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https://issues.apache.org/jira/browse/BEAM-4783?focusedWorklogId=150798&page=com.atlassian.jira.plugin.system.issuetabpanels:worklog-tabpanel#worklog-150798
]
ASF GitHub Bot logged work on BEAM-4783:
----------------------------------------
Author: ASF GitHub Bot
Created on: 03/Oct/18 16:06
Start Date: 03/Oct/18 16:06
Worklog Time Spent: 10m
Work Description: iemejia commented on a change in pull request #6181:
[BEAM-4783] Add bundleSize for splitting BoundedSources.
URL: https://github.com/apache/beam/pull/6181#discussion_r221672729
##########
File path:
runners/spark/src/main/java/org/apache/beam/runners/spark/translation/GroupCombineFunctions.java
##########
@@ -68,6 +69,32 @@
TranslationUtils.functionToFlatMapFunction(WindowingHelpers.windowFunction()),
true);
}
+ /**
+ * An implementation of {@link
+ * org.apache.beam.runners.core.GroupByKeyViaGroupByKeyOnly.GroupByKeyOnly}
for the Spark runner.
+ * Used only when bundleSize is set in SparkPipelineOptions. Evaluating if
the default Partitioner
+ * causes a reshuffle of the data.
+ */
+ @Experimental
+ public static <K, V>
Review comment:
Is the only difference with the other is the partitioner maybe we can pass
it better as a parameter (to not have repeated code).
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Issue Time Tracking
-------------------
Worklog Id: (was: 150798)
Time Spent: 4h 20m (was: 4h 10m)
> Spark SourceRDD Not Designed With Dynamic Allocation In Mind
> ------------------------------------------------------------
>
> Key: BEAM-4783
> URL: https://issues.apache.org/jira/browse/BEAM-4783
> Project: Beam
> Issue Type: Improvement
> Components: runner-spark
> Reporter: Kyle Winkelman
> Assignee: Kyle Winkelman
> Priority: Major
> Time Spent: 4h 20m
> Remaining Estimate: 0h
>
> When the spark-runner is used along with the configuration
> spark.dynamicAllocation.enabled=true the SourceRDD does not detect this. It
> then falls back to the value calculated in this description:
> // when running on YARN/SparkDeploy it's the result of max(totalCores,
> 2).
> // when running on Mesos it's 8.
> // when running local it's the total number of cores (local = 1,
> local[N] = N,
> // local[*] = estimation of the machine's cores).
> // ** the configuration "spark.default.parallelism" takes precedence
> over all of the above **
> So in most cases this default is quite small. This is an issue when using a
> very large input file as it will only get split in half.
> I believe that when Dynamic Allocation is enable the SourceRDD should use the
> DEFAULT_BUNDLE_SIZE and possibly expose a SparkPipelineOptions that allows
> you to change this DEFAULT_BUNDLE_SIZE.
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