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I am trying to concat multiple Pandas DataFrame columns with different tokens.

For example, my dataset looks like this :

dataframe = pd.DataFrame({'col_1' : ['aaa','bbb','ccc','ddd'], 
                          'col_2' : ['name_aaa','name_bbb','name_ccc','name_ddd'], 
                          'col_3' : ['job_aaa','job_bbb','job_ccc','job_ddd']})

I want to output something like this:

    features
0   aaa <0> name_aaa <1> job_aaa
1   bbb <0> name_bbb <1> job_bbb
2   ccc <0> name_ccc <1> job_ccc
3   ddd <0> name_ddd <1> job_ddd

Explanation :

concat each column with "<{}>" where {} will be increasing numbers.

What I've tried so far:

I don't want to modify original DataFrame so I created two new dataframe:

features_df = pd.DataFrame()
final_df    = pd.DataFrame()
for iters in range(len(dataframe.columns)):
    features_df[dataframe.columns[iters]] = dataframe[dataframe.columns[iters]] + ' ' + "<{}>".format(iters)
final_df['features'] = features_df[features_df.columns].agg(' '.join, axis=1)

There is an issue I am facing, It's adding <2> at last but I want output like above, also this is not panda's way to do this task, How I can make it more efficient?

8
0
from itertools import chain

dataframe['features'] = dataframe.apply(lambda x: ''.join([*chain.from_iterable((v, f' <{i}> ') for i, v in enumerate(x))][:-1]), axis=1)

print(dataframe)

Prints:

  col_1     col_2    col_3                      features
0   aaa  name_aaa  job_aaa  aaa <0> name_aaa <1> job_aaa
1   bbb  name_bbb  job_bbb  bbb <0> name_bbb <1> job_bbb
2   ccc  name_ccc  job_ccc  ccc <0> name_ccc <1> job_ccc
3   ddd  name_ddd  job_ddd  ddd <0> name_ddd <1> job_ddd
| improve this answer | |
7
0

You can use df.agg to join the columns of the dataframe by passing the optional parameter axis=1. Use:

df['features'] = df.agg(
    lambda s: r' <{}> '.join(s).format(*range(s.size)), axis=1)

Output:

# print(df)
  col_1     col_2    col_3                      features
0   aaa  name_aaa  job_aaa  aaa <0> name_aaa <1> job_aaa
1   bbb  name_bbb  job_bbb  bbb <0> name_bbb <1> job_bbb
2   ccc  name_ccc  job_ccc  ccc <0> name_ccc <1> job_ccc
3   ddd  name_ddd  job_ddd  ddd <0> name_ddd <1> job_ddd
| improve this answer | |
  • 2
    That's clever solution. – Andrej Kesely May 24 at 8:41
  • 1
    @ShubhamSharma Instead of using len(s) since s is a Series so use s.size which will be faster than len or use s.values.size. Nice answer.+1 ;) df.apply over axis 1 is not encouraged I guess df.agg is the way. – Ch3steR May 24 at 9:13
  • Thanks @Ch3steR! Don't know if there is any benefit from using s.size instead of len(s) but i guess according to this post len(s.index) and s.size are same in terms of speed. By the way thanks for suggestion. – Shubham Sharma May 24 at 9:27
3
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def join_(value):
    vals = []
    for i, j in enumerate(value):
        vals.append(j + " <%d>" % i if i < len(value) - 1 else j)
    return " ".join(vals)

# setting axis=1 will pass all columns to the join_ func.
dataframe['featurs'] = dataframe.apply(lambda x: join_(x), axis=1)

print(dataframe)

Output

  col_1     col_2    col_3                       featurs
0   aaa  name_aaa  job_aaa  aaa <0> name_aaa <1> job_aaa
1   bbb  name_bbb  job_bbb  bbb <0> name_bbb <1> job_bbb
2   ccc  name_ccc  job_ccc  ccc <0> name_ccc <1> job_ccc
3   ddd  name_ddd  job_ddd  ddd <0> name_ddd <1> job_ddd
| improve this answer | |
3
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df['features'] = [" ".join(F"{entry}<{num}>" 
                  if ent[-1] != entry 
                  else entry 
                  for num, entry in enumerate(ent) )
                  for ent in df.to_numpy()]



   col_1   col_2      col_3         features
0   aaa   name_aaa  job_aaa aaa<0> name_aaa<1> job_aaa
1   bbb   name_bbb  job_bbb bbb<0> name_bbb<1> job_bbb
2   ccc   name_ccc  job_ccc ccc<0> name_ccc<1> job_ccc
3   ddd   name_ddd  job_ddd ddd<0> name_ddd<1> job_ddd
| improve this answer | |

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