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I want a regular expression that accepts all numbers, alphabets and only the hyphen (‐) from special characters.

I am trying this expression: ^\d+$/[-]/[a-z] but it does not work. I want to accept expressions like this one:

Emp-IN-0000001

Can someone help me with this?

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3 Answers

up vote 4 down vote accepted

If it's always this format (Emp-IN-0000001), then use this regexp:

^[a-zA-Z]+-[a-zA-Z][a-zA-Z]-[0-9]+$

or, if you have extended regexps:

^[a-zA-Z]+-[a-zA-Z]{2}-\d+$

when there are always seven digits, use this:

^[a-zA-Z]+-[a-zA-Z]{2}-\d{7}$

You can even say:

^Emp-IN-\d{7}$

if it's exactly "Emp-IN-" + digits.

Btw, this is not C# specific, you can use these regular expressions with any language, as long as they support regexps at all.

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yea its always this format only the last 2 or three digits will change ,.. thank you!!! –  Sana.91 Oct 28 '12 at 18:58
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If you stickily wants to follow this format Emp-IN-0000001, then you might need to use this regular expression:

^[a-zA-Z]+-[a-zA-Z]+-\d+$
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I guess Olaf Dietsche has beaten you to it ;) –  m.buettner Oct 28 '12 at 18:37
    
Yea you are right, i am such a loser, saw his answer when posted mine :) –  FSX Oct 28 '12 at 18:39
    
:) thanks for the contribution –  Sana.91 Oct 28 '12 at 18:59
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I don't really get what you tried with your regular expression, but it is actually as simple as this:

^[a-zA-Z\d-]+$

Or if you want to allow empty strings:

^[a-zA-Z\d-]*$

If you use the case-insensitive modifier with your regular expression, you can leave out either the a-z or A-Z from both variants.

I recommend you read up on some regex basics in this great tutorial.

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Thank u! .. everything worked just fine –  Sana.91 Oct 28 '12 at 19:00
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