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I know regex and substrings is a common question on here but i can not seem to correlate what I am reading to actual application.

What i want to do:

take a string, look at the last 16 characters of the string, and make sure its alphanumeric. Below is what i have come up with.

 if (Regex.IsMatch(STRINGTOCHECK.ToLower().Substring(16), @"^[a-zA-Z0-9]*$"))

request

some code showing me the right way to accomplish this

or pointing out where my code is wrong

etc.

All help is appreciated!

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1  
Substring(16) starts the substring at that point, it doesn't start that far from the end (unless you're lucky with string length.) –  Grant Thomas Feb 2 '12 at 19:38
    
what if i dont know what comes before those last 16 characters? –  toosweetnitemare Feb 2 '12 at 19:39

2 Answers 2

up vote 4 down vote accepted

You need to make sure the last 16 characters are alphanumeric? Just use this regular expression:

[a-zA-Z0-9]{16}$

The problem you have right now is that .Substring(16) will return all characters in the string after and including position 16 - not the last 16 characters. What's more, you're already case-insensitive, so:

if(Regex.IsMatch(STRINGTOCHECK, @"[a-zA-Z0-9]{16}$"))

The final $ anchor makes sure the last 16 characters are being matched.

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thanks @minitech! that's what i was looking for. –  toosweetnitemare Feb 2 '12 at 19:44

The parameter to Substring is the index from which to start.

So, to get a substring of the last 16 characters, you need to subtract 16 from the length of the string.

string last16 = STRINGTOCHECK.Substring(STRINGTOCHECK.Length - 16);
if(Regex.IsMatch(last16, @"^[a-zA-Z0-9]*$")
{

}
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that is what i was thinking i needed to do. is it possible to do that in one line? –  toosweetnitemare Feb 2 '12 at 19:39
    
@toosweetnitemare - Sure, but you loose lots of the readability. Why do it on one line that makes less sense? –  Oded Feb 2 '12 at 19:40
    
i wont be managing this application after i build it. The "manger" of the code has requested i code it that way. Looks like minitech has given me that solution. Thank you for your help. –  toosweetnitemare Feb 2 '12 at 19:43

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