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https://issues.apache.org/jira/browse/CRUNCH-485?page=com.atlassian.jira.plugin.system.issuetabpanels:comment-tabpanel&focusedCommentId=14267771#comment-14267771
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Josh Wills commented on CRUNCH-485:
-----------------------------------

I see-- thanks for the example, that clarifies it. I'll take a look at it today 
and see what I can cook up.

> groupByKey on Spark incorrect if key is Avro record with defined sort order
> ---------------------------------------------------------------------------
>
>                 Key: CRUNCH-485
>                 URL: https://issues.apache.org/jira/browse/CRUNCH-485
>             Project: Crunch
>          Issue Type: Bug
>          Components: Core
>    Affects Versions: 0.11.0
>            Reporter: Tycho Lamerigts
>            Assignee: Josh Wills
>
> GroupByKey on Spark is incorrect if the key type is an Avro record with 
> defined sort order (http://avro.apache.org/docs/1.7.7/spec.html#order).
> Instead, it serializes the entire avro record to a binary blob (byte array) 
> and groups identical blobs. This is wrong. By contrast, groupByKey on 
> MapReduce works as expected, so it does take Avro's sort order into account.
> The culprit is probably the following code from 
> org.apache.crunch.impl.spark.collect.PGroupedTableImpl#getJavaRDDLikeInternal
> {code}
> groupedRDD = parentRDD.map(new PairMapFunction(ptype.getOutputMapFn(), 
> runtime.getRuntimeContext()))
>           .mapToPair(new MapOutputFunction(keySerde, valueSerde))
>           .groupByKey(numPartitions);
> {code}
> where MapOutputFunction simply converts the entire key object to a binary 
> blob, without taking sort order into account.



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