BUG: groupby with dropna=False and 'unique' aggregate creates duplicated index #42016
Closed
2 of 3 tasks
Labels
Apply
Apply, Aggregate, Transform, Map
Bug
good first issue
Groupby
Needs Tests
Unit test(s) needed to prevent regressions
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Code Sample, a copy-pastable example
Problem description
When using 'unique' and another aggregate function in case of a groupby on key containing NA values, the result index contains duplicates but it shouldn't:
Expected Output
Groupby result index shouldn't contain duplicates as below:
Output of
pd.show_versions()
INSTALLED VERSIONS
commit : 2cb9652
python : 3.8.10.final.0
python-bits : 64
OS : Windows
OS-release : 10
Version : 10.0.19042
machine : AMD64
processor : AMD64 Family 23 Model 96 Stepping 1, AuthenticAMD
byteorder : little
LC_ALL : None
LANG : en
LOCALE : English_United Kingdom.1252
pandas : 1.2.4
numpy : 1.20.3
pytz : 2021.1
dateutil : 2.8.1
pip : 21.1.2
setuptools : 49.6.0.post20210108
Cython : None
pytest : 6.2.2
hypothesis : None
sphinx : 4.0.2
blosc : None
feather : None
xlsxwriter : None
lxml.etree : 4.6.2
html5lib : None
pymysql : None
psycopg2 : 2.8.6 (dt dec pq3 ext lo64)
jinja2 : 3.0.1
IPython : 7.24.1
pandas_datareader: None
bs4 : None
bottleneck : None
fsspec : None
fastparquet : None
gcsfs : None
matplotlib : 3.3.2
numexpr : None
odfpy : None
openpyxl : 3.0.5
pandas_gbq : None
pyarrow : None
pyxlsb : None
s3fs : None
scipy : None
sqlalchemy : 1.3.22
tables : None
tabulate : None
xarray : None
xlrd : None
xlwt : None
numba : None
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