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I have tried the following Regex to validate decimals that should be greater than zero

@"^-?(?!0(,0+)?$)\d+(,\d{1,3})?$"; and @"^[0-9]+\d*\.\d{3}$" but this is not working as I expected. I need to fire validation when the value is 0.000 in remaining cases it should not.

Valid : 1,123.000
        1.000
        0.001
Invalid : 0 or 0.000
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This regex is hard as you may have repeating groups separated by comma. –  Szymon Dec 7 '13 at 9:03
    
Remember to allow for locales which use space as digit separator, and those that use period for separator and comma for decimal point. –  Richard Dec 7 '13 at 9:07

2 Answers 2

up vote 2 down vote accepted

Try this I tested for few sample and it is working

This worked for me

string expression= @"^(\()?[0-9]+(?>,[0-9]{3})*(?>\.[0-9]{3})?(?<!^[0\.]+)$";

if (Regex.IsMatch("0.000", expression))
{
  //Failed
}

if (Regex.IsMatch("0.001", expression))
{
  //passed
}

if (Regex.IsMatch("1.023", expression))
{
  //passed
}

if (Regex.IsMatch("11,111,111.111", expression))
{
  //passed
}
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This is very hard to do with a regex, but very easy and much clearer with a conversion function:

decimal d;
if (decimal.TryParse(input, out d) && d > 0.0m) {
  // Valid
} else {
  // Invalid
}

Edit: regular expressions are a very powerful tool for string processing and should be part of every programmers toolbox. But that are not always the right tool: sometimes one needs to reach for something else.

share|improve this answer
    
+1 much clearer and culture-aware. Would be even clearer by using CultureInfo.CurrentCulture as an argument to TryParse. –  Joe Dec 7 '13 at 11:38
    
@Joe and explicit NumberStyles of course... but given the regex alternative even the defaults are an improvement. –  Richard Dec 7 '13 at 11:44

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