room for misc. overhead, we might want to calculate this more precisely?
  11. }
  12. // AsyncProducer publishes Kafka messages using a non-blocking API. It routes messages
  13. // to the correct broker for the provided topic-partition, refreshing metadata as appropriate,
  14. // and parses responses for errors. You must read from the Errors() channel or the
  15. // producer will deadlock. You must call Close() or AsyncClose() on a producer to avoid
  16. // leaks: it will not be garbage-collected automatically when it passes out of
  17. // scope.
  18. type AsyncProducer interface {
  19. // AsyncClose triggers a shutdown of the producer, flushing any messages it may have
  20. // buffered. The shutdown has completed when both the Errors and Successes channels
  21. // have been closed. When calling AsyncClose, you *must* continue to read from those
  22. // channels in order to drain the results of any messages in flight.
  23. AsyncClose()
  24. // Close shuts down the producer and flushes any messages it may have buffered.
  25. // You must call this function before a producer object passes out of scope, as
  26. // it may otherwise leak memory. You must call this before calling Close on the
  27. // underlying client.
  28. Close() error
  29. // Input is the input channel for the user to write messages to that they wish to send.
  30. Input() chan<- *ProducerMessage
  31. // Successes is the success output channel back to the user when AckSuccesses is enabled.
  32. // If Return.Successes is true, you MUST read from this channel or the Producer will deadlock.
  33. // It is suggested that you send and read messages together in a single select statement.
  34. Successes() <-chan *ProducerMessage
  35. // Errors is the error output channel back to the user. You MUST read from this channel
  36. // or the Producer will deadlock when the channel is full. Alternatively, you can set
  37. // Producer.Return.Errors in your config to false, which prevents errors to be returned.
  38. Errors() <-chan *ProducerError
  39. }
  40. type asyncProducer struct {
  41. client Client
  42. conf *Config
  43. ownClient bool
  44. errors chan *ProducerError
  45. input, successes, retries chan *ProducerMessage
  46. inFlight sync.WaitGroup
  47. brokers map[*Broker]chan *ProducerMessage
  48. brokerRefs map[chan *ProducerMessage]int
  49. brokerLock sync.Mutex
  50. }
  51. // NewAsyncProducer creates a new AsyncProducer using the given broker addresses and configuration.
  52. func NewAsyncProducer(addrs []string, conf *Config) (AsyncProducer, error) {
  53. client, err := NewClient(addrs, conf)
  54. if err != nil {
  55. return nil, err
  56. }
  57. p, err := NewAsyncProducerFromClient(client)
  58. if err != nil {
  59. return nil, err
  60. }
  61. p.(*asyncProducer).ownClient = true
  62. return p, nil
  63. }
  64. // NewAsyncProducerFromClient creates a new Producer using the given client. It is still
  65. // necessary to call Close() on the underlying client when shutting down this producer.
  66. func NewAsyncProducerFromClient(client Client) (AsyncProducer, error) {
  67. // Check that we are not dealing with a closed Client before processing any other arguments
  68. if client.Closed() {
  69. return nil, ErrClosedClient
  70. }
  71. p := &asyncProducer{
  72. client: client,
  73. conf: client.Config(),
  74. errors: make(chan *ProducerError),
  75. input: make(chan *ProducerMessage),
  76. successes: make(chan *ProducerMessage),
  77. retries: make(chan *ProducerMessage),
  78. brokers: make(map[*Broker]chan *ProducerMessage),
  79. brokerRefs: make(map[chan *ProducerMessage]int),
  80. }
  81. // launch our singleton dispatchers
  82. go withRecover(p.dispatcher)
  83. go withRecover(p.retryHandler)
  84. return p, nil
  85. }
  86. type flagSet int8
  87. const (
  88. chaser flagSet = 1 << iota // message is last in a group that failed
  89. shutdown // start the shutdown process
  90. )
  91. // ProducerMessage is the collection of elements passed to the Producer in order to send a message.
  92. type ProducerMessage struct {
  93. Topic string // The Kafka topic for this message.
  94. Key Encoder // The partitioning key for this message. It must implement the Encoder interface. Pre-existing Encoders include StringEncoder and ByteEncoder.
  95. Value Encoder // The actual message to store in Kafka. It must implement the Encoder interface. Pre-existing Encoders include StringEncoder and ByteEncoder.
  96. // These are filled in by the producer as the message is processed
  97. Offset int64 // Offset is the offset of the message stored on the broker. This is only guaranteed to be defined if the message was successfully delivered and RequiredAcks is not NoResponse.
  98. Partition int32 // Partition is the partition that the message was sent to. This is only guaranteed to be defined if the message was successfully delivered.
  99. Metadata interface{} // This field is used to hold arbitrary data you wish to include so it will be available when receiving on the Successes and Errors channels. Sarama completely ignores this field and is only to be used for pass-through data.
  100. retries int
  101. flags flagSet
  102. }
  103. func (m *ProducerMessage) byteSize() int {
  104. size := 26 // the metadata overhead of CRC, flags, etc.
  105. if m.Key != nil {
  106. size += m.Key.Length()
  107. }
  108. if m.Value != nil {
  109. size += m.Value.Length()
  110. }
  111. return size
  112. }
  113. func (m *ProducerMessage) clear() {
  114. m.flags = 0
  115. m.retries = 0
  116. }
  117. // ProducerError is the type of error generated when the producer fails to deliver a message.
  118. // It contains the original ProducerMessage as well as the actual error value.
  119. type ProducerError struct {
  120. Msg *ProducerMessage
  121. Err error
  122. }
  123. func (pe ProducerError) Error() string {
  124. return fmt.Sprintf("kafka: Failed to produce message to topic %s: %s", pe.Msg.Topic, pe.Err)
  125. }
  126. // ProducerErrors is a type that wraps a batch of "ProducerError"s and implements the Error interface.
  127. // It can be returned from the Producer's Close method to avoid the need to manually drain the Errors channel
  128. // when closing a producer.
  129. type ProducerErrors []*ProducerError
  130. func (pe ProducerErrors) Error() string {
  131. return fmt.Sprintf("kafka: Failed to deliver %d messages.", len(pe))
  132. }
  133. func (p *asyncProducer) Errors() <-chan *ProducerError {
  134. return p.errors
  135. }
  136. func (p *asyncProducer) Successes() <-chan *ProducerMessage {
  137. return p.successes
  138. }
  139. func (p *asyncProducer) Input() chan<- *ProducerMessage {
  140. return p.input
  141. }
  142. func (p *asyncProducer) Close() error {
  143. p.AsyncClose()
  144. if p.conf.Producer.Return.Successes {
  145. go withRecover(func() {
  146. for _ = range p.successes {
  147. }
  148. })
  149. }
  150. var errors ProducerErrors
  151. if p.conf.Producer.Return.Errors {
  152. for event := range p.errors {
  153. errors = append(errors, event)
  154. }
  155. }
  156. if len(errors) > 0 {
  157. return errors
  158. }
  159. return nil
  160. }
  161. func (p *asyncProducer) AsyncClose() {
  162. go withRecover(p.shutdown)
  163. }
  164. // singleton
  165. // dispatches messages by topic
  166. func (p *asyncProducer) dispatcher() {
  167. handlers := make(map[string]chan *ProducerMessage)
  168. shuttingDown := false
  169. for msg := range p.input {
  170. if msg == nil {
  171. Logger.Println("Something tried to send a nil message, it was ignored.")
  172. continue
  173. }
  174. if msg.flags&shutdown != 0 {
  175. shuttingDown = true
  176. p.inFlight.Done()
  177. continue
  178. } else if msg.retries == 0 {
  179. if shuttingDown {
  180. // we can't just call returnError here because that decrements the wait group,
  181. // which hasn't been incremented yet for this message, and shouldn't be
  182. pErr := &ProducerError{Msg: msg, Err: ErrShuttingDown}
  183. if p.conf.Producer.Return.Errors {
  184. p.errors <- pErr
  185. } else {
  186. Logger.Println(pErr)
  187. }
  188. continue
  189. }
  190. p.inFlight.Add(1)
  191. }
  192. if (p.conf.Producer.Compression == CompressionNone && msg.Value != nil && msg.Value.Length() > p.conf.Producer.MaxMessageBytes) ||
  193. (msg.byteSize() > p.conf.Producer.MaxMessageBytes) {
  194. p.returnError(msg, ErrMessageSizeTooLarge)
  195. continue
  196. }
  197. handler := handlers[msg.Topic]
  198. if handler == nil {
  199. handler = make(chan *ProducerMessage, p.conf.ChannelBufferSize)
  200. p.newTopicProducer(msg.Topic, handler)
  201. handlers[msg.Topic] = handler
  202. }
  203. handler <- msg
  204. }
  205. for _, handler := range handlers {
  206. close(handler)
  207. }
  208. }
  209. // one per topic
  210. // partitions messages, then dispatches them by partition
  211. type topicProducer struct {
  212. parent *asyncProducer
  213. topic string
  214. input <-chan *ProducerMessage
  215. breaker *breaker.Breaker
  216. handlers map[int32]chan *ProducerMessage
  217. partitioner Partitioner
  218. }
  219. func (p *asyncProducer) newTopicProducer(topic string, input <-chan *ProducerMessage) *topicProducer {
  220. tp := &topicProducer{
  221. parent: p,
  222. topic: topic,
  223. input: input,
  224. breaker: breaker.New(3, 1, 10*time.Second),
  225. handlers: make(map[int32]chan *ProducerMessage),
  226. partitioner: p.conf.Producer.Partitioner(topic),
  227. }
  228. go withRecover(tp.dispatch)
  229. return tp
  230. }
  231. func (tp *topicProducer) dispatch() {
  232. for msg := range tp.input {
  233. if msg.retries == 0 {
  234. if err := tp.partitionMessage(msg); err != nil {
  235. tp.parent.returnError(msg, err)
  236. continue
  237. }
  238. }
  239. handler := tp.handlers[msg.Partition]
  240. if handler == nil {
  241. handler = make(chan *ProducerMessage, tp.parent.conf.ChannelBufferSize)
  242. tp.parent.newPartitionProducer(msg.Topic, msg.Partition, handler)
  243. tp.handlers[msg.Partition] = handler
  244. }
  245. handler <- msg
  246. }
  247. for _, handler := range tp.handlers {
  248. close(handler)
  249. }
  250. }
  251. func (tp *topicProducer) partitionMessage(msg *ProducerMessage) error {
  252. var partitions []int32
  253. err := tp.breaker.Run(func() (err error) {
  254. if tp.partitioner.RequiresConsistency() {
  255. partitions, err = tp.parent.client.Partitions(msg.Topic)
  256. } else {
  257. partitions, err = tp.parent.client.WritablePartitions(msg.Topic)
  258. }
  259. return
  260. })
  261. if err != nil {
  262. return err
  263. }
  264. numPartitions := int32(len(partitions))
  265. if numPartitions == 0 {
  266. return ErrLeaderNotAvailable
  267. }
  268. choice, err := tp.partitioner.Partition(msg, numPartitions)
  269. if err != nil {
  270. return err
  271. } else if choice < 0 || choice >= numPartitions {
  272. return ErrInvalidPartition
  273. }
  274. msg.Partition = partitions[choice]
  275. return nil
  276. }
  277. // one per partition per topic
  278. // dispatches messages to the appropriate broker
  279. // also responsible for maintaining message order during retries
  280. type partitionProducer struct {
  281. parent *asyncProducer
  282. topic string
  283. partition int32
  284. input <-chan *ProducerMessage
  285. leader *Broker
  286. breaker *breaker.Breaker
  287. output chan *ProducerMessage
  288. // highWatermark tracks the "current" retry level, which is the only one where we actually let messages through,
  289. // all other messages get buffered in retryState[msg.retries].buf to preserve ordering
  290. // retryState[msg.retries].expectChaser simply tracks whether we've seen a chaser message for a given level (and
  291. // therefore whether our buffer is complete and safe to flush)
  292. highWatermark int
  293. retryState []partitionRetryState
  294. }
  295. type partitionRetryState struct {
  296. buf []*ProducerMessage
  297. expectChaser bool
  298. }
  299. func (p *asyncProducer) newPartitionProducer(topic string, partition int32, input <-chan *ProducerMessage) *partitionProducer {
  300. pp := &partitionProducer{
  301. parent: p,
  302. topic: topic,
  303. partition: partition,
  304. input: input,
  305. breaker: breaker.New(3, 1, 10*time.Second),
  306. retryState: make([]partitionRetryState, p.conf.Producer.Retry.Max+1),
  307. }
  308. go withRecover(pp.dispatch)
  309. return pp
  310. }
  311. func (pp *partitionProducer) dispatch() {
  312. // try to prefetch the leader; if this doesn't work, we'll do a proper call to `updateLeader`
  313. // on the first message
  314. pp.leader, _ = pp.parent.client.Leader(pp.topic, pp.partition)
  315. if pp.leader != nil {
  316. pp.output = pp.parent.getBrokerProducer(pp.leader)
  317. }
  318. for msg := range pp.input {
  319. if msg.retries > pp.highWatermark {
  320. // a new, higher, retry level; handle it and then back off
  321. pp.newHighWatermark(msg.retries)
  322. time.Sleep(pp.parent.conf.Producer.Retry.Backoff)
  323. } else if pp.highWatermark > 0 {
  324. // we are retrying something (else highWatermark would be 0) but this message is not a *new* retry level
  325. if msg.retries < pp.highWatermark {
  326. // in fact this message is not even the current retry level, so buffer it for now (unless it's a just a chaser)
  327. if msg.flags&chaser == chaser {
  328. pp.retryState[msg.retries].expectChaser = false
  329. pp.parent.inFlight.Done() // this chaser is now handled and will be garbage collected
  330. } else {
  331. pp.retryState[msg.retries].buf = append(pp.retryState[msg.retries].buf, msg)
  332. }
  333. continue
  334. } else if msg.flags&chaser == chaser {
  335. // this message is of the current retry level (msg.retries == highWatermark) and the chaser flag is set,
  336. // meaning this retry level is done and we can go down (at least) one level and flush that
  337. pp.retryState[pp.highWatermark].expectChaser = false
  338. pp.flushRetryBuffers()
  339. pp.parent.inFlight.Done() // this chaser is now handled and will be garbage collected
  340. continue
  341. }
  342. }
  343. // if we made it this far then the current msg contains real data, and can be sent to the next goroutine
  344. // without breaking any of our ordering guarantees
  345. if pp.output == nil {
  346. if err := pp.updateLeader(); err != nil {
  347. pp.parent.returnError(msg, err)
  348. time.Sleep(pp.parent.conf.Producer.Retry.Backoff)
  349. continue
  350. }
  351. Logger.Printf("producer/leader/%s/%d selected broker %d\n", pp.topic, pp.partition, pp.leader.ID())
  352. }
  353. pp.output <- msg
  354. }
  355. if pp.output != nil {
  356. pp.parent.unrefBrokerProducer(pp.leader, pp.output)
  357. }
  358. }
  359. func (pp *partitionProducer) newHighWatermark(hwm int) {
  360. Logger.Printf("producer/leader/%s/%d state change to [retrying-%d]\n", pp.topic, pp.partition, hwm)
  361. pp.highWatermark = hwm
  362. // send off a chaser so that we know when everything "in between" has made it
  363. // back to us and we can safely flush the backlog (otherwise we risk re-ordering messages)
  364. pp.retryState[pp.highWatermark].expectChaser = true
  365. pp.parent.inFlight.Add(1) // we're generating a chaser message; track it so we don't shut down while it's still inflight
  366. pp.output <- &ProducerMessage{Topic: pp.topic, Partition: pp.partition, flags: chaser, retries: pp.highWatermark - 1}
  367. // a new HWM means that our current broker selection is out of date
  368. Logger.Printf("producer/leader/%s/%d abandoning broker %d\n", pp.topic, pp.partition, pp.leader.ID())
  369. pp.parent.unrefBrokerProducer(pp.leader, pp.output)
  370. pp.output = nil
  371. }
  372. func (pp *partitionProducer) flushRetryBuffers() {
  373. Logger.Printf("producer/leader/%s/%d state change to [flushing-%d]\n", pp.topic, pp.partition, pp.highWatermark)
  374. for {
  375. pp.highWatermark--
  376. if pp.output == nil {
  377. if err := pp.updateLeader(); err != nil {
  378. pp.parent.returnErrors(pp.retryState[pp.highWatermark].buf, err)
  379. goto flushDone
  380. }
  381. Logger.Printf("producer/leader/%s/%d selected broker %d\n", pp.topic, pp.partition, pp.leader.ID())
  382. }
  383. for _, msg := range pp.retryState[pp.highWatermark].buf {
  384. pp.output <- msg
  385. }
  386. flushDone:
  387. pp.retryState[pp.highWatermark].buf = nil
  388. if pp.retryState[pp.highWatermark].expectChaser {
  389. Logger.Printf("producer/leader/%s/%d state change to [retrying-%d]\n", pp.topic, pp.partition, pp.highWatermark)
  390. break
  391. } else if pp.highWatermark == 0 {
  392. Logger.Printf("producer/leader/%s/%d state change to [normal]\n", pp.topic, pp.partition)
  393. break
  394. }
  395. }
  396. }
  397. func (pp *partitionProducer) updateLeader() error {
  398. return pp.breaker.Run(func() (err error) {
  399. if err = pp.parent.client.RefreshMetadata(pp.topic); err != nil {
  400. return err
  401. }
  402. if pp.leader, err = pp.parent.client.Leader(pp.topic, pp.partition); err != nil {
  403. return err
  404. }
  405. pp.output = pp.parent.getBrokerProducer(pp.leader)
  406. return nil
  407. })
  408. }
  409. // one per broker
  410. // groups messages together into appropriately-sized batches for sending to the broker
  411. // based on https://godoc.org/github.com/eapache/channels#BatchingChannel
  412. func (p *asyncProducer) messageAggregator(broker *Broker, input <-chan *ProducerMessage) {
  413. var (
  414. timer <-chan time.Time
  415. buffer []*ProducerMessage
  416. flushTriggered chan []*ProducerMessage
  417. bytesAccumulated int
  418. defaultFlush bool
  419. )
  420. if p.conf.Producer.Flush.Frequency == 0 && p.conf.Producer.Flush.Bytes == 0 && p.conf.Producer.Flush.Messages == 0 {
  421. defaultFlush = true
  422. }
  423. output := make(chan []*ProducerMessage)
  424. go withRecover(func() { p.flusher(broker, output) })
  425. for {
  426. select {
  427. case msg := <-input:
  428. if msg == nil {
  429. goto shutdown
  430. }
  431. if (bytesAccumulated+msg.byteSize() >= forceFlushThreshold()) ||
  432. (p.conf.Producer.Compression != CompressionNone && bytesAccumulated+msg.byteSize() >= p.conf.Producer.MaxMessageBytes) ||
  433. (p.conf.Producer.Flush.MaxMessages > 0 && len(buffer) >= p.conf.Producer.Flush.MaxMessages) {
  434. Logger.Printf("producer/aggregator/%d maximum request accumulated, forcing blocking flush\n", broker.ID())
  435. output <- buffer
  436. timer = nil
  437. buffer = nil
  438. flushTriggered = nil
  439. bytesAccumulated = 0
  440. }
  441. buffer = append(buffer, msg)
  442. bytesAccumulated += msg.byteSize()
  443. if defaultFlush ||
  444. msg.flags&chaser == chaser ||
  445. (p.conf.Producer.Flush.Messages > 0 && len(buffer) >= p.conf.Producer.Flush.Messages) ||
  446. (p.conf.Producer.Flush.Bytes > 0 && bytesAccumulated >= p.conf.Producer.Flush.Bytes) {
  447. flushTriggered = output
  448. } else if p.conf.Producer.Flush.Frequency > 0 && timer == nil {
  449. timer = time.After(p.conf.Producer.Flush.Frequency)
  450. }
  451. case <-timer:
  452. flushTriggered = output
  453. case flushTriggered <- buffer:
  454. timer = nil
  455. buffer = nil
  456. flushTriggered = nil
  457. bytesAccumulated = 0
  458. }
  459. }
  460. shutdown:
  461. if len(buffer) > 0 {
  462. output <- buffer
  463. }
  464. close(output)
  465. }
  466. // one per broker
  467. // takes a batch at a time from the messageAggregator and sends to the broker
  468. func (p *asyncProducer) flusher(broker *Broker, input <-chan []*ProducerMessage) {
  469. var closing error
  470. currentRetries := make(map[string]map[int32]error)
  471. Logger.Printf("producer/flusher/%d starting up\n", broker.ID())
  472. for batch := range input {
  473. if closing != nil {
  474. p.retryMessages(batch, closing)
  475. continue
  476. }
  477. // group messages by topic/partition
  478. msgSets := make(map[string]map[int32][]*ProducerMessage)
  479. for i, msg := range batch {
  480. if currentRetries[msg.Topic] != nil && currentRetries[msg.Topic][msg.Partition] != nil {
  481. if msg.flags&chaser == chaser {
  482. // we can start processing this topic/partition again
  483. Logger.Printf("producer/flusher/%d state change to [normal] on %s/%d\n",
  484. broker.ID(), msg.Topic, msg.Partition)
  485. currentRetries[msg.Topic][msg.Partition] = nil
  486. }
  487. p.retryMessages([]*ProducerMessage{msg}, currentRetries[msg.Topic][msg.Partition])
  488. batch[i] = nil // to prevent it being returned/retried twice
  489. continue
  490. }
  491. partitionSet := msgSets[msg.Topic]
  492. if partitionSet == nil {
  493. partitionSet = make(map[int32][]*ProducerMessage)
  494. msgSets[msg.Topic] = partitionSet
  495. }
  496. partitionSet[msg.Partition] = append(partitionSet[msg.Partition], msg)
  497. }
  498. request := p.buildRequest(msgSets)
  499. if request == nil {
  500. continue
  501. }
  502. response, err := broker.Produce(request)
  503. switch err.(type) {
  504. case nil:
  505. break
  506. case PacketEncodingError:
  507. p.returnErrors(batch, err)
  508. continue
  509. default:
  510. Logger.Printf("producer/flusher/%d state change to [closing] because %s\n", broker.ID(), err)
  511. p.abandonBrokerConnection(broker)
  512. _ = broker.Close()
  513. closing = err
  514. p.retryMessages(batch, err)
  515. continue
  516. }
  517. if response == nil {
  518. // this only happens when RequiredAcks is NoResponse, so we have to assume success
  519. p.returnSuccesses(batch)
  520. continue
  521. }
  522. // we iterate through the blocks in the request, not the response, so that we notice
  523. // if the response is missing a block completely
  524. for topic, partitionSet := range msgSets {
  525. for partition, msgs := range partitionSet {
  526. block := response.GetBlock(topic, partition)
  527. if block == nil {
  528. p.returnErrors(msgs, ErrIncompleteResponse)
  529. continue
  530. }
  531. switch block.Err {
  532. case ErrNoError:
  533. // All the messages for this topic-partition were delivered successfully!
  534. for i := range msgs {
  535. msgs[i].Offset = block.Offset + int64(i)
  536. }
  537. p.returnSuccesses(msgs)
  538. case ErrUnknownTopicOrPartition, ErrNotLeaderForPartition, ErrLeaderNotAvailable,
  539. ErrRequestTimedOut, ErrNotEnoughReplicas, ErrNotEnoughReplicasAfterAppend:
  540. Logger.Printf("producer/flusher/%d state change to [retrying] on %s/%d because %v\n",
  541. broker.ID(), topic, partition, block.Err)
  542. if currentRetries[topic] == nil {
  543. currentRetries[topic] = make(map[int32]error)
  544. }
  545. currentRetries[topic][partition] = block.Err
  546. p.retryMessages(msgs, block.Err)
  547. default:
  548. p.returnErrors(msgs, block.Err)
  549. }
  550. }
  551. }
  552. }
  553. Logger.Printf("producer/flusher/%d shut down\n", broker.ID())
  554. }
  555. // singleton
  556. // effectively a "bridge" between the flushers and the dispatcher in order to avoid deadlock
  557. // based on https://godoc.org/github.com/eapache/channels#InfiniteChannel
  558. func (p *asyncProducer) retryHandler() {
  559. var msg *ProducerMessage
  560. buf := queue.New()
  561. for {
  562. if buf.Length() == 0 {
  563. msg = <-p.retries
  564. } else {
  565. select {
  566. case msg = <-p.retries:
  567. case p.input <- buf.Peek().(*ProducerMessage):
  568. buf.Remove()
  569. continue
  570. }
  571. }
  572. if msg == nil {
  573. return
  574. }
  575. buf.Add(msg)
  576. }
  577. }
  578. // utility functions
  579. func (p *asyncProducer) shutdown() {
  580. Logger.Println("Producer shutting down.")
  581. p.inFlight.Add(1)
  582. p.input <- &ProducerMessage{flags: shutdown}
  583. p.inFlight.Wait()
  584. if p.ownClient {
  585. err := p.client.Close()
  586. if err != nil {
  587. Logger.Println("producer/shutdown failed to close the embedded client:", err)
  588. }
  589. }
  590. close(p.input)
  591. close(p.retries)
  592. close(p.errors)
  593. close(p.successes)
  594. }
  595. func (p *asyncProducer) buildRequest(batch map[string]map[int32][]*ProducerMessage) *ProduceRequest {
  596. req := &ProduceRequest{RequiredAcks: p.conf.Producer.RequiredAcks, Timeout: int32(p.conf.Producer.Timeout / time.Millisecond)}
  597. empty := true
  598. for topic, partitionSet := range batch {
  599. for partition, msgSet := range partitionSet {
  600. setToSend := new(MessageSet)
  601. setSize := 0
  602. for _, msg := range msgSet {
  603. var keyBytes, valBytes []byte
  604. var err error
  605. if msg.Key != nil {
  606. if keyBytes, err = msg.Key.Encode(); err != nil {
  607. p.returnError(msg, err)
  608. continue
  609. }
  610. }
  611. if msg.Value != nil {
  612. if valBytes, err = msg.Value.Encode(); err != nil {
  613. p.returnError(msg, err)
  614. continue
  615. }
  616. }
  617. if p.conf.Producer.Compression != CompressionNone && setSize+msg.byteSize() > p.conf.Producer.MaxMessageBytes {
  618. // compression causes message-sets to be wrapped as single messages, which have tighter
  619. // size requirements, so we have to respect those limits
  620. valBytes, err := encode(setToSend)
  621. if err != nil {
  622. Logger.Println(err) // if this happens, it's basically our fault.
  623. panic(err)
  624. }
  625. req.AddMessage(topic, partition, &Message{Codec: p.conf.Producer.Compression, Key: nil, Value: valBytes})
  626. setToSend = new(MessageSet)
  627. setSize = 0
  628. }
  629. setSize += msg.byteSize()
  630. setToSend.addMessage(&Message{Codec: CompressionNone, Key: keyBytes, Value: valBytes})
  631. empty = false
  632. }
  633. if p.conf.Producer.Compression == CompressionNone {
  634. req.AddSet(topic, partition, setToSend)
  635. } else {
  636. valBytes, err := encode(setToSend)
  637. if err != nil {
  638. Logger.Println(err) // if this happens, it's basically our fault.
  639. panic(err)
  640. }
  641. req.AddMessage(topic, partition, &Message{Codec: p.conf.Producer.Compression, Key: nil, Value: valBytes})
  642. }
  643. }
  644. }
  645. if empty {
  646. return nil
  647. }
  648. return req
  649. }
  650. func (p *asyncProducer) returnError(msg *ProducerMessage, err error) {
  651. msg.clear()
  652. pErr := &ProducerError{Msg: msg, Err: err}
  653. if p.conf.Producer.Return.Errors {
  654. p.errors <- pErr
  655. } else {
  656. Logger.Println(pErr)
  657. }
  658. p.inFlight.Done()
  659. }
  660. func (p *asyncProducer) returnErrors(batch []*ProducerMessage, err error) {
  661. for _, msg := range batch {
  662. if msg != nil {
  663. p.returnError(msg, err)
  664. }
  665. }
  666. }
  667. func (p *asyncProducer) returnSuccesses(batch []*ProducerMessage) {
  668. for _, msg := range batch {
  669. if msg == nil {
  670. continue
  671. }
  672. if p.conf.Producer.Return.Successes {
  673. msg.clear()
  674. p.successes <- msg
  675. }
  676. p.inFlight.Done()
  677. }
  678. }
  679. func (p *asyncProducer) retryMessages(batch []*ProducerMessage, err error) {
  680. for _, msg := range batch {
  681. if msg == nil {
  682. continue
  683. }
  684. if msg.retries >= p.conf.Producer.Retry.Max {
  685. p.returnError(msg, err)
  686. } else {
  687. msg.retries++
  688. p.retries <- msg
  689. }
  690. }
  691. }
  692. func (p *asyncProducer) getBrokerProducer(broker *Broker) chan *ProducerMessage {
  693. p.brokerLock.Lock()
  694. defer p.brokerLock.Unlock()
  695. bp := p.brokers[broker]
  696. if bp == nil {
  697. bp = make(chan *ProducerMessage)
  698. p.brokers[broker] = bp
  699. p.brokerRefs[bp] = 0
  700. go withRecover(func() { p.messageAggregator(broker, bp) })
  701. }
  702. p.brokerRefs[bp]++
  703. return bp
  704. }
  705. func (p *asyncProducer) unrefBrokerProducer(broker *Broker, bp chan *ProducerMessage) {
  706. p.brokerLock.Lock()
  707. defer p.brokerLock.Unlock()
  708. p.brokerRefs[bp]--
  709. if p.brokerRefs[bp] == 0 {
  710. close(bp)
  711. delete(p.brokerRefs, bp)
  712. if p.brokers[broker] == bp {
  713. delete(p.brokers, broker)
  714. }
  715. }
  716. }
  717. func (p *asyncProducer) abandonBrokerConnection(broker *Broker) {
  718. p.brokerLock.Lock()
  719. defer p.brokerLock.Unlock()
  720. delete(p.brokers, broker)
  721. }