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Apache Spark is an open source distributed data processing engine written in Scala providing a unified API and distributed data sets to users. Use Cases for Apache Spark often are related to machine/deep learning, graph processing.

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1
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I supposed the problem is that you have to cache the result of your RDD before doing any action on it. Spark build a DAG that represents the execution of your program. Each node is a transformation o …
answered Sep 13 '16 by riccardo.cardin
1
vote
1answer
In a program I am developing using Spark 2.3 in Scala, I have an RDD[List[Double]]. Every List[Double] have the same size. I can't figure out how to perform a transformation that given the RDD [1.0, …
asked Jun 5 '18 by riccardo.cardin
12
votes
Clearly Rating cannot be Serializable, because it contains references to Spark structures (i.e. SparkSession, SparkConf, etc.) as attributes. The problem here is in JavaRDD<Rating> ratingsRD = spark …
answered Nov 8 '16 by riccardo.cardin
2
votes
Apache Spark has a functional approach to the elaboration of data. Fundamentally, an RDD[T] is some sort of collection of objects (RDD stands for Resilient Distributed Data structure). Following the …
answered May 23 '16 by riccardo.cardin
4
votes
As far as I know, Joda has some problem with default serialization offered by Apache Spark. In particular the problem is with the Kryo serializer. You can have a look to this SO thread. Anyway, try …
answered Mar 1 '16 by riccardo.cardin
0
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0answers
we're having some unexpected behaviour from a program written in Scala that uses Apache Spark. In particular, we are defining a Scala object like the following: object MyObject { // A constant that …
asked Feb 29 '16 by riccardo.cardin
0
votes
1answer
I am using Apache Spark to process a huge amount of data. I need to execute many Spark actions on the same RDD. My code looks like the following: val rdd = /* Get the rdd using the SparkContext */ va …
asked Jan 14 '16 by riccardo.cardin
1
vote
2answers
I am developing some code using the Scala API of Apache Spark and I am trying to smartly resolve a basic transformation between RDDs that contains some Option[T]. Let's say that we have the following …
asked Feb 10 '16 by riccardo.cardin
0
votes
1answer
I have an RDD[Try[T]] and I want to trasnfRDD that contains only the element of type Failure[T], which means all the element for which the method isFailure returns true. By now, I found the following …
asked Sep 8 '16 by riccardo.cardin
2
votes
1answer
I have a problem with the join or cogroup methods on RDD. In detail, I have to join two RDDs and one of them is an RDD of a generic type, used with wildcard. val indexedMeasures = measures.map(m => ( …
asked Jan 20 '16 by riccardo.cardin
0
votes
0answers
I am trying to develop some exotic transformation on a Spark RDD. In detail, inside a map, I am using org.apache.commons.lang.SerializationUtils to clone a complex object. Here is the code: val rdd: …
asked Sep 15 '16 by riccardo.cardin
3
votes
0answers
I know that Apache Spark was primarly developed to analyze unstructured data. However, I have to read and process a huge XML file (greater than 1GB) and I have to use Apache Spark as a requirement. G …
asked Nov 28 '15 by riccardo.cardin
0
votes
1answer
I have a problem. I have a Spark RDD that I have to store inside an HBase table. We use the Apache-phoenix layer to dialog with the database. There a column of the table that is defined as an UNSIGNED …
asked Jul 29 '15 by riccardo.cardin
2
votes
1answer
I am trying to understand how Apache Spark works behind the scenes. After coding a little in Spark I am pretty quite sure that it implements the RDD as RMI Remote objects, doesn't it? In this way, it …
asked Apr 6 '16 by riccardo.cardin
0
votes
2answers
in a Spark process I have an RDD[Try[(A, B)]]. I have to transform this RDD using a function f: B => List[C]. What I want to obtain is an RDD[Try[(A, B, C)], in which I have to flatMap the list obtain …
asked Aug 22 '16 by riccardo.cardin

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