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I need to know if there is a regular expression for testing for the presence of numbers in strings that:

  • Matches Lorem 20 Ipsum
  • Matches Lorem 2,5 Ipsum
  • Matches Lorem 20.5 Ipsum
  • Does not match Lorem 2% Ipsum
  • Does not match Lorem 20.5% Ipsum
  • Does not match Lorem 20,5% Ipsum
  • Does not match Lorem 2 percent Ipsum
  • Does not match Lorem 20.5 percent Ipsum
  • Does not match Lorem 20,5 percent Ipsum
  • Matches Lorem 20 Ipsum 2% dolor
  • Matches Lorem 2,5 Ipsum 20.5% dolor
  • Matches Lorem 20.5 Ipsum 20,5% dolor

That is, a regular expression that can tell me if in a string there is one or many numbers, but not as percentage value.

I've tried something as /[0-9\.,]+[^%]/, but this not seems to work, I think because digits then not a percentage sign match also the 20 in the string 20%. Additionally, I don't know how to tell not the entire percent string in addition to the % char.

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So what have you tried? –  Blender Nov 3 '12 at 19:39
    
@Blender See edit. –  lorenzo-s Nov 3 '12 at 19:42

3 Answers 3

up vote 4 down vote accepted

This will do what you need:

\b                     -- word boundary
\d+                    -- one or more digits
(?:\.\d+)?             -- optionally followed by a period and one or more digits
\b                     -- word boundary
\s+                    -- one or more spaces
(?!%|percent)          -- NOT followed by a % or the word 'percent'

--EDIT--

The meat here is the use of a "negative lookahead" on the final line that causes the match to fail if any of a percent-sign or the literal "percent" occurs after a number and one or more spaces. Other uses of negative lookahead in JavaScript RegExps can be found at Negative lookahead Regular Expression

--2ND EDIT-- Congrats to Enrico for solving the most general case but while his solution below is correct, it contains several extraneous operators. Here is the most succinct solution.

(                         -- start capture
  \d+                     -- one or more digits
  (?:[\.,]\d+)?           -- optional period or comma followed by one or more digits
  \b                      -- word boundary
  (?!                     -- start negative lookahead
    (?:[\.,]\d+)          -- must not be followed by period or comma plus digits
  |                       --    or
    (?:                   -- start option group
      \s?%                -- optional space plus percent sign
    |                     --   or
      \spercent           -- required space and literal 'percent'
    )                     -- end option group
  )                       -- end negative lookahead
)                         -- end capture group
share|improve this answer
    
You miss the , as decimal separator. (Just a tip) –  Javier Diaz Nov 3 '12 at 19:48
    
Thanks for the comment, but the OP did not ask to extract numbers nor how many might occur in a string, only that they exist. My answer will match strings that contain numbers which are not percentages so matching the comma is immaterial to the OP's requirement. Thanks again. –  Rob Raisch Nov 3 '12 at 19:52
    
This regex matches 20.5% because of the optionality of the decimal part –  enrico.bacis Nov 3 '12 at 19:56
1  
@enrico, I do not believe you are correct. Due to the requirement that the number be followed by one or more spaces, 20.5% will not match. –  Rob Raisch Nov 3 '12 at 20:07
1  
@rob, Yes, like that will not match, but the fact that a number must be followed by a space to be a number is wrong. This will not match numbers at the end of the string or numbers followed by anything that is not a space. For example the sentences "I have to pay 12.5$" or "The number is 5." contain numbers that are not percentages. So your regex works correctly for all the test cases that lorenzo provided, but will not work always. –  enrico.bacis Nov 3 '12 at 20:18

This is the robust way to do it, and it's also extracting the numbers.

(\b\d+(?:[\.,]\d+)?\b(?!(?:[\.,]\d+)|(?:\s*(?:%|percent))))

It is similar to Rob's regex but it should work for all the cases.

(                          -- capturing block
  \b                       -- word boundary
  \d+                      -- one or more digits
  (?:[\.,]\d+)?            -- optionally followed by a period or a comma
                              and one or more digits
  \b                       -- word boundary
  (?!                      -- not followed by
    (?:[\.,]\d+)           -- a period or a comma and one or more digits
                              [that is the trick]
    |                      -- or
    (?:\s*(?:%|percent))   -- zero or more spaces and the % sign or 'percent'
  )
)
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you beat me to the punch. well done. –  Rob Raisch Nov 3 '12 at 20:55
    
Haha, your one passed all the tests provided, and you were way faster than me, so +1 to you too :) –  enrico.bacis Nov 3 '12 at 21:02
    
Thank you very much, guys –  lorenzo-s Nov 3 '12 at 21:06
    
Your welcome lorenzo, it was a nice challenge! –  enrico.bacis Nov 3 '12 at 21:08

Use negative lookahead instead of your negated character class:

/\d+(?:[,.]\d+)?(?!\s*(?:percent|%))/
share|improve this answer
    
That's exactly what I've used after reading Rob answer. Thank you, +1 –  lorenzo-s Nov 3 '12 at 20:07
    
This is not working the way described by lorenzo at all :) –  enrico.bacis Nov 3 '12 at 21:03
    
@Bergi, Not to pick too many nits, but your solution will match: '10.1percent' which is probably not what is required. ;) –  Rob Raisch Nov 3 '12 at 21:07

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