Github user icexelloss commented on a diff in the pull request:
https://github.com/apache/spark/pull/18732#discussion_r142486439
--- Diff: python/pyspark/sql/group.py ---
@@ -194,6 +194,37 @@ def pivot(self, pivot_col, values=None):
jgd = self._jgd.pivot(pivot_col, values)
return GroupedData(jgd, self.sql_ctx)
+ def apply(self, udf_obj):
+ """
+ Maps each group of the current [[DataFrame]] using a pandas udf
and returns the result
+ as a :class:`DataFrame`.
+
+ """
+ from pyspark.sql.functions import pandas_udf
+
+ if not udf_obj._vectorized:
--- End diff --
I ended up checking `hasattr(input, 'func')` to check if it's a valid
input. It's not great but I don't what's better though.
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