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I would like to match the whole "word"—one that starts with a number character and that may include special characters but does not end with a '%'.

Match these:

  • 112 (whole numbers)
  • 10-12 (ranges)
  • 11/2 (fractions)
  • 11.2 (decimal numbers)
  • 1,200 (thousand separator)

but not

  • 12% (percentages)
  • A38 (words starting with a alphabetic character)

I've tried these regular expressions:

(\b\p{N}\S)*)

but that returns '12%' in '12%'

(\b\p{N}(?:(?!%)\S)*)

but that returns '12' in '12%'

Can I make an exception to the \S term that disregards %? Or will have to do something else?

I'll be using it in PHP, but just write as you would like and I'll convert it to PHP.

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2  
Do these numbers appear in some context? Spaces surrounding etc.? Specifically why did you use the trailing \S (which means non-space)? –  mario Nov 18 '11 at 11:12

7 Answers 7

up vote 6 down vote accepted

This matches your specification:

\b\p{N}\S*+(?<!%)

Explanation:

\b       # Start of number
\p{N}    # One Digit
\S*+     # Any number of non-space characters, match possessively
(?<!%)   # Last character must not be a %

The possessive quantifier \S*+ makes sure that the regex engine will not backtrack into a string of non-space characters it has already matched. Therefore, it will not "give back" a % to match 12 within 12%.

Of course, that will also match 1!abc, so you might want to be more specific than \S which matches anything that's not a whitespace character.

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3  
+1, but if you make the \S* possessive - \S*+ - you can get rid of the (?=\s|$). –  Alan Moore Nov 18 '11 at 11:23
    
@AlanMoore: Excellent suggestion. I will do that. –  Tim Pietzcker Nov 18 '11 at 11:26
    
Thanks. This works perfectly. I've extended it a bit to fit some other cases that i discovered. (\b\p{N}\S*+(?<!%|%\p{P}|%\p{P}\p{P})) So it disregards '12%.', '11%-12%', '( 12%)', and '( 12%).' In my data % is followed by a max of two punctations, but i sure the code above can be converted to something more general if needed. –  bonna Nov 18 '11 at 12:08

Can i make an exception to the \S term that disregards %

Yes you can:

[^%\s]

See this expression \b\d[^%\s]* here on Regexr

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1  
But he said that only the last character must not be a %. –  Tim Pietzcker Nov 18 '11 at 11:13
    
@TimPietzcker thats true, then I showed only the way to exclude a specific character from a predefined class, because the correct answer is already there from you (+1) –  stema Nov 18 '11 at 11:20
    
Yeah, he asked for that (exclusion of a single character), too. So we don't really know what he actually needs :) +1! –  Tim Pietzcker Nov 18 '11 at 11:23
    
Thanks. I will definitely be using this a lot more. –  bonna Nov 18 '11 at 12:16
\d+([-/\.,]\d+)?(?!%)

Explanation:

\d+        one or more digits
(
   [-/\.,]     one "-", "/", "." or ","
   \d+         one or more digits
)?         the group above zero or one times
(?!%)      not followed by a "%" (negative lookahead)
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+1. Judging by the examples provided, I suspect this is the answer to the question the OP should have asked. ;) –  Alan Moore Nov 18 '11 at 11:40
1  
@AlanMoore: Careful, this will match 1 in 12%. The quantifiers should also be made possessive. Then it will work. –  Tim Pietzcker Nov 18 '11 at 11:55
    
@Tim: Can I recover from this gaffe by saying I assumed there would be word boundaries or anchors around the regex? :P –  Alan Moore Nov 18 '11 at 12:16
    
@AlanMoore: Nice try :) –  Tim Pietzcker Nov 18 '11 at 12:23

KISS (restrictive):

/[0-9][0-9.,-/]*\s/
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1  
That will match 12 in 12%. –  Tim Pietzcker Nov 18 '11 at 11:25
    
whoops, fixed. thanks! –  CAFxX Nov 18 '11 at 13:06
    
Not really. \b matches between 2 and %... –  Tim Pietzcker Nov 18 '11 at 13:37
    
guess you're right... what about a \s then? –  CAFxX Nov 18 '11 at 17:09
    
Now the entire regex fails if there is no whitespace after the matched string... –  Tim Pietzcker Nov 18 '11 at 18:52

try this one

preg_match("/^[0-9].*[^%]$/", $string);
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2  
That fails to match single-digit numbers. –  Tim Pietzcker Nov 18 '11 at 11:13

Try this PCRE regex:

/^(\d[^%]+)$/

It should give you what you need.

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Only the last character cannot be a percent. –  toon81 Nov 18 '11 at 11:17

I would suggest just:

(\b[\p{N},.-]++(?!%))

That's not very exact regarding decimal delimiters or ranges. (As example). But the ++ possessive quantifier will eat up as many decimals as it can. So that you really just need to check the following character with a simple assertion. Did work for your examples.

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OP did say the first character had to be a number, and you're not enforcing that. The leading \b doesn't do the trick; it will match (e.g.) the comma in foo,bar. –  Alan Moore Nov 18 '11 at 11:30
    
Like I said, not very exact. Correct range and fractions treatment has been answered by etuardu. –  mario Nov 18 '11 at 11:36

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