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first thanks for helping in advanced :D , i need a Regular that validate Decimal (18,3) this mean max number of digits before comma is 15 and accept 3 numbers after comma . 18 precision 3 scale .

Valid

123456789.123
123456789123456.12
12345.1
123456789123456

not valid

1234567891234567
123.1234
1.12345
.1234

Thank you .

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closed as off-topic by fvu, Toto, fancyPants, psubsee2003, CSᵠ Sep 29 '13 at 14:00

This question appears to be off-topic. The users who voted to close gave this specific reason:

  • "Questions asking for code must demonstrate a minimal understanding of the problem being solved. Include attempted solutions, why they didn't work, and the expected results. See also: Stack Overflow question checklist" – fvu, Toto, fancyPants, psubsee2003, CSᵠ
If this question can be reworded to fit the rules in the help center, please edit the question.

2  
So, what's the issue? Did you try anything? – Rohit Jain Sep 29 '13 at 9:46
    
i need Regular expression to validate or to accept i didnt write regex before and tried to doit and couldn't. – user2828076 Sep 29 '13 at 9:49

First of all, the character . is called a dot, or period, or full stop, or decimal point, while a comma is the character: ,.

Second, you can designate a digit in regex in a character class: [0-9] means any digit between 0 to 9.

A dot in regex will match any character, so you need to escape it by means of a backslash (or putting it in a character class).

Remember though that the elements in the same character class can be in any order, so that if you want to get something having digits and a dot and use [0-9.] it will match any digit, or a dot.

Now, you will need finite quantifiers for your task, which are designated by braces in the form of {m,n} where m is the minimum and n the maximum. If you now use... [0-9.]{1,15} it would mean the character class [0-9.] repeated 1 up to 15 times.

But if you use [0-9.]{1,15}, it will also match ...... or 1234 (remember I said earlier that the order did not matter.

So, applying all this, you get the regex:

[0-9]{1,15}\.[0-9]{1,3}

Now, since you are doing a validation, you will need anchors to specify that the regex should test the whole string (instead of simply finding a match).

^[0-9]{1,15}\.[0-9]{1,3}$

Last, since you can have optional decimals, you will have to use a group and the quantifier ? which means 0 or 1:

^[0-9]{1,15}(?:\.[0-9]{1,3})?$

In your code, you will create the regex a bit like this:

string myString = "123456789.123";
var regexp = new Regex(@"^[0-9]{1,15}(?:\.[0-9]{1,3})?$");
var setMatches = regexp.Matches(myString);
foreach (Match match in setMatches)
{
    Console.WriteLine(match.Groups[0].Value);
}

This will output the decimal if it passed the regex.

Or something like this:

string myString = "123456789.123";
Match match = Regex.Match(myString, @"^[0-9]{1,15}(?:\.[0-9]{1,3})?$");
if (match.Success)
{
    Console.WriteLine(match.Groups[0].Value);
}
share|improve this answer
    
thanks a lot [0-9]{1,15}\.[0-9]{1,3} is working fine but i have to enter 3 digits after DOT , can i make it optional to take the digits after dot ? – user2828076 Sep 29 '13 at 11:13
    
@user2828076 Oh, right, sure. I actually missed that part ^^; I'll add it to my answer in a bit – Jerry Sep 29 '13 at 11:18
    
@user2828076 Done, I've edited that part in my answer. – Jerry Sep 29 '13 at 11:19

This regex should work for you:

/^\d{1,15}(\.\d{1,3})?$/

In Java:

Pattern p = Pattern.compile("^\\d{1,15}(\\.\\d{1,3})?$");
share|improve this answer

try this

  String str="Your input";
    Pattern pattern = Pattern.compile("^\\d{1,15}($|(\\.\\d{1,3}$))");
    Matcher matcher = pattern.matcher(str);
    while (matcher.find()) {
        System.output.Println(matcher.group());
    }

in c# try this

    MatchCollection mc = Regex.Matches("your text", "^\d{1,15}($|(\.\d{1,3}$))");
             foreach (Match m in mc)
             {
                Console.WriteLine(m);
            }
share|improve this answer
    
nah didnt work mate. – user2828076 Sep 29 '13 at 10:04
    
try now, i made some changes, this one will wrk,change 15 to 18 if need max 18 digits before . – Rijo Joseph Sep 29 '13 at 10:07
    
if you have notepad++ , give you test cases and try this regex in find " ^\d{1,15}($|(\.\d{1,3}$)) " without quotes, in java you have to give escape backslashs – Rijo Joseph Sep 29 '13 at 10:11
    
i am using csharp and its not even accepting normal numbers like 4 or 452 – user2828076 Sep 29 '13 at 10:18

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