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Im trying to make a regular expression in python that allows me to find a word within a string "n" times

For example, if i wanted to find a expression that could match if the word "cat" is exactly two times. How i would do that?

It should accept "The blue cat talks to the red cat in the tree". Because it has "cat" exactly two times.

But it should not accept "The cat is big". Because it has "cat" only once

And it should not accept either "the dog is yellow". For similar reasons

Thanks a lot

EDIT Hey guys

Sorry for complicating the problem too much, but i forgot to mention one thing.

If i wanted to find "cat" exactly two times, "The catcat runs" would also match

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"Exactly n" times, or n or more times? –  ridgerunner Oct 23 '11 at 2:35

5 Answers 5

up vote 3 down vote accepted

Don't use regular expressions just because they are there.

words = text.split()
print words.count('cat')

As Vincent points out, that assumes all words are seperated by whitespace.

words = re.findall("\b\w*") 

Is probably a better options. Although whether that is neccesary depends on details not provided in your post.

EDIT

If you don't even care about word boundaries, there is even less reason to be using a regular expression.

print text.count("cat")
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1  
"cat cat." is an example pointing when your code will fail. –  Vincent Savard Oct 22 '11 at 22:49
    
@Vincent Savard: Why would that be a failure? It fits the specs from the first post. –  siride Oct 22 '11 at 23:01
    
@VincentSavard, yes, you are correct –  Winston Ewert Oct 22 '11 at 23:01
    
text.count("cat") is clearly the solution. The OP should accept this answer. –  davidchambers Oct 23 '11 at 5:31
    
@davidchambers, yes but the way of the regular expression is so seductive –  Winston Ewert Oct 24 '11 at 12:28

findall + len seems like one solution.

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Thanks. But is it possible to do it using match? Because i also need to make sure that some words do not appear on the string. –  eleaz28 Oct 22 '11 at 22:43

How about this:

re.match(r'(.*\bcat\b){2}', 'The blue cat talks to the red cat in the tree')

The {2} means “repeat 2 times”. Use {7} for 7 repetitions. The \b is a word boundary; in this case the cat in "blue cat talks" would match, but "verification" wouldn't. And the .* will match any string.

You might want to go over the re documentation.

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Thanks a lot. Is it possible to do it without using \b?. –  eleaz28 Oct 22 '11 at 23:02
    
Yes, leave out the \b, but then "cat" will also match as a part of a word. –  Petr Viktorin Oct 22 '11 at 23:06
1  
You'd need to add a negative lookahead assertion to make sure there are only two cats. –  Tom Zych Oct 22 '11 at 23:08

If you wish to use a single regular expression to ensure a string contains exactly 2 instances of the word "cat", (no more, no less, and not "catastrophic" or "catcat"), then the following tested script will do the trick:

import re
text = r'The cat chased its cat toy, but failed to catch it.'
if re.match(r"""
    # Match string containing exactly n=2 "cat" words.
    ^                    # Anchor to start of string.
    (?:                  # Group for specific word count.
      (?:(?!\bcat\b).)*  # Zero or more non-"cat" chars,
      \bcat\b            # followed by the word "cat",
    ){2}                 # exactly n=2 times.
    (?:(?!\bcat\b).)*    # Zero or more non-"cat" chars.
    \Z                   # Anchor to end of string.
    """, text, re.DOTALL | re.VERBOSE):
    # Match attempt successful.
    print "Match found"
else:
    # Match attempt failed.
    print "No match found"

However, if you do wish to match the cat in "catastrophic" and "catcat", then remove all the \b word boundary anchors from the regex.

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Just build a regex with multiple instance of 'cat' separated by a group that consumes other characters:

>>> import re
>>> n = 2
>>> regex = re.compile('.*'.join(['\bcat\b'] * n))
>>> regex.search('The cat is big')
>>> regex.search('The blue cat talks to the red cat in the tree')
<_sre.SRE_Match object at 0x17ca1a8>
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won't the .* match extra instances of cat? –  Winston Ewert Oct 22 '11 at 23:21
    
It certainly will. This is not a good approach. –  davidchambers Oct 23 '11 at 5:32

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