13

I have a data frame that records responses of 19717 people's choice of programing languages through multiple choice questions. The first column is of course the gender of the respondent while the rest are the choices they picked. And hence if I pick Python then my response will be recorded in Python column and not bash and vice versa.

ID     Gender              Python    Bash    R    JavaScript    C++
0      Male                Python    nan     nan  JavaScript    nan
1      Female              nan       nan     R    JavaScript    C++
2      Prefer not to say   Python    Bash    nan  nan           nan
3      Male                nan       nan     nan  nan           nan

What I want is a table that returns the number of instances each of the category under Gender records. Hence if 5000 men coded in Python and 3000 women in JS, then I should get this:

Gender              Python    Bash    R    JavaScript    C++
Male                5000      1000    800  1500          1000
Female              4000      500     1500 3000          800
Prefer Not To Say   2000      ...   ...    ...           860

I have tried some of the options:

df.iloc[:, [*range(0, 13)]].stack().value_counts()

Male                       16138
Python                     12841
SQL                         6532
R                           4588
Female                      3212
Java                        2267
C++                         2256
Javascript                  2174
Bash                        2037
C                           1672
MATLAB                      1516
Other                       1148
TypeScript                   389
Prefer not to say            318
None                          83
Prefer to self-describe       49
dtype: int64

And it's not what is required as described above. Can this be done in pandas?

7

Another idea would be to apply join values along axis 1, get_dummies then groupby:

(df.loc[:, 'Python':]
 .apply(lambda x: '|'.join(x.dropna()), axis=1)
 .str.get_dummies('|')
 .groupby(df['Gender']).sum())

[out]

                   Bash  C++  JavaScript  Python  R
Gender                                             
Female                0    1           1       0  1
Male                  0    0           1       1  0
Prefer not to say     1    0           0       1  0
6

You can set Gender as index and sum:

s = df.set_index('Gender').iloc[:, 1:]
s.eq(s.columns).astype(int).sum(level=0)

Output:

                   Python  Bash  R  JavaScript  C++
Gender                                             
Male                    1     0  0           1    0
Female                  0     0  1           1    1
Prefer not to say       1     1  0           0    0
  • For some reason this is returning all 0s for every Gender index. – Shiv_90 Nov 26 at 9:43
4

Assume your nan is NaN (i.e. it is not string), we may take advantage of count because it ignores NaN to get desired output

df_out = df.iloc[:,2:].groupby(df.Gender, sort=False).count()

Out[175]:
                   Python  Bash  R  JavaScript  C++
Gender
Male                    1     0  0           1    0
Female                  0     0  1           1    1
Prefer not to say       1     1  0           0    0
3

You can melt and use crosstab

df1 = pd.melt(df,id_vars=['ID','Gender'],var_name='Language',value_name='Choice')
df1['Choice'] = np.where(df1['Choice'] == df1['Language'],1,0)
final= pd.crosstab(df1['Gender'],df1['Language'],values=df1['Choice'],aggfunc='sum')

print(final)
Language              Bash  C++  JavaScript  Python  R
Gender                                              
Female                  0    1           1       0  1
Male                    0    0           1       1  0
Prefer not to say       1    0           0       1  0
2

Let us push to one line

df.drop('ID',1).melt('Gender').\
    query('variable==value').\
      groupby(['Gender','variable']).size().unstack(fill_value=0)
Out[120]: 
variable        Bash  C++  JavaScript  Python  R
Gender                                          
Female             0    1           1       0  1
Male               0    0           1       1  0
Prefernottosay     1    0           0       1  0

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