16

Here is my dataframe:

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The underlying RDD has 2 partitions

enter image description here enter image description here

When I do a df.count, the DAG produced is enter image description here

When I do a df.rdd.count, the DAG produced is:

enter image description here

Ques: Count is an action in spark, the official definition is ‘Returns the number of rows in the DataFrame.’. Now, when I perform the count on the dataframe why is a shuffle occurring? Besides, when I do the same on the underlying RDD no shuffle occurs.

It makes no sense to me why a shuffle would occur anyway. I tried to go through the source code of count here spark github But it doesn’t make sense to me fully. Is the “groupby” being supplied to the action the culprit?

PS. df.coalesce(1).count does not cause any shuffle

3 Answers 3

8

It seems that DataFrame's count operation uses groupBy resulting in shuffle. Below is the code from https://github.com/apache/spark/blob/master/sql/core/src/main/scala/org/apache/spark/sql/Dataset.scala

* Returns the number of rows in the Dataset.
* @group action
* @since 1.6.0
*/
def count(): Long = withAction("count", groupBy().count().queryExecution) { 
plan =>
plan.executeCollect().head.getLong(0)
}

While if you look at RDD's count function, it passes on the aggregate function to each of the partitions, which returns the sum of each partition as Array and then use .sum to sum elements of array.

Code snippet from this link: https://github.com/apache/spark/blob/master/core/src/main/scala/org/apache/spark/rdd/RDD.scala

/**
* Return the number of elements in the RDD.
*/
def count(): Long = sc.runJob(this, Utils.getIteratorSize _).sum
1
  • Thanks Pratyush. A few questions: 1. how exactly does "groupBy().count().queryExecution" work? Since groupby and count both are methods? 2.what does the underscore in "sc.runJob(this, Utils.getIteratorSize _)" mean?
    – human
    Nov 10, 2017 at 1:47
5

When spark is doing dataframe operation, it does first compute partial counts for every partition and then having another stage to sum those up together. This is particularly good for large dataframes, where distributing counts to multiple executors actually adds to performance.

The place to verify this is SQL tab of Spark UI, which would have some sort of the following physical plan description:

*HashAggregate(keys=[], functions=[count(1)], output=[count#202L])
+- Exchange SinglePartition
   +- *HashAggregate(keys=[], functions=[partial_count(1)], output=[count#206L])
4
  • That makes some sense. What happens in the case of rdd.count then? Assume rdd has 2 partitions.
    – human
    Nov 9, 2017 at 11:51
  • most likely those RDD partitions were on the same executor at the moment of operation. I'm not aware of deeper details on RDDs, though was heavily looking into mechanics of DFs. one of the practical things of RDDs is that you use them only when you need to transform dataframes or create dataframes from less structured sources. as dataframes are generally faster in working with structured data.
    – nefo_x
    Nov 9, 2017 at 12:22
  • I ran the test on 3 partitioned df and confirm your result that the individual partition counts are being calculated in one stage and then the shuffle is incurred that writes 3 partitions. A following stage reads these 3 partitions and sums them up. However, this kinda doesnt make sense as well: why should the shuffle occur since it looks like a narrow dependency transformation+action.
    – human
    Nov 9, 2017 at 12:35
  • 4
    I am yet to somehow verify it (perhaps visit the code) however I believe the way rdd.count works is where individual partition counts are calculated and sent to driver to do a final sum - all this happens in one stage.
    – human
    Nov 9, 2017 at 12:41
2

In the shuffle stage, the key is empty, and the value is count of the partition, and all these (key,value) pairs are shuffled to one single partition.

That is, the data moved in the shuffle stage is very little.

1
  • So, does Spark keep a count of the raw records in the partition? Apr 2, 2020 at 12:12

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