0

Say I have a DataFrame like this:

import pandas as pd

df = pd.DataFrame({'a': [1,1,1,1,2,2,2,2], 'b': [1,2,3,4,5,6,7,8]})

which looks like this

   a  b
0  1  1
1  1  2
2  1  3
3  1  4
4  2  5
5  2  6
6  2  7
7  2  8

I would like to reverse its elements within each group, where column a determines the group. So, the desired output would be

   a  b
0  1  4
1  1  3
2  1  2
3  1  1
4  2  8
5  2  7
6  2  6
7  2  5

How can I do this?

  • 2
    you can pass a list of boolean to ascending: df.sort_values(['a','b'],ascending=[True,False]) – anky May 23 at 9:22
1

This solution should achieve what the OP wants, which is to reverse(not to sort) the order of b for each a.

(
    df.groupby('a', sort=False)
    .apply(lambda x: x.iloc[::-1])
    .reset_index(drop=True)
)
| improve this answer | |
1

this seems to work,

df = pd.DataFrame({'a': [1,1,1,1,2,2,2,2], 'b': [1,2,3,4,5,6,7,8]})

df.sort_values(by=['b'], ascending=False).sort_values(by=['a'], ascending=True)
| improve this answer | |
  • 1
    No need to sort twice, pass a and b as a list and set ascending descending ... just like in sql – sammywemmy May 23 at 9:52
1

df = df.sort_values(by='b', ascending=False).sort_values(by='a')

minimilistic version: (credits to pyd)

df.sort_values(['a','b'],ascending=[True,False])

| improve this answer | |
0

df.sort_values(['a','b'],ascending=[True,False])

| improve this answer | |
0

Sorry, I might have been unclear in the question - I was hoping to reverse the order that the elements appear in, not sort by them.

This seems to work:

        reversed_ = df.copy()
        def reversing(x):
            x['a'] = x['a'].iloc[::-1].to_numpy()
            return x
        reversed_ = reversed_.groupby('group').apply(reversing)
        df['reversed_a'] = reversed_['a']
| improve this answer | |
0
df.sort_values(['a','b'], ascending = [True, False])

Hello Kindly check here for further explanation

| improve this answer | |

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