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Consider this regex:

<a href(="(?:/user)?/([^"]+))">

What i want is that if in the second capturing group if there is all/only digits then this regex should not match. An example:

<a href="/user/15594243">
#this should not match

Any solution for that? I want a regex solution only, i know i can achieve this by using further python code.

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1  
Why do you want to do this in a single regular expression without using a second expression or other code? –  CodeGnome Jul 15 '12 at 15:07
    
@CodeGnome please assume i have no other option rather than this single regex.. –  Aamir Adnan Jul 15 '12 at 15:11

5 Answers 5

up vote 2 down vote accepted

Negative lookahead assertion for all numbers and a quote is all that I think is needed"

user_re = re.compile('<a href(="/(?!(?:user/)?[0-9]+").+)"')

In [74]: [(url,user_re.match(url) and user_re.match(url).group(1)) for url in 
                 ['<a href="/user/15594243">',
                  '<a href="/user/15594243_">',
                  '<a href="/user/user15594243">',
                  '<a href="/user/1">',
                  '<a href="/user/15594243/add">',
                  '<a href="/item/15594243">',
                  '<a href="/a"',
                  '<a href="/15594243">']]
Out[74]: 
[('<a href="/user/15594243">', None),
 ('<a href="/user/15594243_">', '="/user/15594243_'),
 ('<a href="/user/user15594243">', '="/user/user15594243'),
 ('<a href="/user/1">', None),
 ('<a href="/user/15594243/add">', '="/user/15594243/add'),
 ('<a href="/item/15594243">', '="/item/15594243'),
 ('<a href="/a"', '="/a'),
 ('<a href="/15594243">', None)]

EDIT: I know my last edit does the regex twice but that is just for display purposes.

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1  
in your regex you have /user/ while it is (?:/user)?/ –  Aamir Adnan Jul 15 '12 at 17:07
    
@Aamir Adnan , sure I'll tweek it but I wasn't sure about the exact requirements. I see you were even including the = in the return group. I'll edit to match your original in those regards. –  Phil Cooper Jul 15 '12 at 17:10
    
yes =" in the return group is intentional, Thanks –  Aamir Adnan Jul 15 '12 at 17:13
    
@AamirAdnan OK I've edited it. The opening " is included but the closing " is not as in your original but you can take it from here I think. –  Phil Cooper Jul 15 '12 at 17:25
    
i think you are missing the point that /user is optional in my regex, in your regex this '<a href="/15594243">' case will still match which should not –  Aamir Adnan Jul 15 '12 at 17:41

What about

<a href(="(?:/user)?/([^"/]*?[^0-9"/][^"/]*?))">

? We need to include the /, because if not it omits /user as it's optional, and takes user/ as the non numeric thing...

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Use this for the second capturing group.

\d*[a-zA-Z]+[a-zA-Z0-9]*

This allows you to start with a number if you want, require at least one alphabet and follow it up with an alphanumeric if you want.

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This one is good, testing on multiple test cases –  Aamir Adnan Jul 15 '12 at 15:19
    
It does not match the question. Since when is /user/--0123 invalid? –  Wrikken Jul 15 '12 at 15:22
    
yes Wrikken is right, your regex works for only alphanumeric, what if there is other symbol? –  Aamir Adnan Jul 15 '12 at 16:31

You can use assertions. Lookbehind assertion won't work as it requires fixed width, so let's use lookahead.

reg = re.compile("<a href=\"(?:/user)?/(?![0-9]+)([^\"/]+)\">")

This will work. But this regular expression makes invalid those urls: /user/test/u345, /user/t/user (slash is not allowed). That's because your /user part is optional: without an assumption of ([^"/]) , [^"] consumed everything (/user/45)

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This'll do it, replace ([^"]+) with:

([^"]*?[^0-9"][^"]*?)

edit:Unless python is Quaint with a capital Q I genuinly don't know what y'all see wrong. From the javascript console this works:

>>> 'user/user1234"'.match(/\/([^"]*?[^0-9"][^"]*?)"/);
Array ["/user1234"", "user1234"]
>>> 'user/1234"'.match(/\/([^"]*?[^0-9"][^"]*?)"/);
null

So, are you telling me this isn't the case in Python? Why?

edit2: aha, the optional /user fouls the results.... this'll prevent it:

 <a href(="(?:/user)?/(?!user/)([^"]*?[^0-9"][^"]*?))">
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I think /user/user567 is also valid –  madfriend Jul 15 '12 at 15:09
    
Pom, care to comment on the downvote? Preach! –  Wrikken Jul 15 '12 at 15:09
    
Noop Your regex still matches the case which i posted –  Aamir Adnan Jul 15 '12 at 15:09
    
Well, /user/user567 is mathed positively @madfriend... Did you test this? –  Wrikken Jul 15 '12 at 15:10
    
yes @madfriend /user/user567 is a valid case –  Aamir Adnan Jul 15 '12 at 15:10

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