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scala - Change nullable property of column in spark dataframe

I'm manually creating a dataframe for some testing. The code to create it is:

case class input(id:Long, var1:Int, var2:Int, var3:Double)
val inputDF = sqlCtx
  .createDataFrame(List(input(1110,0,1001,-10.00),
    input(1111,1,1001,10.00),
    input(1111,0,1002,10.00)))

So the schema looks like this:

root
 |-- id: long (nullable = false)
 |-- var1: integer (nullable = false)
 |-- var2: integer (nullable = false)
 |-- var3: double (nullable = false)

I want to make 'nullable = true' for each one of these variable. How do I declare that from the start or switch it in a new dataframe after it's been created?

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1 Answer

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Answer

With the imports

import org.apache.spark.sql.types.{StructField, StructType}
import org.apache.spark.sql.{DataFrame, SQLContext}
import org.apache.spark.{SparkConf, SparkContext}

you can use

/**
 * Set nullable property of column.
 * @param df source DataFrame
 * @param cn is the column name to change
 * @param nullable is the flag to set, such that the column is  either nullable or not
 */
def setNullableStateOfColumn( df: DataFrame, cn: String, nullable: Boolean) : DataFrame = {

  // get schema
  val schema = df.schema
  // modify [[StructField] with name `cn`
  val newSchema = StructType(schema.map {
    case StructField( c, t, _, m) if c.equals(cn) => StructField( c, t, nullable = nullable, m)
    case y: StructField => y
  })
  // apply new schema
  df.sqlContext.createDataFrame( df.rdd, newSchema )
}

directly.

Also you can make the method available via the "pimp my library" library pattern ( see my SO post What is the best way to define custom methods on a DataFrame? ), such that you can call

val df = ....
val df2 = df.setNullableStateOfColumn( "id", true )

Edit

Alternative solution 1

Use a slight modified version of setNullableStateOfColumn

def setNullableStateForAllColumns( df: DataFrame, nullable: Boolean) : DataFrame = {
  // get schema
  val schema = df.schema
  // modify [[StructField] with name `cn`
  val newSchema = StructType(schema.map {
    case StructField( c, t, _, m) ? StructField( c, t, nullable = nullable, m)
  })
  // apply new schema
  df.sqlContext.createDataFrame( df.rdd, newSchema )
}

Alternative solution 2

Explicitely define the schema. (Use reflection to create a solution that is more general)

configuredUnitTest("Stackoverflow.") { sparkContext =>

  case class Input(id:Long, var1:Int, var2:Int, var3:Double)

  val sqlContext = new SQLContext(sparkContext)
  import sqlContext.implicits._


  // use this to set the schema explicitly or
  // use refelection on the case class member to construct the schema
  val schema = StructType( Seq (
    StructField( "id", LongType, true),
    StructField( "var1", IntegerType, true),
    StructField( "var2", IntegerType, true),
    StructField( "var3", DoubleType, true)
  ))

  val is: List[Input] = List(
    Input(1110, 0, 1001,-10.00),
    Input(1111, 1, 1001, 10.00),
    Input(1111, 0, 1002, 10.00)
  )

  val rdd: RDD[Input] =  sparkContext.parallelize( is )
  val rowRDD: RDD[Row] = rdd.map( (i: Input) ? Row(i.id, i.var1, i.var2, i.var3))
  val inputDF = sqlContext.createDataFrame( rowRDD, schema ) 

  inputDF.printSchema
  inputDF.show()
}

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