I'm trying to take a hardcoded String and turn it into a 1-row Spark DataFrame (with a single column of type StringType) such that:

String fizz = "buzz"

Would result with a DataFrame whose .show() method looks like:

+-----+
| fizz|
+-----+
| buzz|
+-----+

My best attempt thus far has been:

val rawData = List("fizz")
val df = sqlContext.sparkContext.parallelize(Seq(rawData)).toDF()

df.show()

But I get the following compiler error:

java.lang.ClassCastException: org.apache.spark.sql.types.ArrayType cannot be cast to org.apache.spark.sql.types.StructType
    at org.apache.spark.sql.SQLContext.createDataFrame(SQLContext.scala:413)
    at org.apache.spark.sql.SQLImplicits.rddToDataFrameHolder(SQLImplicits.scala:155)

Any ideas as to where I'm going awry? Also, how do I set "buzz" as the row value for the fizz column?


Update:

Trying:

sqlContext.sparkContext.parallelize(rawData).toDF()

I get a DF that looks like:

+----+
|  _1|
+----+
|buzz|
+----+
up vote 5 down vote accepted

Try:

sqlContext.sparkContext.parallelize(rawData).toDF()

In 2.0 you can:

import spark.implicits._

rawData.toDF

Optionally provide a sequence of names for toDF:

sqlContext.sparkContext.parallelize(rawData).toDF("fizz")
  • Thanks @LostInOverflow (+1) - I think I'm almost there, please see my update. I am getting a single-row DF, with the correct value in it ("buzz" string), but the column name is "_1"...thoughts? – smeeb Oct 10 '16 at 17:36
  • Dataframe is like dataset in tabular format with column/title. In the first case, you created dataframe with no column name specified, so it assigns default columns as "_1", "_2". – KiranM Oct 10 '16 at 22:28

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

Not the answer you're looking for? Browse other questions tagged or ask your own question.