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Whats more economical RegExp that fulfill all example below:

  • W.12345678
  • W.12345678.12,
  • W.12345678.12.123
  • W.12345678.12.123.12

1 char (8digits) mandatory followed by a combination of (.) and 2,3,2 digits.

I found :-

^[A-Z]{1}\.\d{8}(?:\.\d{2}|\.\d{2}\.\d{3}|\.\d{2}\.\d{3}\.\d{2}|\.\d{2}\.\d{3}\.\d{2})$
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What are you trying to do exactly? First I assume these are strings, but are you trying to verify (test) with a regex that they are constructed correctly, or perhaps regex match the parts for some other use? –  Xotic750 Jun 11 '13 at 12:35
    
Furthermore, the 1 char, I assume capital modern latin alphabet, by your original regex? –  Xotic750 Jun 11 '13 at 14:16

4 Answers 4

You can make a few improvements:

{1} never does anything. So drop it.

Your last two alternatives are the same. So drop the last one. That would give

^[A-Z]\.\d{8}(?:\.\d{2}|\.\d{2}\.\d{3}|\.\d{2}\.\d{3}\.\d{2})$

Finally, you could use optional parts instead of alternation, if you prefer:

^[A-Z]\.\d{8}(?:\.\d{2}(?:\.\d{3}(?:\.\d{2})?)?)?$

Whether that's more readable or not is up to you. As thg435 points out, you can save another two characters, by expanding the {2}

^[A-Z]\.\d{8}(?:\.\d\d(?:\.\d{3}(?:\.\d\d)?)?)?$

But I personally don't like to mix {n} quantifiers with written out repetitions, and the gain from it is doubtful.

Also, in regexes that already contain a lot of backslashes, I prefer single-character classes to escapes where applicable (but that's a matter of taste), so here is an alternative:

^[A-Z][.]\d{8}(?:[.]\d{2}(?:[.]\d{3}(?:[.]\d{2})?)?)?$
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to compress it even further, \d\d is shorter than \d{2} ;) –  georg Jun 11 '13 at 12:34
    
@thg435 true, I only use that when I'm not mixing with other {n} though. But yeah again, that's a matter of taste. I might include it. –  Martin Büttner Jun 11 '13 at 12:36
    
THANKS m.buettner...really prompt response... 'yeah the last one was a type while posting the question. –  Sandeep Goel Jun 11 '13 at 12:39

How about:

^[A-Z]\.\d{8}(?:\.\d\d(?:\.\d{3}(?:\.\d\d)?)?)?$
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Thanks M42...... –  Sandeep Goel Jun 11 '13 at 12:40
    
You forgot the second dot and the anchors! –  Bergi Jun 11 '13 at 13:06
    
@Bergi: Thanks, corrected. –  M42 Jun 11 '13 at 13:11

For any number of .12.123.12.123.... you can use this:

^[A-Z]\.\d{8}(?:\.\d{2}(?:\.\d{3}\.\d{2})*(?:\.\d{3})?)?$
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Thanks- Casimir et Hippolyte –  Sandeep Goel Jun 11 '13 at 12:40

As an alternative to creating and maintaining what can be a difficult regex, you could verify the strings with something like this.

Javascript

var strings = [];

strings.push("W.12345678");
strings.push("W.12345678.12");
strings.push("W.12345678.12.123");
strings.push("W.12345678.12.123.12");

function verify(string) {
    var parts = string.split("."),
        length = parts.length,
        lengths = [1, 8, 2, 3, 2],
        index = 1,
        part;

    if (length < 2 || length > 5 || (part = parts[0]).length !== lengths[0] || part.search(/[^A-Z]/) !== -1) {
        return false;
    }

    while (index < length) {
        part = parts[index];
        if (part.length !== lengths[index] || part.search(/[^\d]/) !== -1) {
            return false;
        }

        index += 1;
    }

    return true;
}

strings.forEach(function (string) {
    console.log(string, verify(string));
});

On jsfiddle

I haven't tried to optimise the above, and there is room for improvement. But to give you an idea of performance as it stands here is a jsperf of the above vs one of the regexs.

With optimisation it is feasible to make it faster than the regex, and remove the regexs completely. See Fastest method for testing a fixed phone number pattern

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Thank you Xotic750....... Boy made you work so hard. Thanks a million. –  Sandeep Goel Jun 12 '13 at 10:03

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