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I can't seem to find an elegant way to index a pandas.DataFrame by an integer index. In the following example I want to get the value 'a' from the first element of the 'A' column.

import pandas
df = pandas.DataFrame(
    {'A':['a','b', 'c'], 'B':['f', 'g', 'h']}, 
    index=[10,20,30]
    )

I would expect df['A'].ix[0] and df['A'][10] both to return 'a'. The df['A'][10] does return 'a', but df['A'].ix[0] throws a KeyError: 0. The only way I could think of to get the value 'a' based on the index 0 is to use the following approach.

df['A'][df['A'].index[0]]

Is there a shorter way to get 'a' out of the dataframe, using the 0 index?

Update

As of pandas 0.11 there is a another way to index by integer.

df.iloc[0] # integer based, gives the first row
df.loc[10] # label based, gives the row with label 10

This supersedes the irow approach .

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1 Answer

up vote 7 down vote accepted

You get an error with df['A'].ix[0] because your indexing doesn't start at 0, it starts at 10. You can get the value you want with either of the following

df['A'].ix[10]
df['A'].irow(0)

The first uses by the correct index. The second command, which I suspect is what you want, finds the value by the row number, rather than by index value, and is technically only two characters longer than if df['A'].ix[0] worked.

Alternatively, you can reset the indices so that they will respond the way you expect for df['A'].ix[0]:

df2=df.reset_index()

This will preserve your old indices (10, 20, etc.) by moving them into a column called "index" in the df2 data frame. Then df2['A'].ix[0] will return 'a'. If you want to remove the old 10-based indices, you can insert the flag drop=True into the parenthesis of the reset_index function.

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I think it is df['A'].iget(0) because df['A'] is a Series, which has no irow. –  Eike Mar 9 '13 at 19:40
    
irow() is deprecated. Use iloc[] for position based indexing. –  herrlich10 Feb 7 at 3:57
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