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I am new to regular expressions and the one that i have written might be a very simple one but donot know where I am wrong.

@"^([a-zA-Z._]+)@([\d]+)"

This RE is for the following string:

somename@somenumber

Now i am trying to retrieve the somename and somenumber. This is what i did:

ac.name = m.Groups[0].Value;
ac.number = m.Groups[1].Value;

Here ac.name reads the complete string, and ac.number reads somenumber. Where am I wrong in ac.name?

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5 Answers 5

up vote 1 down vote accepted

This regex is correct. I think your mistake is in somewhere else. You seem to use C#. So, you should think about the regex usage in the language.

Looking to the code sample in MSDN, you need to use 1-based indexes while accessing Groups instead of zero-based (as also Kent suggested). So, use this:

String name   = m.Groups[1].Value;
String number = m.Groups[2].Value;
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Thanks. That helped!! –  Cdeez Aug 3 '12 at 8:55
    
Ok, then please retag your question with C# also. –  mmdemirbas Aug 3 '12 at 8:56
    
Yup. I updated.. –  Cdeez Aug 3 '12 at 9:00

I think you should move the + into the capture group:

@"^([a-zA-Z._]+)@([\d]+)"
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sorry that was a typing mistake. I updated it –  Cdeez Aug 3 '12 at 7:56
    
what is the language? can you share an actual example? –  davidrac Aug 3 '12 at 7:57
    
Your problem might be that the '.' matches all (even though as far as I remember it should not have a special meaning inside []. at least in ruby it doesn't) try escaping it like this: '\.' –  davidrac Aug 3 '12 at 8:00

i guess the regex is correct, the problem is, you get the ac.name not from group 1 but group(0), which is the whole string. try this:

ac.name = m.Groups[1].Value;
ac.number = m.Groups[2].Value;
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If this is C#, try without the ^

([a-zA-Z\._]+)@([\d]+)

I just tried it out and it groups properly

Update: escaped the .

If you want only one match (and hence the ^ in original expression), use .Match instead of .Matches method. See MSDN documentation on Regular Expression Classes.

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use this regex (\w+)@(\d+([.,]\d+)?)

Groups[1] will be contain name

Groups[2] will be contain number

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