Could someone help me solve this problem I have with Spark DataFrame?
When I do myFloatRDD.toDF() I get an error:
TypeError: Can not infer schema for type: type ‘float’
I don’t understand why…
Example:
myFloatRdd = sc.parallelize([1.0,2.0,3.0]) df = myFloatRdd.toDF()
Thanks
Answers:
Thank you for visiting the Q&A section on Magenaut. Please note that all the answers may not help you solve the issue immediately. So please treat them as advisements. If you found the post helpful (or not), leave a comment & I’ll get back to you as soon as possible.
Method 1
SparkSession.createDataFrame, which is used under the hood, requires an RDD / list of Row/tuple/list/dictpandas.DataFrame, unless schema with DataType is provided. Try to convert float to tuple like this:
myFloatRdd.map(lambda x: (x, )).toDF()
or even better:
from pyspark.sql import Row
row = Row("val") # Or some other column name
myFloatRdd.map(row).toDF()
To create a DataFrame from a list of scalars you’ll have to use SparkSession.createDataFrame directly and provide a schema***:
from pyspark.sql.types import FloatType df = spark.createDataFrame([1.0, 2.0, 3.0], FloatType()) df.show() ## +-----+ ## |value| ## +-----+ ## | 1.0| ## | 2.0| ## | 3.0| ## +-----+
but for a simple range it would be better to use SparkSession.range:
from pyspark.sql.functions import col
spark.range(1, 4).select(col("id").cast("double"))
* No longer supported.
** Spark SQL also provides a limited support for schema inference on Python objects exposing __dict__.
*** Supported only in Spark 2.0 or later.
Method 2
from pyspark.sql.types import IntegerType, Row mylist = [1, 2, 3, 4, None ] l = map(lambda x : Row(x), mylist) # notice the parens after the type name df=spark.createDataFrame(l,["id"]) df.where(df.id.isNull() == False).show()
Basiclly, you need to init your int into Row(), then we can use the schema
Method 3
Inferring the Schema Using Reflection
from pyspark.sql import Row
# spark - sparkSession
sc = spark.sparkContext
# Load a text file and convert each line to a Row.
orders = sc.textFile("/practicedata/orders")
#Split on delimiters
parts = orders.map(lambda l: l.split(","))
#Convert to Row
orders_struct = parts.map(lambda p: Row(order_id=int(p[0]), order_date=p[1], customer_id=p[2], order_status=p[3]))
for i in orders_struct.take(5): print(i)
#convert the RDD to DataFrame
orders_df = spark.createDataFrame(orders_struct)
Programmatically Specifying the Schema
from pyspark.sql import Row
# spark - sparkSession
sc = spark.sparkContext
# Load a text file and convert each line to a Row.
orders = sc.textFile("/practicedata/orders")
#Split on delimiters
parts = orders.map(lambda l: l.split(","))
#Convert to tuple
orders_struct = parts.map(lambda p: (p[0], p[1], p[2], p[3].strip()))
#convert the RDD to DataFrame
orders_df = spark.createDataFrame(orders_struct)
# The schema is encoded in a string.
schemaString = "order_id order_date customer_id status"
fields = [StructField(field_name, StringType(), True) for field_name in schemaString.split()]
schema = Struct
ordersDf = spark.createDataFrame(orders_struct, schema)
Type(fields)
Method 4
from pyspark.sql import Row myFloatRdd.map(lambda x: Row(x)).toDF()
All methods was sourced from stackoverflow.com or stackexchange.com, is licensed under cc by-sa 2.5, cc by-sa 3.0 and cc by-sa 4.0