wuchang created SPARK-19547:
-------------------------------

             Summary: KafkaUtil throw 'No current assignment for partition' 
Exception
                 Key: SPARK-19547
                 URL: https://issues.apache.org/jira/browse/SPARK-19547
             Project: Spark
          Issue Type: Question
          Components: DStreams
    Affects Versions: 1.6.1
            Reporter: wuchang


val kafkaParams = Map[String, Object](
      "bootstrap.servers" -> "server110:2181,server110:9092",
      "zookeeper" -> "server110:2181",
      "key.deserializer" -> classOf[StringDeserializer],
      "value.deserializer" -> classOf[StringDeserializer],
      "group.id" -> "example",
      "auto.offset.reset" -> "latest",
      "enable.auto.commit" -> (false: java.lang.Boolean)
    )
    val topics = Array("ABTest")
    val stream = KafkaUtils.createDirectStream[String, String](
      ssc,
      PreferConsistent,
      Subscribe[String, String](topics, kafkaParams)
    )

This is my code to create a kafka stream.After run for 10 hours, it throws 
exceptions:

2017-02-10 10:56:20,000 INFO  [JobGenerator] internals.ConsumerCoordinator: 
Revoking previously assigned partitions [ABTest-0, ABTest-1] for group example
2017-02-10 10:56:20,000 INFO  [JobGenerator] internals.AbstractCoordinator: 
(Re-)joining group example
2017-02-10 10:56:20,011 INFO  [JobGenerator] internals.AbstractCoordinator: 
(Re-)joining group example
2017-02-10 10:56:40,057 INFO  [JobGenerator] internals.AbstractCoordinator: 
Successfully joined group example with generation 5
2017-02-10 10:56:40,058 INFO  [JobGenerator] internals.ConsumerCoordinator: 
Setting newly assigned partitions [ABTest-1] for group example
2017-02-10 10:56:40,080 ERROR [JobScheduler] scheduler.JobScheduler: Error 
generating jobs for time 1486695380000 ms
java.lang.IllegalStateException: No current assignment for partition ABTest-0
        at 
org.apache.kafka.clients.consumer.internals.SubscriptionState.assignedState(SubscriptionState.java:231)
        at 
org.apache.kafka.clients.consumer.internals.SubscriptionState.needOffsetReset(SubscriptionState.java:295)
        at 
org.apache.kafka.clients.consumer.KafkaConsumer.seekToEnd(KafkaConsumer.java:1169)
        at 
org.apache.spark.streaming.kafka010.DirectKafkaInputDStream.latestOffsets(DirectKafkaInputDStream.scala:179)
        at 
org.apache.spark.streaming.kafka010.DirectKafkaInputDStream.compute(DirectKafkaInputDStream.scala:196)
        at 
org.apache.spark.streaming.dstream.DStream$$anonfun$getOrCompute$1$$anonfun$1$$anonfun$apply$7.apply(DStream.scala:341)
        at 
org.apache.spark.streaming.dstream.DStream$$anonfun$getOrCompute$1$$anonfun$1$$anonfun$apply$7.apply(DStream.scala:341)
        at scala.util.DynamicVariable.withValue(DynamicVariable.scala:58)
        at 
org.apache.spark.streaming.dstream.DStream$$anonfun$getOrCompute$1$$anonfun$1.apply(DStream.scala:340)
        at 
org.apache.spark.streaming.dstream.DStream$$anonfun$getOrCompute$1$$anonfun$1.apply(DStream.scala:340)
        at 
org.apache.spark.streaming.dstream.DStream.createRDDWithLocalProperties(DStream.scala:415)
        at 
org.apache.spark.streaming.dstream.DStream$$anonfun$getOrCompute$1.apply(DStream.scala:335)
        at 
org.apache.spark.streaming.dstream.DStream$$anonfun$getOrCompute$1.apply(DStream.scala:333)
        at scala.Option.orElse(Option.scala:289)
        at 
org.apache.spark.streaming.dstream.DStream.getOrCompute(DStream.scala:330)
        at 
org.apache.spark.streaming.dstream.ForEachDStream.generateJob(ForEachDStream.scala:48)
        at 
org.apache.spark.streaming.DStreamGraph$$anonfun$1.apply(DStreamGraph.scala:117)
        at 
org.apache.spark.streaming.DStreamGraph$$anonfun$1.apply(DStreamGraph.scala:116)
        at 
scala.collection.TraversableLike$$anonfun$flatMap$1.apply(TraversableLike.scala:241)
        at 
scala.collection.TraversableLike$$anonfun$flatMap$1.apply(TraversableLike.scala:241)
        at 
scala.collection.mutable.ResizableArray$class.foreach(ResizableArray.scala:59)
        at scala.collection.mutable.ArrayBuffer.foreach(ArrayBuffer.scala:48)
        at 
scala.collection.TraversableLike$class.flatMap(TraversableLike.scala:241)
        at scala.collection.AbstractTraversable.flatMap(Traversable.scala:104)
        at 
org.apache.spark.streaming.DStreamGraph.generateJobs(DStreamGraph.scala:116)
        at 
org.apache.spark.streaming.scheduler.JobGenerator$$anonfun$3.apply(JobGenerator.scala:248)
        at 
org.apache.spark.streaming.scheduler.JobGenerator$$anonfun$3.apply(JobGenerator.scala:246)
        at scala.util.Try$.apply(Try.scala:192)
        at 
org.apache.spark.streaming.scheduler.JobGenerator.generateJobs(JobGenerator.scala:246)
        at 
org.apache.spark.streaming.scheduler.JobGenerator.org$apache$spark$streaming$scheduler$JobGenerator$$processEvent(JobGenerator.scala:182)
        at 
org.apache.spark.streaming.scheduler.JobGenerator$$anon$1.onReceive(JobGenerator.scala:88)
        at 
org.apache.spark.streaming.scheduler.JobGenerator$$anon$1.onReceive(JobGenerator.scala:87)
        at org.apache.spark.util.EventLoop$$anon$1.run(EventLoop.scala:48)


Obviously , The partition ABTestMsg-0 has already be revoked for this consumer, 
but it seems that the spark streaming consumer are not aware that  and continue 
to consume data from it , so the exception occurs and the total spark job 
aborted.

I think the kafka rebalance is very normal , how can Spark streaming deal with 
the rebalance and partition-revoked cases ?



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