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For the below dataframe, print data.groupby(['date'])['sales'].sum().max() would return only the maximum value of total sales amongst the given days. How do I find out the date when the maximum sales occurred.

   date      brand   price    quantity      sales   vat
31-May-13   Reebok      10      23          230     3.5
31-May-13   Adidas      10      25          250     2.8
31-May-13   Campus      8       21          168     3.5
31-May-13   Nike        10      20          200     6.5
31-May-13   Woods       2       7           14      2.8
01-Jun-13   Reebok      4       27          108     2.2
01-Jun-13   Adidas      7       28          196     3.8
01-Jun-13   Campus      7       41          287     4.2
01-Jun-13   Nike        2       39          78      7.2
01-Jun-13   Woods       5       26          130     3.3
02-Jun-13   Reebok      10      5           50      2.2
02-Jun-13   Adidas      10      15          150     3.8
02-Jun-13   Campus      6       32          192     4.2
02-Jun-13   Nike        7       13          91      7.2
02-Jun-13   Woods       6       30          180     3.3
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Also a duplicate of this –  TomAugspurger Jun 26 '13 at 19:03

1 Answer 1

up vote 3 down vote accepted

Use .idxmax() instead of .max

Definition: df.idxmax(self, axis=0, skipna=True) Docstring: Return index of first occurrence of maximum over requested axis. NA/null values are excluded.

Parameters

axis : {0, 1} 0 for row-wise, 1 for column-wise skipna : boolean, default True Exclude NA/null values. If an entire row/column is NA, the result will be first index.

Returns

idxmax : Series

Notes

This method is the DataFrame version of ndarray.argmax.

See Also

Series.idxmax

In [19]: data.groupby(['date'])['sales'].sum().idxmax()
Out[19]: '31-May-13'
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