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Separates col1, ..., colk into n rows. Uses column names col0, col1, etc. by default unless specified otherwise.
Syntax
from pyspark.sql import functions as sf
sf.stack(*cols)
Parameters
| Parameter | Type | Description |
|---|---|---|
cols |
pyspark.sql.Column or column name |
The first element should be a literal int for the number of rows to be separated, and the remaining are input elements to be separated. |
Examples
Example 1: Stack with 2 rows
from pyspark.sql import functions as sf
df = spark.createDataFrame([(1, 2, 3)], ['a', 'b', 'c'])
df.select('*', sf.stack(sf.lit(2), df.a, df.b, 'c')).show()
+---+---+---+----+----+
| a| b| c|col0|col1|
+---+---+---+----+----+
| 1| 2| 3| 1| 2|
| 1| 2| 3| 3|NULL|
+---+---+---+----+----+
Example 2: Stack with alias
from pyspark.sql import functions as sf
df = spark.createDataFrame([(1, 2, 3)], ['a', 'b', 'c'])
df.select('*', sf.stack(sf.lit(2), df.a, df.b, 'c').alias('x', 'y')).show()
+---+---+---+---+----+
| a| b| c| x| y|
+---+---+---+---+----+
| 1| 2| 3| 1| 2|
| 1| 2| 3| 3|NULL|
+---+---+---+---+----+
Example 3: Stack with 3 rows
from pyspark.sql import functions as sf
df = spark.createDataFrame([(1, 2, 3)], ['a', 'b', 'c'])
df.select('*', sf.stack(sf.lit(3), df.a, df.b, 'c')).show()
+---+---+---+----+
| a| b| c|col0|
+---+---+---+----+
| 1| 2| 3| 1|
| 1| 2| 3| 2|
| 1| 2| 3| 3|
+---+---+---+----+
Example 4: Stack with 4 rows
from pyspark.sql import functions as sf
df = spark.createDataFrame([(1, 2, 3)], ['a', 'b', 'c'])
df.select('*', sf.stack(sf.lit(4), df.a, df.b, 'c')).show()
+---+---+---+----+
| a| b| c|col0|
+---+---+---+----+
| 1| 2| 3| 1|
| 1| 2| 3| 2|
| 1| 2| 3| 3|
| 1| 2| 3|NULL|
+---+---+---+----+