1

I have a pandas dataframe like below, It contains sentence of words, and I have one more list called vocab, I want to remove all the words from sentence except the words are in vocab list.

Example df:

                                 sentence
0  packag come differ what about tomorrow
1        Hello dear truth is hard to tell

Example vocab:

['packag', 'differ', 'tomorrow', 'dear', 'truth', 'hard', 'tell']

Expected O/P:

                                   sentence                  res
0   packag come differ what about tomorrow     packag differ tomorrow
1         Hello dear truth is hard to tell    dear truth hard tell

I first tried to use .str.replace and remove all important data from sentence then store this into t1. Again does the same thing for t1 and sentence so, that i'll get my expected output. But It's not working as In expected.

My attempt:

vocab_lis=['packag', 'differ', 'tomorrow', 'dear', 'truth', 'hard', 'tell']
vocab_regex = ' '+' | '.join(vocab_lis)+' '
df=pd.DataFrame()
s = pd.Series(["packag come differ what about tomorrow", "Hello dear truth is hard to tell"])
df['sentence']=s
df['sentence']= ' '+df['sentence']+' '

df['t1'] = df['sentence'].str.replace(vocab_regex, ' ')
df['t2'] = df.apply(lambda x: pd.Series(x['sentence']).str.replace(' | '.join(x['t1'].split()), ' '), axis=1)

Is there any simple way to achieve my above task? I know that my code is not working because of spaces. How to solve this?

2

Use nested list comprehension with split by whitespace:

df['res'] = [' '.join(y for y in x.split() if y in vocab_lis) for x in df['sentence']]
print (df)
                                 sentence                     res
0  packag come differ what about tomorrow  packag differ tomorrow
1        Hello dear truth is hard to tell    dear truth hard tell

vocab_regex = '|'.join(r"\b{}\b".format(x) for x in vocab_lis)
df['t1'] = df['sentence'].str.replace(vocab_regex, '')
print (df)
                                 sentence                  t1
0  packag come differ what about tomorrow   come  what about 
1        Hello dear truth is hard to tell     Hello   is  to
  • 1
    Thanks for the solution, is there any way that does instead of replace the words from regex to replace the words which is not from list – Mohamed Thasin ah Mar 13 at 10:09
  • @MohamedThasinah - yes, it is possible, but get double spaces if use replace. what is reason for it? – jezrael Mar 13 at 10:16
  • 1
    for my knowledge growth I want to try this problem with str.replace, In your above code if a word bout present in starting of the list then it replace only bout from about and a will remain :( – Mohamed Thasin ah Mar 13 at 10:22
  • 1
    @MohamedThasinah - so need word boundary vocab_regex = '|'.join(r"\b{}\b".format(x) for x in vocab_lis) ? – jezrael Mar 13 at 10:23
2

using np.array

data

                                   sentence
0    packag come differ what about tomorrow
1          Hello dear truth is hard to tell

Vocab

v = ['packag', 'differ', 'tomorrow', 'dear', 'truth', 'hard', 'tell']

first split the sentence to make a list and then using np.in1d to check for common elements between the two list.Then just joining the list to make a string

data['sentence'] = data['sentence'].apply(lambda x: ' '.join(np.array(x.split(' '))[np.in1d(x.split(' '),v)]))

Output

                                   sentence                     res
0    packag come differ what about tomorrow  packag differ tomorrow
1          Hello dear truth is hard to tell    dear truth hard tell

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