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.