Pandas: Modify a particular level of Multiindex
I have a dataframe with Multiindex and would like to modify one particular level of the Multiindex. For instance, the first level might be strings and I may want to remove the white spaces from that index level:
df.index.levels[1] = [x.replace(' ', '') for x in df.index.levels[1]]
However, the code above results in an error:
TypeError: 'FrozenList' does not support mutable operations.
I know I can reset_index and modify the column and then re-create the Multiindex, but I wonder whether there is a more elegant way to modify one particular level of the Multiindex directly.
Answer
Thanks to @cxrodgers's comment, I think the fastest way to do this is:
df.index = df.index.set_levels(df.index.levels[0].str.replace(' ', ''), level=0)
Old, longer answer:
I found that the list comprehension suggested by @Shovalt works but felt slow on my machine (using a dataframe with >10,000 rows).
Instead, I was able to use .set_levels method, which was quite a bit faster for me.
%timeit pd.MultiIndex.from_tuples([(x[0].replace(' ',''), x[1]) for x in df.index])
1 loop, best of 3: 394 ms per loop
%timeit df.index.set_levels(df.index.get_level_values(0).str.replace(' ',''), level=0)
10 loops, best of 3: 134 ms per loop
In actuality, I just needed to prepend some text. This was even faster with .set_levels:
%timeit pd.MultiIndex.from_tuples([('00'+x[0], x[1]) for x in df.index])
100 loops, best of 3: 5.18 ms per loop
%timeit df.index.set_levels('00'+df.index.get_level_values(0), level=0)
1000 loops, best of 3: 1.38 ms per loop
%timeit df.index.set_levels('00'+df.index.levels[0], level=0)
1000 loops, best of 3: 331 µs per loop
This solution is based on the answer in the link from the comment by @denfromufa ...
python - Multiindex and timezone - Frozen list error - Stack Overflow