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Home/ Questions/Q 8609785
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Editorial Team
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Editorial Team
Asked: June 12, 20262026-06-12T03:57:54+00:00 2026-06-12T03:57:54+00:00

I have a pandas dataframe in which one column of text strings contains comma-separated

  • 0

I have a pandas dataframe in which one column of text strings contains comma-separated values. I want to split each CSV field and create a new row per entry (assume that CSV are clean and need only be split on ‘,’). For example, a should become b:

In [7]: a
Out[7]: 
    var1  var2
0  a,b,c     1
1  d,e,f     2

In [8]: b
Out[8]: 
  var1  var2
0    a     1
1    b     1
2    c     1
3    d     2
4    e     2
5    f     2

So far, I have tried various simple functions, but the .apply method seems to only accept one row as return value when it is used on an axis, and I can’t get .transform to work. Any suggestions would be much appreciated!

Example data:

from pandas import DataFrame
import numpy as np
a = DataFrame([{'var1': 'a,b,c', 'var2': 1},
               {'var1': 'd,e,f', 'var2': 2}])
b = DataFrame([{'var1': 'a', 'var2': 1},
               {'var1': 'b', 'var2': 1},
               {'var1': 'c', 'var2': 1},
               {'var1': 'd', 'var2': 2},
               {'var1': 'e', 'var2': 2},
               {'var1': 'f', 'var2': 2}])

I know this won’t work because we lose DataFrame meta-data by going through numpy, but it should give you a sense of what I tried to do:

def fun(row):
    letters = row['var1']
    letters = letters.split(',')
    out = np.array([row] * len(letters))
    out['var1'] = letters
a['idx'] = range(a.shape[0])
z = a.groupby('idx')
z.transform(fun)
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1 Answer

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  1. Editorial Team
    Editorial Team
    2026-06-12T03:57:55+00:00Added an answer on June 12, 2026 at 3:57 am

    How about something like this:

    In [55]: pd.concat([Series(row['var2'], row['var1'].split(','))              
                        for _, row in a.iterrows()]).reset_index()
    Out[55]: 
      index  0
    0     a  1
    1     b  1
    2     c  1
    3     d  2
    4     e  2
    5     f  2
    

    Then you just have to rename the columns

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