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Im writing a python program using regex to find email addresses. re.findall function is giving wrong output whenever I try to use round brackets for grouping. Can anyone point out the mistake / suggest an alternate solution?

Here are two snippets of code to explain -

pat = "[\w]+[ ]*@[ ]*[\w]+.[\w]+"
re.findall(pat, 'abc@cs.stansoft.edu.com .rtrt.. myacc@gmail.com ')

gives the output

['abc@cs.stansoft', 'myacc@gmail.com']

However, if I use grouping in this regex and modify the code as

pat = "[\w]+[ ]*@[ ]*[\w]+(.[\w]+)*"
re.findall(pat, 'abc@cs.stansoft.edu.com .rtrt.. myacc@gmail.com ')

the output is

['.com', '.com']

To confirm the correctness of the regex, I tried this specific regex (in second example) in http://regexpal.com/ with the same input string, and both the email addresses are matched successfully.

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+1 for excellently asked question. –  Li-aung Yip Mar 17 '12 at 8:10
    
You have used character classes in all the places where you shouldn't have, and failed to use one where you should have (or used escaping). Also, that regex fails on loads of valid addresses like anu.agg@test.com. I expect that allowing spaces around the @ (which is of course invalid) is done on purpose? –  Tim Pietzcker Mar 17 '12 at 8:11
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2 Answers

up vote 3 down vote accepted

In Python, re.findall returns the whole match only if there are no groups, if there are groups then it will return the groups. To get around this, you should use a non-capturing group (?:...). In this case:

pat = "[\w.]+ *@ *\w+(?:\.\w+)*"
re.findall(pat, 'abc@cs.stansoft.edu.com .rtrt.. myacc@gmail.com ')
share|improve this answer
    
You have reproduced all of the errors in @anu.agg's original regex. A somewhat better version (although still much less than optimal) would be "[\w.]+ *@ *\w+(?:\.\w+)*". –  Tim Pietzcker Mar 17 '12 at 8:12
    
@TimPietzcker, ooh, yes, I just modified the group without properly thinking. Replaced. –  dbaupp Mar 17 '12 at 13:16
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You would use groups if you wanted to do something like separate the user from the host:
(The hyphens are optional, some emails have them.)

pat = '([\w\.-]+)@([\w\.-]+)'
re.findall(pat, 'abc@cs.stansoft.edu.com .rtrt.. myacc@gmail.com ')

Output:

[('abc', 'cs.stansoft.edu.com'), ('myacc', 'gmail.com')]

To further illustrate we could replace the host, and keep the user from group 1 (\1):

emails = 'abc@cs.stansoft.edu.com .rtrt.. myacc@gmail.com '
pat = '([\w\.-]+)@([\w\.-]+)'
re.sub(pat, r'\1@live.com', emails)

Output:

'abc@live.com .rtrt.. myacc@live.com '

Simply remove the parentheses from the pattern to match the whole email:

pat = '[\w\.-]+@[\w\.-]+'
re.findall(pat, 'abc@cs.stansoft.edu.com .rtrt.. myacc@gmail.com ')

Output:

['abc@cs.stansoft.edu.com', 'myacc@gmail.com']
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