118

I am trying to filter a dataframe in pyspark using a list. I want to either filter based on the list or include only those records with a value in the list. My code below does not work:

# define a dataframe
rdd = sc.parallelize([(0,1), (0,1), (0,2), (1,2), (1,10), (1,20), (3,18), (3,18), (3,18)])
df = sqlContext.createDataFrame(rdd, ["id", "score"])

# define a list of scores
l = [10,18,20]

# filter out records by scores by list l
records = df.filter(df.score in l)
# expected: (0,1), (0,1), (0,2), (1,2)

# include only records with these scores in list l
records = df.where(df.score in l)
# expected: (1,10), (1,20), (3,18), (3,18), (3,18)

Gives the following error: ValueError: Cannot convert column into bool: please use '&' for 'and', '|' for 'or', '~' for 'not' when building DataFrame boolean expressions.

3 Answers 3

171

what it says is "df.score in l" can not be evaluated because df.score gives you a column and "in" is not defined on that column type use "isin"

The code should be like this:

# define a dataframe
rdd = sc.parallelize([(0,1), (0,1), (0,2), (1,2), (1,10), (1,20), (3,18), (3,18), (3,18)])
df = sqlContext.createDataFrame(rdd, ["id", "score"])

# define a list of scores
l = [10,18,20]

# filter out records by scores by list l
records = df.filter(~df.score.isin(l))
# expected: (0,1), (0,1), (0,2), (1,2)

# include only records with these scores in list l
df.filter(df.score.isin(l))
# expected: (1,10), (1,20), (3,18), (3,18), (3,18)

Note that where() is an alias for filter(), so both are interchangeable.

4
  • 4
    How would you do this with a broadcast variable as a list instead of a regular python list? I'm getting a 'Broadcast' object has no attribute '_get_object_id' error when I try and do it that way. Sep 24, 2018 at 21:35
  • @flyingmeatball I think you can broadcast_variable_name.value to access the list Apr 14, 2020 at 1:04
  • 1
    If you want to use broadcasting then the this is the way to go: l_bc = sc.broadcast(l) followed by df.where(df.score.isin(l_bc.value)) Mar 28, 2021 at 7:51
  • If you are trying to filter the dataframe based on a list of column values, this might help: stackoverflow.com/a/66228314/530399 May 13, 2022 at 10:33
64

based on @user3133475 answer, it is also possible to call the isin() function from col() like this:

from pyspark.sql.functions import col


l = [10,18,20]
df.filter(col("score").isin(l))
14

I found the join implementation to be significantly faster than where for large dataframes:

def filter_spark_dataframe_by_list(df, column_name, filter_list):
    """ Returns subset of df where df[column_name] is in filter_list """
    spark = SparkSession.builder.getOrCreate()
    filter_df = spark.createDataFrame(filter_list, df.schema[column_name].dataType)
    return df.join(filter_df, df[column_name] == filter_df["value"])
1
  • why is that so? you have to shuffle tons of data with this? Aug 16, 2023 at 16:01

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