4

I have a DataFrame called source, a table from mysql

val source = sqlContext.read.jdbc(jdbcUrl, "source", connectionProperties)

I have converted it to rdd by

val sourceRdd = source.rdd

but its RDD[Row] I need RDD[String] to do transformations like

source.map(rec => (rec.split(",")(0).toInt, rec)), .subtractByKey(), etc..

Thank you

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  • Can you include the output of source.printSchema? I'd like to show you how to avoid going at RDD level (which you should not do at all cost). – Jacek Laskowski May 19 '17 at 11:44
7

You can use Row. mkString(sep: String): String method in a map call like this :

val sourceRdd = source.rdd.map(_.mkString(","))

You can change the "," parameter by whatever you want.

Hope this help you, Best Regards.

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  • If there will be some comma "," inside String, then your method will probably fail – T. Gawęda May 19 '17 at 11:49
  • @T.Gawęda If you're talking about the string we wanna make, so we have to avoid the "," and changed it by another separator – Haroun Mohammedi May 19 '17 at 11:51
2

What is your schema?

If it's just a String, you can use:

import spark.implicits._
val sourceDS = source.as[String]
val sourceRdd = sourceDS.rdd // will give RDD[String]

Note: use sqlContext instead of spark in Spark 1.6 - spark is a SparkSession, which is a new class in Spark 2.0 and is a new entry point to SQL functionality. It should be used instead of SQLContext in Spark 2.x

You can also create own case classes.

Also you can map rows - here source is of type DataFrame, we use partial function in map function:

val sourceRdd = source.rdd.map { case x : Row => x(0).asInstanceOf[String] }.map(s => s.split(","))
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  • I tried the first method it throwing error --Unable to find encoder for type stored in a Dataset. Primitive types (Int, String, etc) and Product types (case classes) are supported by importing sqlContext.implicits._ Support for serializing other types will be added in future releases. not enough arguments for method as: (implicit evidence$1: org.apache.spark.sql.Encoder[String])org.apache.spark.sql.Dataset[String]. Unspecified value parameter evidence$1. – Vickyster May 19 '17 at 10:35
  • for the second method --value split is not a member of Any – Vickyster May 19 '17 at 10:36
  • import spark.implicits._ not found: object spark – Vickyster May 19 '17 at 12:10
  • 1
    Sorry, change to sqlContext. I've used Spark 2.0's SparkSession – T. Gawęda May 19 '17 at 12:11

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