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I am just learning regex and I'm a bit confused here. I've got a string from which I want to extract an int with at least 4 digits and at most 7 digits. I tried it as follows:

>>> import re
>>> teststring = 'abcd123efg123456'
>>> re.match(r"[0-9]{4,7}$", teststring)

Where I was expecting 123456, unfortunately this results in nothing at all. Could anybody help me out a little bit here?

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2  
Wouldn't you be expecting 123456? – Jon Clements May 2 '13 at 22:15
    
@JonClements - Ah, yes. You are right. Excuse me. I corrected it. – kramer65 May 2 '13 at 22:57
up vote 5 down vote accepted

@ExplosionPills is correct, but there would still be two problems with your regex.

First, $ matches the end of the string. I'm guessing you'd like to be able to extract an int in the middle of the string as well, e.g. abcd123456efg789 to return 123456. To fix that, you want this:

r"[0-9]{4,7}(?![0-9])"
            ^^^^^^^^^

The added portion is a negative lookahead assertion, meaning, "...not followed by any more numbers." Let me simplify that by the use of \d though:

r"\d{4,7}(?!\d)"

That's better. Now, the second problem. You have no constraint on the left side of your regex, so given a string like abcd123efg123456789, you'd actually match 3456789. So, you need a negative lookbehind assertion as well:

r"(?<!\d)\d{4,7}(?!\d)"
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Thanks for that. Works like a charm! I've got one more question; lets say I now want to find all numbers resembling years which are hidden in the string. This would mean that it consists of exactly 4 digits of which the first two are either 19 or 20 (years can range in my application from 1950s to 2050). Would you also know how I could find these numbers? I guess I would need findall() for this, but how do I match 4 digits with the first two being 19 or 20? – kramer65 May 2 '13 at 22:55
    
Easy. r"(?<!\d)(?:19[5-9]\d|20[0-4]\d|2050)(?!\d)". Have fun :-) – Andrew Cheong May 2 '13 at 22:58
    
I guess, in case you're not familiar with these constructs, I should explain some things. Ignore the (?: ... ); just pretend it's a group ( ... ). And the | are alternation operators, like, "This OR this OR this." – Andrew Cheong May 2 '13 at 23:00
    
Thanks for that! The | constructs I know from php, but what I wonder about is actually the ?: and the < at the beginning..? – kramer65 May 2 '13 at 23:13
    
The (?: ... ) simply turns a group into a non-capturing group. You know how ( ... ) normally captures what's in between into variables like $1, $2, etc.? The ?: simply prevents that. It's good practice to be explicit when you're not actually going to use the capture. The < at the beginning is just the syntax for a negative lookbehind assertion: (?<! ... ); the < is supposed to look like an arrow pointing behind. – Andrew Cheong May 2 '13 at 23:35

.match will only match if the string starts with the pattern. Use .search.

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You can also use:

re.findall(r"[0-9]{4,7}", teststring)

Which will return a list of all substrings that match your regex, in your case ['123456']

If you're interested in just the first matched substring, then you can write this as:

next(iter(re.findall(r"[0-9]{4,7}", teststring)), None)
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1  
I think you need to remove the $, otherwise it only finds the last one. – dansalmo May 2 '13 at 22:35
    
whoops! good catch, @dansalmo – galarant May 2 '13 at 22:48

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