I am currently on JRE: 1.8.0_181, Python: 3.6.4, spark: 2.3.2

I am trying to execute following code in Python:

from pyspark.sql import SparkSession

spark = SparkSession.builder.appName('Basics').getOrCreate()

This fails with following error:

spark = SparkSession.builder.appName('Basics').getOrCreate() Traceback (most recent call last): File "", line 1, in File "C:\Tools\Anaconda3\lib\site-packages\pyspark\sql\session.py", line 173, in getOrCreate sc = SparkContext.getOrCreate(sparkConf) File "C:\Tools\Anaconda3\lib\site-packages\pyspark\context.py", line 349, in getOrCreate SparkContext(conf=conf or SparkConf()) File "C:\Tools\Anaconda3\lib\site-packages\pyspark\context.py", line 118, in init conf, jsc, profiler_cls) File "C:\Tools\Anaconda3\lib\site-packages\pyspark\context.py", line 195, in _do_init self._encryption_enabled = self._jvm.PythonUtils.getEncryptionEnabled(self._jsc) File "C:\Tools\Anaconda3\lib\site-packages\py4j\java_gateway.py", line 1487, in getattr "{0}.{1} does not exist in the JVM".format(self._fqn, name)) py4j.protocol.Py4JError: org.apache.spark.api.python.PythonUtils.getEncryptionEnabled does not exist in the JVM

Any one has any idea on what can be a potential issue here?

Appreciate any help or feedback here. Thank you!

As outlined @ pyspark error does not exist in the jvm error when initializing SparkContext, adding PYTHONHOME environment variable (with value as %SPARK_HOME%\python;%SPARK_HOME%\python\lib\py4j--src.zip:%PYTHONPATH%, just check what py4j version you have in your spark/python/lib folder) helped resolve this issue.

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