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How can I find the row for which the value of a specific column is maximal?

df.max() will give me the maximal value for each column, I don't know how to get the corresponding row.

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2 Answers

up vote 21 down vote accepted

You just need the argmax() function. It's straightforward:

>>> import pandas
>>> import numpy as np
>>> df = pandas.DataFrame(np.random.randn(5,3),columns=['A','B','C'])
>>> df
          A         B         C
0  1.232853 -1.979459 -0.573626
1  0.140767  0.394940  1.068890
2  0.742023  1.343977 -0.579745
3  2.125299 -0.649328 -0.211692
4 -0.187253  1.908618 -1.862934
>>> df['A'].argmax()
3
>>> df['B'].argmax()
4
>>> df['C'].argmax()
1
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18  
Per github.com/pydata/pandas/issues/2970, argmax is now idxmax. Just leaving the comment for others who stumble onto this question as I did. –  Anov Apr 4 '13 at 19:18
3  
Based on the second-to-last comment there, it looks like argmin and argmax will remain part of DataFrame and the difference is just whether you want the index or the label. idxmax will give you the label of the location where a max occurs. argmax will give you the index integer itself. –  EMS Apr 4 '13 at 19:25
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You might also try idxmax:

In [5]: df = pandas.DataFrame(np.random.randn(10,3),columns=['A','B','C'])

In [6]: df
Out[6]: 
          A         B         C
0  2.001289  0.482561  1.579985
1 -0.991646 -0.387835  1.320236
2  0.143826 -1.096889  1.486508
3 -0.193056 -0.499020  1.536540
4 -2.083647 -3.074591  0.175772
5 -0.186138 -1.949731  0.287432
6 -0.480790 -1.771560 -0.930234
7  0.227383 -0.278253  2.102004
8 -0.002592  1.434192 -1.624915
9  0.404911 -2.167599 -0.452900

In [7]: df.idxmax()
Out[7]: 
A    0
B    8
C    7

e.g.

In [8]: df.ix[df['A'].idxmax()]
Out[8]: 
A    2.001289
B    0.482561
C    1.579985
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Thanks Wes. Documentation for idxmax() here: pandas.pydata.org/pandas-docs/dev/generated/… –  Will Feb 19 at 3:51
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