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I have a string that needs to be the following format: XX999900. XX has to be only character no decimal followed by 6 digits.

So I thought of using regex in the following way:

string sPattern = @"^\\[A-z]{2}\\d{6}$";
indexNumber = "ab9999.00";
if (Regex.IsMatch(indexNumber, sPattern)
{
     // do whatever
}

It fails. Can somebody tell me what is wrong?

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1  
Can you please explain what are valid inputs and invalid inputs? You have "XX999900" in your description, but "ab9999.00" in your code (note the decimal point). The Regex will be different for each. – Oded Aug 8 '12 at 18:20
    
Check Reg-ex here, hopefully it will help you regular-expressions.info/examples.html – KKP Aug 8 '12 at 18:28
up vote 7 down vote accepted

I don't believe [A-z] is a valid character class. You certainly do not need \\ when using @.

Try this:

@"^[a-zA-Z]{2}\d{6}$"

If you need the format to have 4 numerals followed by a . then two more numerals, try this:

@"^[a-zA-Z]{2}\d{4}\.\d{2}$"

(Note that for .NET, \d will match numerals in any script, so you may want to replace it with [0-9] if you want to only match those)

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@Downvoter - care to comment? – Oded Aug 8 '12 at 18:18
    
It works. Thank you very much – Dadou Aug 8 '12 at 19:26

You have way too many escape characters. Try:

string sPattern = @"^[a-zA-Z]{2}\d{6}$";
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A-z isn't valid (mixed case), and you don't have 6 consecutive digits. You have 4, a decimal, and then 2 more. Try

^[a-zA-Z]{2}\d{4}.\d{2}$
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It fails because the value you are testing as a decimal in it and your regex pattern does not. Plus, your regex pattern is going to look at the entire string. That is ^ says start at the beginning of the string and $ says the end of the string. If you only want a "starts with", then drop the $ at the end of the pattern.

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