14

I'm trying to replace some NaN values in my data with an empty list []. However the list is represented as a str and doesn't allow me to properly apply the len() function. is there anyway to replace a NaN value with an actual empty list in pandas?

In [28]: d = pd.DataFrame({'x' : [[1,2,3], [1,2], np.NaN, np.NaN], 'y' : [1,2,3,4]})

In [29]: d
Out[29]:
           x  y
0  [1, 2, 3]  1
1     [1, 2]  2
2        NaN  3
3        NaN  4

In [32]: d.x.replace(np.NaN, '[]', inplace=True)

In [33]: d
Out[33]:
           x  y
0  [1, 2, 3]  1
1     [1, 2]  2
2         []  3
3         []  4

In [34]: d.x.apply(len)
Out[34]:
0    3
1    2
2    2
3    2
Name: x, dtype: int64
22

This works using isnull and loc to mask the series:

In [90]:
d.loc[d.isnull()] = d.loc[d.isnull()].apply(lambda x: [])
d

Out[90]:
0    [1, 2, 3]
1       [1, 2]
2           []
3           []
dtype: object

In [91]:
d.apply(len)

Out[91]:
0    3
1    2
2    0
3    0
dtype: int64

You have to do this using apply in order for the list object to not be interpreted as an array to assign back to the df which will try to align the shape back to the original series

EDIT

Using your updated sample the following works:

In [100]:
d.loc[d['x'].isnull(),['x']] = d.loc[d['x'].isnull(),'x'].apply(lambda x: [])
d

Out[100]:
           x  y
0  [1, 2, 3]  1
1     [1, 2]  2
2         []  3
3         []  4

In [102]:    
d['x'].apply(len)

Out[102]:
0    3
1    2
2    0
3    0
Name: x, dtype: int64
| improve this answer | |
2

To extend the accepted answer, apply calls can be particularly expensive - the same task can be accomplished without it by constructing a numpy array from scratch.

isna = df['x'].isna()
df.loc[isna, 'x'] = pd.Series([[]] * isna.sum()).values

A quick timing comparison:

def empty_assign_1(s):
    s.isna().apply(lambda x: [])

def empty_assign_2(s):
    pd.Series([[]] * s.isna().sum()).values

series = pd.Series(np.random.choice([1, 2, np.nan], 1000000))

%timeit empty_assign_1(series)
>>> 172 ms ± 2.29 ms per loop (mean ± std. dev. of 7 runs, 10 loops each)

%timeit empty_assign_2(series)
>>> 19.5 ms ± 116 µs per loop (mean ± std. dev. of 7 runs, 100 loops each)

Nearly 10 times faster!

| improve this answer | |
2

You can also use a list comprehension for this:

d['x'] = [ [] if x is np.NaN else x for x in d['x'] ]
| improve this answer | |

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.