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As part of a unit test, I need to test two DataFrames for equality. The order of the columns in the DataFrames is not important to me. However, it seems to matter to Pandas:

import pandas
df1 = pandas.DataFrame(index = [1,2,3,4])
df2 = pandas.DataFrame(index = [1,2,3,4])
df1['A'] = [1,2,3,4]
df1['B'] = [2,3,4,5]
df2['B'] = [2,3,4,5]
df2['A'] = [1,2,3,4]
df1 == df2

Results in:

Exception: Can only compare identically-labeled DataFrame objects

I believe the expression df1 == df2 should evaluate to a DataFrame containing all True values. Obviously it's debatable what the correct functionality of == should be in this context. My question is: Is there a Pandas method that does what I want? That is, is there a way to do equality comparison that ignores column order?

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2  
you can force the columns to be the same using this: df1 == df2.reindex(columns=df1.columns) –  Zelazny7 Jan 8 '13 at 21:44
    
@Zelazny7 actually that won't always do it, e.g. if df2 has additional columns to df1. –  Andy Hayden Jan 8 '13 at 21:53

3 Answers 3

up vote 3 down vote accepted

You could sort the columns using sort:

df1.sort(axis=1) == df2.sort(axis=1)

This will evaluate to a dataframe of all True values.

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The most common intent is handled like this:

def assertFrameEqual(df1, df2, **kwds ):
    """ Assert that two dataframes are equal, ignoring ordering of columns"""
    from pandas.util.testing import assert_frame_equal
    return assert_frame_equal(df1.sort(axis=1), df2.sort(axis=1), check_names=True, **kwds )

Of course see pandas.util.testing.assert_frame_equal for other parameters you can pass

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def equal( df1, df2 ):
    """ Check if two DataFrames are equal, ignoring nans """
    return df1.fillna(1).sort(axis=1).eq(df2.fillna(1).sort(axis=1)).all().all()
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