Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I think I created a working regular expression for what I need. Just wondering if anyone can break it or see a shorter way to write it.

The regular expression should validate the following...

  • Dollar sign optional
  • Negative numbers signified with parenthesis, not a minus
  • If negative, dollar sign should be outside the parenthesis
  • Commas are optional
  • Max number is 999999.99
  • Min number is (999999.99)
  • Decimals do not have to be supplied, but if so, no more than two digits

So here are some examples of valid ones...

9
$9
$0.99
($999,999.99)
(999999)
($999999)
(999,999)
99,999.9

This is what I have come up with:

^\$?(((\d{1,6}(\.\d{1,2})?)|(\d{1,3},\d{3}(\.\d{1,2})?)|\(((\d{1,6}(\.\d{1,2})?)|(\d{1,3},\d{3}(\.\d{1,2})?))\)))$

CORRECTION, my spec was wrong, if the dollar sign is used it must be INSIDE the parenthesis.

share|improve this question
2  
1: this might belong on Code Review. 2: What language is the regex in? 3: what i18n considerations have you taken? 4: 1.000,00, 3.000 –  zzzzBov Dec 12 '12 at 21:06
    
You seem to have unnecessary many parenthesis. Do you need all of them for matching groups? –  Bergi Dec 12 '12 at 21:07
    
possible duplicate of What is "The Best" U.S. Currency RegEx? –  Andy Lester Dec 12 '12 at 21:27
    
Language is ColdFusion –  gfrobenius Dec 12 '12 at 21:55

3 Answers 3

up vote 2 down vote accepted

You can express "between one and six digits; comma before the last three digits is optional" a bit more tersely as \d{1,3}(,?\d{3})?. This also allows you to include only two copies of (\.\d{1,2})?: one for positive and one for negative, instead of one for positive-without-comma, one for positive-with-comma, etc.

Also, \d{1,2} can be shortened slightly to \d\d?, though I'm not sure if that's an improvement.

So, barring some notation like (?(1)) to test if a backreference is set, here's the shortest version I see:

^(\$?\d{1,3}(,?\d{3})?(\.\d\d?)?|\(\$?\d{1,3}(,?\d{3})?(\.\d\d?)?\))$

One perhaps-undesirable aspect of your regex, and of this one, is that they will allow something like $00,012.7, even though no one uses leading zeroes that way. You can address that by requiring the first digit to be nonzero, and then adding a special case to handle $0 and (0.12) and so on:

^(\$?(0|[1-9]\d{0,2}(,?\d{3})?)(\.\d\d?)?|\(\$?(0|[1-9]\d{0,2}(,?\d{3})?)(\.\d\d?)?\))$

Edited to add: using a lookahead assertion like F.J suggests in his/her answer, the latter can be shortened to:

^(?!\(.*[^)]$|[^(].*\)$)\(?\$?(0|[1-9]\d{0,2}(,?\d{3})?)(\.\d\d?)?\)?$
share|improve this answer
    
I forgot about leading zeros. But your 2nd regexp example doesn't seem to run when tested, is it missing a parenthesis or something? –  gfrobenius Dec 12 '12 at 21:49
    
Dang it, my spec was wrong, if the dollar sign is used it must be INSIDE the parenthesis. –  gfrobenius Dec 12 '12 at 22:04
    
@gfrobenius: Re: second example: It works in Perl. I'm betting that ColdFusion doesn't like the \d{,2} notation; I'll change it to \d{0,2}. Re: dollar sign inside parentheses: no problem, I'll fix that, too. –  ruakh Dec 12 '12 at 22:12

Here is one shorter alternative (56 chars to your 114), which will work in almost all regex flavors:

^\$?(?=\(.*\)|[^()]*$)\(?\d{1,3}(,?\d{3})?(\.\d\d?)?\)?$

Example: http://www.rubular.com/r/qtYHEVzVK7

Explanation:

^                # start of string anchor
\$?              # optional '$'
(?=              # only match if inner regex can match (lookahead)
   \(.*\)          # both '(' and ')' are present
   |               # OR
   [^()]*$         # niether '(' or ')' are present
)                # end of lookaheand
\(?              # optional '('
\d{1,3}          # match 1 to 3 digits
(,?\d{3})?       # optionally match another 3 digits, preceeded by an optional ','
(\.\d\d?)?       # optionally match '.' followed by 1 or 2 digits
\)?              # optional ')'
$                # end of string anchor
share|improve this answer
    
+1; that is a great use of look-ahead! –  ruakh Dec 12 '12 at 21:36

Given your examples, the following regular expression will work:

/^(\$?(?(?=\()(\())\d+(?:,\d+)?(?:\.\d+)?(?(2)\)))$/gm

(note: flags and delimiters are language dependent)

This regex sets an unnecessary backreference merely to save regex-length. You can ignore the second backreference. If this is intolerable the expression will become quite a bit longer.

Have a look here: http://regex101.com/r/fH3lV1

share|improve this answer
    
Note that the IF construct is not very common among the regex flavours. –  nhahtdh Dec 12 '12 at 21:23

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.