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REG: dont call func on empty input #32121

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Feb 21, 2020
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1 change: 1 addition & 0 deletions doc/source/whatsnew/v1.0.2.rst
Original file line number Diff line number Diff line change
Expand Up @@ -20,6 +20,7 @@ Fixed regressions
- Fixed regression in :meth:`pandas.core.groupby.RollingGroupby.apply` where the ``raw`` parameter was ignored (:issue:`31754`)
- Fixed regression in :meth:`rolling(..).corr() <pandas.core.window.Rolling.corr>` when using a time offset (:issue:`31789`)
- Fixed regression in :class:`DataFrame` arithmetic operations with mis-matched columns (:issue:`31623`)
- Fixed regression in :meth:`GroupBy.agg` calling a user-provided function an extra time on an empty input (:issue:`31760`)
-

.. ---------------------------------------------------------------------------
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11 changes: 2 additions & 9 deletions pandas/core/groupby/groupby.py
Original file line number Diff line number Diff line change
Expand Up @@ -923,17 +923,10 @@ def _python_agg_general(self, func, *args, **kwargs):

try:
# if this function is invalid for this dtype, we will ignore it.
func(obj[:0])
result, counts = self.grouper.agg_series(obj, f)
except TypeError:
continue
except AssertionError:
raise
except Exception:
# Our function depends on having a non-empty argument
# See test_groupby_agg_err_catching
pass

result, counts = self.grouper.agg_series(obj, f)

assert result is not None
key = base.OutputKey(label=name, position=idx)
output[key] = self._try_cast(result, obj, numeric_only=True)
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12 changes: 12 additions & 0 deletions pandas/tests/groupby/aggregate/test_aggregate.py
Original file line number Diff line number Diff line change
Expand Up @@ -13,6 +13,18 @@
from pandas.core.groupby.grouper import Grouping


def test_groupby_agg_no_extra_calls():
# GH#31760
df = pd.DataFrame({"key": ["a", "b", "c", "c"], "value": [1, 2, 3, 4]})
gb = df.groupby("key")["value"]

def dummy_func(x):
assert len(x) != 0
return x.sum()

gb.agg(dummy_func)


def test_agg_regression1(tsframe):
grouped = tsframe.groupby([lambda x: x.year, lambda x: x.month])
result = grouped.agg(np.mean)
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