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I am trying to write a regular expression for accepting a Number of length upto 14 and if they keep the decimal point then it should accept only 2 numbers after the decimal point.

I have tried it from this link below : http://stackoverflow.com/a/9967694/861995

But, the same Regex.IsMatch function is not accepting the normal regex expression's starting with ^ and ending with $.

Please help me on this i am new to regular expressions

private void ChangedSellUp_KeyDown(object sender, KeyEventArgs e)
    {            
        string pattern = "^[0-9]*$";            
        Regex rx = new Regex(pattern);
        if (rx.IsMatch(ChangedSellUp.Text))
        {
            e.Handled = true;
        }
    }  

Here ChangedSellup.Text is my text box value, i am trying to restrict the value based on 2 conditions

  1. Its Should Accept only Numbers and length should not increase 14 till Decimal Point.
  2. If decimal Point is there after that only 2 numbers are allowed.

e.g ; valid Values - 14.23, 12345678901234.23 Invalid values - 1.2344, 12345678901234.3455

Please help me with the regex ??

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2  
Please show your exact code that is causing a problem, not a link to another answer. Also, tell us what error is occurring? How do you know it isn't working properly? Maybe it's your regex that is bad –  musefan Aug 21 '13 at 11:01
    
Your regex will match any sequence of digits, however long, and no other characters. –  AlSki Aug 21 '13 at 11:30

2 Answers 2

up vote 1 down vote accepted

Here's the Regex.IsMatch that does what you want:

Regex.IsMatch("12345678901234.12", @"^\d{1,14}(?:\.\d{1,2}){0,1}$")

That particular regex is for a number up to 14 digits before the decimal point and 1 or 2 digits after the decimal point (with the whole decimal part being optional)

A good place to test it is here: http://regexhero.net/tester/

Because you've mentioned ^ and $, I've included them in the regex, which will only parse lines with just the number (so, for example " 1234.12 " won't return true in the IsMatch, just remove the "^" and "$" if that is not important).

Another good resource for regex is this: http://www.mikesdotnetting.com/Article/46/CSharp-Regular-Expressions-Cheat-Sheet

UPDATE:

Since the goal is that the user cannot write anything other than something that satisfies that Regex in a textbox you can do this in the text changed event (key down is not a good option since you'd have to deal with converting KeyEventArg's Key to a char). So the easiest way to achieve what you need is:

  private void TextBox1_TextChanged(object sender, TextChangedEventArgs e)
  {
     if (!Regex.IsMatch(TextBox1.Text, @"^\d{1,14}(?:\.\d{0,2}){0,1}$"))
     {
        TextBox1.Text = TextBox1.Text.Substring(0, TextBox1.Text.Length - e.Changes.Last().AddedLength);
        TextBox1.CaretIndex = TextBox1.Text.Length;
     }
  }

Please notice the slight change in the regular expression that will accept a number followed by a dot, with no extra digits, this is because as you are writing a number with decimal places you'll be in a state where this happens, for example: "123."

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i have done as suggested but my text box is accepting even characters. –  Ujjwal27 Aug 21 '13 at 11:25
    
what exactly do you mean when you say that your textbox accepts even characters? Is your goal that your users can only type numbers? –  Rui Aug 21 '13 at 11:30
    
yes, user should be able to type only numbers with the above mentioned condition, i know the regular expression is correct but the regex.ismatch functiopn is not working –  Ujjwal27 Aug 21 '13 at 11:36
    
The regex is the correct(ish) one. I've updated the answer so that it reflects what you need to achieve –  Rui Aug 21 '13 at 13:37

The best way to build regular expressions is with a Regex Tester. There's a really good one you can download called Cappucino, or you can use a web one, I favour http://derekslager.com/blog/posts/2007/09/a-better-dotnet-regular-expression-tester.ashx

Then it is simply a case of building the regex, I'm testing against 12345678901234.00

If you start with \d which is the regex pattern for a numeric digit then you get all sixteen matches you would expect.

Add a + which is short for one or more, so \d+ matches twice 12345678901234 and 00

If you limit to a range of only two digits i.e. \d{2} then you get 8 pairs of numbers

To add a . you need to escape the character as . is a pattern to match any digit, so instead use \.\d{2} to match only .00 (which was your optional part of the number)

If you pattern match a range of digits between 1 and 14 long \d{1,14} then you will match 12345678901234 (which is the main number) and 00

So now you can put it together, we make the post decimal point part optional by saying we want it either 0 or 1 times {0,1} or with a shorthand variant ? to give

\d{1,14}(\.\d{2})?

which matches correctly on these

12345678901234.00
123456.00
1
1234

and because I'm not matching the start and end of the line, also matches on these

500.00USD
$1000
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