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I need to extract the last number that is inside a string. I'm trying to do this with regex and negative lookaheads, but it's not working. This is the regex that I have:

\d+(?!\d+)

And these are some strings, just to give you an idea, and what the regex should match:

ARRAY[123]         matches 123 
ARRAY[123].ITEM[4] matches 4
B:1000             matches 1000
B:1000.10          matches 10

And so on. The regex matches the numbers, but all of them. I don't get why the negative lookahead is not working. Any one care to explain?

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3 Answers

up vote 14 down vote accepted

Your regex \d+(?!\d+) says

match any number if it is not immediately followed by a number.

which is incorrect. A number is last if it is not followed (anywhere following it not just immediately) by any other number.

When translated to regex we have:

(\d+)(?!.*\d)

Rubular Link

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+1, this is much cleaner than my (?:\D|^) mess ;-) (and closer to the OP's original regex too) –  Cameron Mar 16 '11 at 4:48
    
Thanks for the explanation. I haven't realized that I needed to include the .* to be not just immediately. –  korbes Mar 16 '11 at 12:31
    
Was banging my head against the desk on this one. Thank you for an elegant solution –  Steven Garcia Oct 31 '12 at 11:18
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I took it this way: you need make sure the match is close enough to the end of the string; close enough in the sense that only non-digits may intervene. What I suggest is the following:

/(\d+)\D*\z/
  1. \z at the end means that that is the end of the string.
  2. \D* before that means that an arbitrary number of non-digits can intervene between the match and the end of the string.
  3. (\d+) is the matching part. It is in parenthesis so that you can pick it up, as was pointed out by Cameron.
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+1, neat way of getting the last group using an anchor –  Cameron Mar 16 '11 at 4:47
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You can use

.*(?:\D|^)(\d+)

to get the last number; this is because the matcher will gobble up all the characters with .*, then backtrack to the first non-digit character or the start of the string, then match the final group of digits.

Your negative lookahead isn't working because on the string "1 3", for example, the 1 is matched by the \d+, then the space matches the negative lookahead (since it's not a sequence of one or more digits). The 3 is never even looked at.

Note that your example regex doesn't have any groups in it, so I'm not sure how you were extracting the number.

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Just curious, why the (?:\D|^) bit of your regex? Doesn't .* handle it just fine? –  jb. Mar 16 '11 at 3:43
2  
@jb: Heh, I started out with that then had to delete my answer while I came up with (?:\D|^). The problem with .*(\d+) is that only the last single digit will be matched (since the engine stops as soon as the regex is satisfied, which it will be after backtracking one digit character) –  Cameron Mar 16 '11 at 4:04
    
If you somehow anchor from the beginning of the string as with your .*, you need your (?:\D+^), or equivalently, [\D\A]. If you anchor from the end of the string, you do not need it, as in codaddict or my answer. –  sawa Mar 16 '11 at 4:35
    
@sawa: Ooh, \A, I always forget about those anchors. Unfortunately, my Python 2.6 chokes on it when it's in a character class together with \D –  Cameron Mar 16 '11 at 4:44
    
I see. Thanks for the comment. –  sawa Mar 16 '11 at 4:54
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