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I really unable to find any workaround for regular expression to input price in decimal. This what I want:-

12345

12345.1

12345.12

12345.123

.123

0.123

I also want to restrict digits.

I really created one but not validating as assumed

^([0-9]{1,5}|([0-9]{1,5}\.([0-9]{1,3})))$

Also want to know how is above expression different from the one

^([0-9]{1,5}|([0-9].([0-9]{1,3})))$ thats working fine.

Anyone with good explanation.

"I am using NSRegularExpression - Objective C" if this helps to answer more precisely

- (IBAction)btnTapped {

      NSRegularExpression * regex = [NSRegularExpression regularExpressionWithPattern:
         @"^\\d{1,5}([.]\\d{1,3})?|[.]\\d{1,3}$" options:NSRegularExpressionCaseInsensitive error:&error];

     if ([regex numberOfMatchesInString:txtInput.text options:0 range:NSMakeRange(0, [txtInput.text length])]) 
         NSLog(@"Matched : %@",txtInput.text);
     else
        NSLog(@"Not Matched : %@",txtInput.text);
}

"I am doing it in a buttonTap method".

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1  
If an answer suited your needs, instead of putting it in your original question as you've done, you should better accept it. That way, you're question will be marked as resolved and could then be useful to other people. Same for the other questions you already asked. –  sp00m Apr 25 '13 at 11:08
    
I really mistakenly added your expression,,,,,apologies for same –  gagan sharma Apr 25 '13 at 11:27

4 Answers 4

up vote 7 down vote accepted

This simple one should suit your needs:

\d*[.]?\d+

"Digits (\d+) that can be preceded by a dot ([.]?), which can itself be preceded by digits (\d*)."

Since you're talking about prices, neither scientific notation nor negative numbers are necessary.


Just as a point of interest, here's the one I usually used, scientific notation and negative numbers included:

[-+]?\d*[.]?\d+(?:[eE][-+]?\d+)?

For the new requirements (cf. comments), you can't specify how many digits you want on the first regex I gave, since it's not the way it has been built.

This one should suit your needs better:

\d{1,5}([.]\d{1,3})?|[.]\d{1,3}

"Max 5 digits (\d{1,5}) possibly followed ((...)?) by a dot itself followed by max 3 digits ([.]\d{1,3}), or (|) simply a dot followed by max 3 digits ([.]\d{1,3})".

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Ahahaha, this neglects the possiblity of a (optional) whitespace between +/- and the first number... –  Quandary Apr 25 '13 at 10:32
    
Oh wait, I'm wrong, double.TryParse also doesn't take a whitespace in between - and the number. Filed bug 785552 for the .NET framework :) –  Quandary Apr 25 '13 at 10:41
    
tried with 123, 123.45 didn't work using NSRegularExpression - Objective C,,,unsolved still... –  gagan sharma Apr 25 '13 at 11:06
1  
@gagansharma I never used NSRegularExpression, but maybe you have to double-escape the backslashes: \\d*[.]?\\d+. Please try and let me know. –  sp00m Apr 25 '13 at 11:10
1  
Great it finally worked for me. trillions of THanks –  gagan sharma Apr 27 '13 at 12:38

Let's do this per-partes:

  • Sign in the beginning: [+-]?
  • Fraction number: \.\d+
  • Possible combinations (after sign):
    • Number: \d+
    • Fraction without zero \.\d+
    • And number with fraction: \d+\.\d+

So to join it all together <sign>(number|fraction without zero|number with fraction):

^[+-]?(\d+|\.\d+|\d+\.\d+)$
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If you're not restricting the lengths to 5 digits before the decimal and 3 digits after then you could use this:

^[+-]?(?:[0-9]*\.[0-9]|[0-9]+)$

If you are restricting it to 5 before and 3 after max then you'd need something like this:

^[+-]?(?:[0-9]{0,5}\.[0-9]{1,3}|[0-9]{1,5})$

As far as the difference between your regexes goes, the first one limits the length of the number of digits before the decimal marker to 1-5 with and without decimals present. The second one only allows a single digit in front of the decimal pointer and 1-5 digits if there is no decimal.

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How about this: ^([+-])?(\d+)?([.,])?(\d+)?$

            string input = "bla";
            if (!string.IsNullOrWhiteSpace(input))
            {
                string pattern = @"^(\s+)?([-])?(\s+)?(\d+)?([,.])?(\d+)(\s+)?$";

                input = input.Replace("\'", ""); // Remove thousand's separator
                System.Text.RegularExpressions.Regex.IsMatch(input, pattern);
                // if server culture = de then reverse the below replace
                input = input.Replace(',', '.');
            }

Edit:
Oh oh - just realized that's where we run into a little bit of a problem if an en-us user uses ',' as thousand's separator....

So here a better one:

        string input = "+123,456";
        if (!string.IsNullOrWhiteSpace(input))
        {
            string pattern = @"^(\s+)?([+-])?(\s+)?(\d+)?([.,])?(\d+)(\s+)?$";

            input = input.Replace(',', '.'); // Ensure no en-us thousand's separator
            input = input.Replace("\'", ""); // Remove thousand's separator
            input = System.Text.RegularExpressions.Regex.Replace(input, @"\s", ""); // Remove whitespaces

            bool foo = System.Text.RegularExpressions.Regex.IsMatch(input, pattern);
            if (foo)
            {
                bool de = false;
                if (de) // if server-culture = de
                    input = input.Replace('.', ',');

                double d = 0;
                bool bar = double.TryParse(input, out d);
                System.Diagnostics.Debug.Assert(foo == bar);

                Console.WriteLine(foo);
                Console.WriteLine(input);
            }
            else
                throw new ArgumentException("input");
        }
        else
            throw new NullReferenceException("input");

Edit2:
Instead of going through the hassle of getting the server culture, just use the tryparse overload with the culture and don't resubstitute the decimal separator.

double.TryParse(input 
               , System.Globalization.NumberStyles.Any
               , new System.Globalization.CultureInfo("en-US")
               , out d
);
share|improve this answer
    
No need to put so many parentheses. Moreover, (X+)? should be reduced to X*. Exactly yours, but reduced: ^\s*[+-]?\s*\d*[.,]?\d+\s*?$. Also, the lazy match of the last spaces isn't really necessary. –  sp00m Apr 25 '13 at 10:54

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