8

I have a dataframe column period that has values by Quarters(Q1,Q2,Q3,Q4) that I want to convert into associated month (see dict). My code below works however wondering why I'm getting this warning.

A value is trying to be set on a copy of a slice from a DataFrame. Try using .loc[row_indexer,col_indexer] = value instead

quarter = {"Q1":"Mar","Q2":"Jun","Q3":"Sep","Q4":"Dec"}
df['period'] = df['period'].astype(str).map(quarter)
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"A value is trying to be set on a copy of a slice from a DataFrame" is a warning. SO contains many posts on this subject.

df.assign was added in Pandas 0.16 and is a good way to avoid this warning.

quarter = {"Q1": "Mar", "Q2": "Jun", "Q3": "Sep", "Q4": "Dec"}
df = pd.DataFrame({'period': ['Q1', 'Q2', 'Q3', 'Q4', 'Q5'], 'qtr': [1, 2, 3, 4, 5]})

df
  period  qtr
0     Q1    1
1     Q2    2
2     Q3    3
3     Q4    4
4     Q5    5

df = df.assign(period=[quarter.get(q, q) for q in df.period])

# Unmapped values unchanged.
>>> df
  period  qtr
0    Mar    1
1    Jun    2
2    Sep    3
3    Dec    4
4     Q5    5

df = pd.DataFrame({'period': ['Q1', 'Q2', 'Q3', 'Q4', 'Q5'], 'qtr': [1, 2, 3, 4, 5]})
df = df.assign(period=df.period.map(quarter))

# Unmapped values get `NaN`.
>>> df
  period  qtr
0    Mar    1
1    Jun    2
2    Sep    3
3    Dec    4
4    NaN    5

Assign new columns to a DataFrame, returning a new object (a copy) with all the original columns in addition to the new ones.

.. versionadded:: 0.16.0

  • I think in earlier versions the warning is shown incorrectly sometimes. I am not getting the warning in pandas 0.18.0. But good to learn about assign. – ayhan Apr 29 '16 at 5:13
  • This answer fits perfectly. Compared to other situations which trigger this error, this one doesn't have a filtering step. This one works well for when you chain multiple operations to create a newly computed column. – blue_chip Jan 31 at 15:10
  • what if I want to add a column in-place? e.g when iterating inside a method over a list of DataFrames, I want the change to apply in-place to the input list. the syntax df['new_col'] = pd.Series(some_vals) works as I want, but I still get this warning – Itamar Katz Jun 27 at 7:30

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