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Hi i have dataset something like this

dx = pd.DataFrame({'IDs':[1234,5346,1234,8793,8793],
                    'Names':['APPLE ABCD ONE','APPLE ABCD','NO STRAWBERRY YES','ORANGE AVAILABLE','TEA AVAILABLE']})

kw = ['APPLE', 'ORANGE', 'LEMONS', 'STRAWBERRY', 'BLUEBERRY', 'TEA COFFEE']
dx['Check']=dx['Names'].apply(lambda x: 1 if any(k in x for k in kw) else 0)

instead of returning to 1 or 0 i want it to return to kw like 'APPLE', 'ORANGE' or 'TEA COFFE' in new column

hope anyone can help me

Thank you

2 Answers 2

1

Use a regex with str.extract to benefit from vectorial speed:

import re

regex = '|'.join(map(re.escape, kw))
dx['Check'] = dx['Names'].str.extract(f'({regex})')

NB. this only returns the first match, if you want all use extractall and perform an aggregation step.

output:

    IDs              Names       Check
0  1234     APPLE ABCD ONE       APPLE
1  5346         APPLE ABCD       APPLE
2  1234  NO STRAWBERRY YES  STRAWBERRY
3  8793   ORANGE AVAILABLE      ORANGE
4  8793      TEA AVAILABLE         NaN
10
  • I believe I have met this kind of problems many times, but strangely I couldn't find a dupe.
    – Ynjxsjmh
    Sep 27, 2022 at 11:08
  • IIUC OP wants 'TEA COFFEE' instead of 'NaN' in the last row, because 'TEA' is a common term between 'TEA AVAILABLE' and 'TEA COFFEE'. To me, OP needs some string matching library like difflib to solve this.
    – SomeDude
    Sep 27, 2022 at 11:08
  • @Ynjxsjmh could be, they are not always easy to find!
    – mozway
    Sep 27, 2022 at 11:09
  • @SomeDude I don't think so, it looked like a generic example "kw like … TEA COFFEE", but I'll update if needed
    – mozway
    Sep 27, 2022 at 11:10
  • @mozway, from this statement: i want it to return to kw like 'APPLE', 'ORANGE' or 'TEA COFFE' in new column I assumed so. OP can comment.
    – SomeDude
    Sep 27, 2022 at 11:15
0

would this work?

dx['Check']=dx['Names'].apply(lambda x: [k for k in kw if k in x ])

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