Selecting columns from pandas MultiIndex

Solution 1:

The most straightforward way is with .loc:

>>> data.loc[:, (['one', 'two'], ['a', 'b'])]


   one       two     
     a    b    a    b
0  0.4 -0.6 -0.7  0.9
1  0.1  0.4  0.5 -0.3
2  0.7 -1.6  0.7 -0.8
3 -0.9  2.6  1.9  0.6

Remember that [] and () have special meaning when dealing with a MultiIndex object:

(...) a tuple is interpreted as one multi-level key

(...) a list is used to specify several keys [on the same level]

(...) a tuple of lists refer to several values within a level

When we write (['one', 'two'], ['a', 'b']), the first list inside the tuple specifies all the values we want from the 1st level of the MultiIndex. The second list inside the tuple specifies all the values we want from the 2nd level of the MultiIndex.

Edit 1: Another possibility is to use slice(None) to specify that we want anything from the first level (works similarly to slicing with : in lists). And then specify which columns from the second level we want.

>>> data.loc[:, (slice(None), ["a", "b"])]

   one       two     
     a    b    a    b
0  0.4 -0.6 -0.7  0.9
1  0.1  0.4  0.5 -0.3
2  0.7 -1.6  0.7 -0.8
3 -0.9  2.6  1.9  0.6

If the syntax slice(None) does appeal to you, then another possibility is to use pd.IndexSlice, which helps slicing frames with more elaborate indices.

>>> data.loc[:, pd.IndexSlice[:, ["a", "b"]]]

   one       two     
     a    b    a    b
0  0.4 -0.6 -0.7  0.9
1  0.1  0.4  0.5 -0.3
2  0.7 -1.6  0.7 -0.8
3 -0.9  2.6  1.9  0.6

When using pd.IndexSlice, we can use : as usual to slice the frame.

Source: MultiIndex / Advanced Indexing, How to use slice(None)

Solution 2:

It's not great, but maybe:

>>> data
        one                           two                    
          a         b         c         a         b         c
0 -0.927134 -1.204302  0.711426  0.854065 -0.608661  1.140052
1 -0.690745  0.517359 -0.631856  0.178464 -0.312543 -0.418541
2  1.086432  0.194193  0.808235 -0.418109  1.055057  1.886883
3 -0.373822 -0.012812  1.329105  1.774723 -2.229428 -0.617690
>>> data.loc[:,data.columns.get_level_values(1).isin({"a", "c"})]
        one                 two          
          a         c         a         c
0 -0.927134  0.711426  0.854065  1.140052
1 -0.690745 -0.631856  0.178464 -0.418541
2  1.086432  0.808235 -0.418109  1.886883
3 -0.373822  1.329105  1.774723 -0.617690

would work?

Solution 3:

You can use either, loc or ix I'll show an example with loc:

data.loc[:, [('one', 'a'), ('one', 'c'), ('two', 'a'), ('two', 'c')]]

When you have a MultiIndexed DataFrame, and you want to filter out only some of the columns, you have to pass a list of tuples that match those columns. So the itertools approach was pretty much OK, but you don't have to create a new MultiIndex:

data.loc[:, list(itertools.product(['one', 'two'], ['a', 'c']))]

Solution 4:

I think there is a much better way (now), which is why I bother pulling this question (which was the top google result) out of the shadows:

data.select(lambda x: x[1] in ['a', 'b'], axis=1)

gives your expected output in a quick and clean one-liner:

        one                 two          
          a         b         a         b
0 -0.341326  0.374504  0.534559  0.429019
1  0.272518  0.116542 -0.085850 -0.330562
2  1.982431 -0.420668 -0.444052  1.049747
3  0.162984 -0.898307  1.762208 -0.101360

It is mostly self-explaining, the [1] refers to the level.