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I am trying to write a regular expression that allows decimals with or without commas.

I have -

^[0-9]*((,\d{3})?(,\d{3})?(,\d{3})?)*(\.[0-9]{1,10})?$ 

which seems to work in reg ex tester, but when I put it in my code it doesn't work. If fails for 1,000.00, but not 1,000

I need it to accept 1, 1000, 1000.00, 1,000,000.123, 1223.456, 1,000,123.928 etc.

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1  
It works for me (both within Chroms JS console and in an online regex tester) –  Martin Büttner Oct 25 '12 at 15:06
    
I am testing using (!$(textBox).val().match(RestrictionRegularExpressions.DECIMAL)) could that be the problem? –  Kev Oct 25 '12 at 15:15

4 Answers 4

up vote 4 down vote accepted

This regex seems to work (try it here), but it is slightly overcomplicated, while at the same time allowing inconsistent use of , (i.e 12345,789,000.123). This should solve that problem:

^\d{1,3}(?:(,?)\d{3}(?:\1\d{3})*)?(?:\.\d{1,10})?$

By using a backreference (\1) you can make sure that the , is either always used, or never.

Making digits in front of the . optional while still requiring them in front of a , is also possible, but slightly more complicated:

^(?:\d{1,3}(?:(,?)\d{3})?)?(?:\1\d{3})*(\.\d{1,10})?$
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1  
+1 for the backreference. I had no idea you could use them like that! –  Rocket Hazmat Oct 25 '12 at 15:16
    
Both of our solutions require a left-side of the decimal, I'm struggling to figure out a way to make that optional while not allowing things like ,000.123 –  Cecchi Oct 25 '12 at 15:17
1  
@RocketHazmat this is a good in-depth article about how they work: regular-expressions.info/brackets.html but I actually prefer Cecchi's solution without the backreferences ^^ –  Martin Büttner Oct 25 '12 at 15:18
    
@Cecchi, use a lookbehind on the first comma. (I'll try it out and post it then) –  Martin Büttner Oct 25 '12 at 15:18
    
@Cecchi, ah damn Javascript doesn't support lookbehinds, I totally forgot... that makes things a bit more complicated (without duplicating most of the regex) –  Martin Büttner Oct 25 '12 at 15:22

Here's another option for allowing well formatted numbers, with up to 10 decimals:

^\d{1,3}((?:\,\d{3})*|\d*)(\.\d{1,10})?$

If you wanted to allow .123 without a integer (left-side of decimal), you could change the first {1,3} to {0,3}

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I like this, it's actually a bit simpler than using a backreference. –  Martin Büttner Oct 25 '12 at 15:16
    
Changing to {0,3}matches the empty string. Is that intentional? –  FrankieTheKneeMan Oct 25 '12 at 23:51
^(?=[\d.])\d{0,3}(?:\d*|(?:,\d{3})*)(?:\.\d+)?$

This enforces consistent comma use, allows there to be no left hand side, and won't match the empty string, ensuring that the user has entered some sort of number into your form.

To make changes:

  • Eliminate the opening Lookahead to allow empty strings
  • Change {0,3} to {1,3} to require a LHS
  • Change the final + to {1,N} to put a maximum precision.
  • To set a max value, change (or add, to maintain not matching the empty string.) the opening lookahead to:
  • (?=(?:,?\d){0,N}) Where N is the maximum number of digits.
  • To set a min value, change the opening lookahead to:
  • (?=(?:,?\d){M}) Where M is the minimum number of digits.
  • Combine those for min/max.

Enjoy!

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The following regular expression worked for me:

^[0-9]{1,3}(,[0-9]{3})*(\\.[0-9]+)?$

Which I tested using this page on W3Schools web-page: http://www.w3schools.com/js/tryit.asp?filename=tryjs_regexp_test. It accepts up to three digits followed by any sequence of a comma followed by 3 digits and end with an optional dot with at least on digit followed by any number of digits.

Hope that helps.

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