43

I would like to create an empty DataFrame with a MultiIndex before assigning rows to it. I already found that empty DataFrames don't like to be assigned MultiIndexes on the fly, so I'm setting the MultiIndex names during creation. However, I don't want to assign levels, as this will be done later. This is the best code I got to so far:

def empty_multiindex(names):
    """
    Creates empty MultiIndex from a list of level names.
    """
    return MultiIndex.from_tuples(tuples=[(None,) * len(names)], names=names)

Which gives me

In [2]:

empty_multiindex(['one','two', 'three'])

Out[2]:

MultiIndex(levels=[[], [], []],
           labels=[[-1, -1, -1], [-1, -1, -1], [-1, -1, -1]],
           names=[u'one', u'two', u'three'])

and

In [3]:
DataFrame(index=empty_multiindex(['one','two', 'three']))

Out[3]:
one two three
NaN NaN NaN

Well, I have no use for these NaNs. I can easily drop them later, but this is obviously a hackish solution. Anyone has a better one?

8
  • 1
    Why do you want to do this? Feb 3, 2015 at 6:22
  • @AndyHayden I'm trying to write a general enough function to handle arbitrary numbers of names. My assignment is to create frequency tables with very arbitrary and whimsical totals and subtotals and subsubtotals that can be folded and unfolded in a dashboard. Creating dataframes before passing them to Django makes my life easier.
    – dmvianna
    Feb 3, 2015 at 6:29
  • Why do this as a MI rather than a columns? Generally pandas is pretty bad at updating on a row by row basis (as it has to copy the entirety of the data each time). Could you make it a MI later (after construction)? Feb 3, 2015 at 6:35
  • @AndyHayden it is more convenient and readable to create labels by assignment (df2.loc[(name, key2, True), :] = df1.loc[(key1, key2), :].sum()) than to torture a Series before assignment by appending to it. And maintaining parallel DataFrames for Indexes and data would be even worse.
    – dmvianna
    Feb 3, 2015 at 23:02
  • 2
    @AndyHayden A dict won't give me pandas DataFrame indexing and methods such as sum() that I can combine with indexing. I agree that there could be a better solution (such as creating an object from scratch that does what I want). But at this point I'm optimising for developer time rather than processing time.
    – dmvianna
    Feb 5, 2015 at 2:13

4 Answers 4

54

The solution is to leave out the labels. This works fine for me:

>>> my_index = pd.MultiIndex(levels=[[],[],[]],
                             labels=[[],[],[]],
                             names=[u'one', u'two', u'three'])
>>> my_index
MultiIndex(levels=[[], [], []],
           labels=[[], [], []],
           names=[u'one', u'two', u'three'])
>>> my_columns = [u'alpha', u'beta']
>>> df = pd.DataFrame(index=my_index, columns=my_columns)
>>> df
Empty DataFrame
Columns: [alpha, beta]
Index: []
>>> df.loc[('apple','banana','cherry'),:] = [0.1, 0.2]
>>> df
                    alpha beta
one   two    three            
apple banana cherry   0.1  0.2

Hope that helps!

For Pandas Version >= 0.25.1: The keyword labels has been replaced with codes

3
  • 4
    [[],[],[]] can be replaced with [[]]*3 if desired.
    – JoseOrtiz3
    Apr 9, 2017 at 3:52
  • 1
    This throws a deprecation warning on Pandas '0.25.1'.
    – buechel
    Sep 18, 2019 at 10:04
  • 10
    @buechel the keyword labels has been replaced with codes in 0.25.1
    – xuva
    Nov 7, 2019 at 20:53
33

Another solution which is maybe a little simpler is to use the function set_index:

>>> import pandas as pd
>>> df = pd.DataFrame(columns=['one', 'two', 'three', 'alpha', 'beta'])
>>> df = df.set_index(['one', 'two', 'three'])
>>> df
Empty DataFrame
Columns: [alpha, beta]
Index: []
>>> df.loc[('apple','banana','cherry'),:] = [0.1, 0.2]
>>> df
                    alpha beta
one   two    three            
apple banana cherry   0.1  0.2
0
9

Using pd.MultiIndex.from_tuples may be more straightforward.

import pandas as pd
ind = pd.MultiIndex.from_tuples([], names=(u'one', u'two', u'three'))
df = pd.DataFrame(columns=['alpha', 'beta'], index=ind)
df.loc[('apple','banana','cherry'), :] = [4, 3]
df

                      alpha beta
one     two     three       
apple   banana  cherry    4    3
1
  • 1
    Way easier because you don't need to pass $n$ empty lists... Feb 25 at 4:09
3

Using pd.MultiIndex.from_arrays allows for a slightly more concise solution when defining the index explicitly:

import pandas as pd
ind = pd.MultiIndex.from_arrays([[]] * 3, names=(u'one', u'two', u'three'))
df = pd.DataFrame(columns=['alpha', 'beta'], index=ind)
df.loc[('apple','banana','cherry'), :] = [4, 3]

                     alpha  beta
one   two    three              
apple banana cherry      4     3

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