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Here is an easy one :) on REGEX

I have this regex

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

which works on {100, $100, $100.15, $1,000, $1,000.15} and so on....

I want a simple Regex which works on numbers like : {100, 100.15} and thats all - no commas and currency symbols crap...

Thanks,

Voodoo

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1  
What does it do? –  Brendan Long Jul 20 '10 at 4:00
    
also where can I test it, any good links –  VoodooChild Jul 20 '10 at 4:02
    
it is a field to enter in Amount...so any numbers with an option to enter in two decimal points. –  VoodooChild Jul 20 '10 at 4:03
1  
There are different flavours of regular expressions. While there is a common subset, sometimes you require certain features (lookbehinds, for example) which are flavour-specific. Therefore, it's a good idea to state what flavour you are using (.NET, PCRE, JavaScript) when asking a regular expressions question. –  strager Jul 20 '10 at 4:17

2 Answers 2

up vote 2 down vote accepted
^(\d+(\.\d{2})?|\.\d{2})$
  • \d+ one or more digits
  • (\.\d{2})? optional decimal part
  • | or
  • (\.\d{2}) or just the decimal part

If you make the integer part \d*, the regex will match an empty string.

If you can use look ahead, you can use it to make sure that the string is not empty.

^(?=.)\d*(\.\d{2})?$
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1  
I'd personally use (?!$) and \d\d. Explanation gets you my vote. (Any non-trivial regexp deserves comments.) –  strager Jul 20 '10 at 4:19
    
(?!$) sounds better than (?=.). I considered \d\d but went for \d{2} as it had 2 in it - thought it reads better. –  Amarghosh Jul 20 '10 at 4:23
    
in my original question I had to use escape char "\" because it was in csharp code, do you fellows know of a better way to put this in csharp code without the escape character? –  VoodooChild Jul 20 '10 at 4:23
2  
@VoodooChild, Use verbatim string literals: @"^(\d+(\.\d{2})?|\.\d{2})$" (including the @). –  strager Jul 20 '10 at 4:27
    
Thanks guys :) (verbatim string I forgot that word before, thanks) Cheers –  VoodooChild Jul 20 '10 at 4:29

You could try the following:

"^\d+(\.\d{1,2})?$"

This will match a number followed by an optional decimal point and 1 or two decimal places.

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