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Im still learning the ropes with Python ad regular expressions and I need some help please! I am in need of a regular expression that can search a sentence for specific words. I have managed to create a pattern to search for a single word but how do i retrieve the other words i need to find? How would the re pattern look like to do this?

>>> question = "the total number of staff in 30?"
>>> re_pattern = r'\btotal.*?\b'
>>> m = re.findall(re_pattern, question)
['total']

It must look for the words "total" and "staff" Thanks Mike

share|improve this question
    
you want to check if the two words exist in that string or just want to have the two words? you have already had the two words actually. they are "total" and "staff" :) what do you really want? –  Kent Dec 17 '12 at 11:47
    
@Kent For me it's totally clear what the questioner wants. He wants a regular expression that finds the two words total and staff in a string. No need to downvote in my opinion. –  pemistahl Dec 17 '12 at 11:51
    
@PeterStahl okay. im not the downvoter btw. :) –  Kent Dec 17 '12 at 11:56
    
@Kent No problem. :) Just wanted to say that in general. –  pemistahl Dec 17 '12 at 11:59

3 Answers 3

up vote 4 down vote accepted

Use the union operator | to search for all the words you need to find:

In [20]: re_pattern = r'\b(?:total|staff)\b'

In [21]: re.findall(re_pattern, question)
Out[21]: ['total', 'staff']

This matches your example above most closely. However, this approach only works if there are no other characters which have been prepended or appended to a word. This is often the case at the end of main and subordinate clauses in which a comma, a dot, an exclamation mark or a question mark are appended to the last word of the clause.

For example, in the question How many people are in your staff? the approach above wouldn't find the word staff because there is no word boundary at the end of staff. Instead, there is a question mark. But if you leave out the second \b at the end of the regular expression above, the expression would wrongly detect words in substrings, such as total in totally or totalities.

The best way to accomplish what you want is to extract all alphanumeric characters in your sentence first and then search this list for the words you need to find:

In [51]: def find_all_words(words, sentence):
....:     all_words = re.findall(r'\w+', sentence)
....:     words_found = []
....:     for word in words:
....:         if word in all_words:
....:             words_found.append(word)
....:     return words_found

In [52]: print find_all_words(['total', 'staff'], 'The total number of staff in 30?')
['total', 'staff'] 

In [53]: print find_all_words(['total', 'staff'], 'My staff is totally overworked.')
['staff']
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This. Beat me to it heh. –  Lindrian Dec 17 '12 at 11:48
    
Thanks Peter very helpful! –  Mike Barnes Dec 17 '12 at 14:42
    
@MikeBarnes You're welcome. :) Please consider upvoting and accepting my answer if it solved your problem. –  pemistahl Dec 17 '12 at 14:54
question = "the total number of staff in 30?"
find=["total","staff"]
words=re.findall("\w+",question)
result=[x for x in find if x in words]
result
['total', 'staff']
share|improve this answer

Have you though to use something beyond Regex?

Consider this and and if it works expand from this solution

>>> 'total' in question.split()
True

Similarly

>>> words = {'total','staff'}
>>> [e   for e in words if e in question.split()]
['total', 'staff']
share|improve this answer
    
-1. This is not a good solution because it only searches for substrings inside a string and doesn't consider word boundaries which apparently is what the questioner needs. The special sequence \b in a regular expression makes up for that. –  pemistahl Dec 17 '12 at 11:55
    
@PeterStahl: Thanks, I missed a split :-) –  Abhijit Dec 17 '12 at 12:01
    
Simply using str.split() doesn't help here either. What about words at the end of a sentence? For example, in "How many people do we have in total?" your solution wouldn't find the word total because in your list there's only total?. –  pemistahl Dec 17 '12 at 12:15

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