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I'm trying to validate in the most efficient way 2 different ways to identify a location string, but either can have a slight variation and either can have a set of characters before and after the main string.

Valid values:

Number 1

14-36-085-17 W6
14-36-085-17-W6
14-36-085-17W6

Number 2

D 096 H 094A15

Number 3 either of those above can have 3 digits before and 2 digits after the main string (or not)

100 14-36-085-17W6 00
200 D 096 H 094A15 00

Of those 5 additional characters, these are the rules:

  • 1st - always 1 or 2
  • 2nd - always 0
  • 3rd - 0 to 9
  • 4th - always 0
  • 5th - 0 to 9

So, it would be [1-2]0[0-9] and 0[0-9] respectively, I think. Also note, the first 3 digits are dependent on the last 2 digits and vice versa. The first 3 digits can only be there if the last 2 digits are there, and the last 2 digits can only be there if the first 3 digits are there.

This gives us the following invalid strings which should NOT match:

100 14-36-085-17W6
14-36-085-17W6 00

Here's my code for the two main numbers

function func(s) 
{
  var re = /(^\d{2}-\d{2}-\d{3}-\d{2}W\d$)|(^[A-D] [0-9]{3} [A-L] [0-9]{3}[A-P][0-9]{2}$)/;
  return re.test( s );
}

I'm only assuming use #3 of Case Number 1 for the first validation, because I'm not sure how to do space, dash or nothing as valid.

share|improve this question
1  
to do "space, dash, or nothing as valid", as you put it, [ -]? should work. –  Samuel Reid Jul 8 '13 at 20:47
    
I updated your question based on your requirement in your comment to @SamuelReid's answer. If it's wrong, please correct it. –  ohaal Jul 8 '13 at 21:45

5 Answers 5

up vote 2 down vote accepted

You don't really want to be constructing a big regexp all in one go. It will be hard to read and hard to maintain. And your fellow developers will hate you when they have to debug it while you are on holiday in Cancún sipping margaritas on the beach.

So I'd recommend breaking it down into clear, meaningful chunks (you'll have to use your judgement here: it's your domain). Maybe something like this.

var prefix = '([12]0[0-9] )';
var suffix = '( 0[0-9])';
// ? optionally matches the preceding item.
// And don't forget to escape backslashes when creating
// a regexp from a string.
var num1 = '\\d{2}-\\d{2}-\\d{3}-\\d{2}[- ]?W\\d';
var num2 = '[A-D] [0-9]{3} [A-L] [0-9]{3}[A-P][0-9]{2}';
var numbers = '(' + num1 + '|' + num2 + ')';
var pattern = '^(' + prefix + numbers + suffix + '|' + numbers + ')$';
// Instead of creating a large regexp literal all in
// one go, you can build up the regexp pattern from strings,
// and then use RegExp(pattern) to make a regexp instance.
var rx = RegExp(pattern);

And now you can use rx to match against your input numbers. Feel free to use more meaningful variable names.

But don't just leave it there. This code is crying out for some tests.

var testcases = [
    {
        name: 'Number 1',
        tests: [
            {input: '14-36-085-17 W6', expected: true},
            {input: '14-36-085-17-W6', expected: true},
            {input: '14-36-085-17W6', expected: true}
        ]
    },
    {
        name: 'Number 2',
        tests: [
            {input: 'D 096 H 094A15', expected: true}
        ]
    },
    {
        name: 'Number 3',
        tests: [
            {input: '100 14-36-085-17W6 00', expected: true},
            {input: '200 D 096 H 094A15 00', expected: true},
            {input: '100 14-36-085-17W6', expected: false},
            {input: '14-36-085-17W6 00', expected: false}
        ]
    }
];

Let's try out our regexp. I'm just running these tests in the developer console in Chrome (F12 for that).

testcases.forEach(function(testcase){
    console.log(testcase.name);
    testcase.tests.forEach(function(test){
        var result = rx.test(test.input);
        console.log(test.input + '  result: ' +
                (result ? 'match' : 'no match') +
                (result === test.expected ? ' [pass]' : ' [**FAIL**]'));
    });
    console.log('');
});

And the output.

    Number 1
    14-36-085-17 W6  result: match [pass]
    14-36-085-17-W6  result: match [pass]
    14-36-085-17W6  result: match [pass]

    Number 2
    D 096 H 094A15  result: match [pass]

    Number 3
    100 14-36-085-17W6 00  result: match [pass]
    200 D 096 H 094A15 00  result: match [pass]
    100 14-36-085-17W6  result: no match [pass]
    14-36-085-17W6 00  result: no match [pass]

Great. Having tests gives you confidence to make changes, and reassurance that you haven't broken anything when you do. And it gives me confidence that I'm not giving you a duff answer. If you search you'll see that there are many automated unit testing frameworks available that will make writing tests easier. What I've given you is a rudimentary example. But the big win comes when you start running automated tests at all; everything after that is refinement.

By the way, these tests are just the examples that you supplied in the question as being valid or invalid (thanks for that!). I'd recommend that you find some more examples and build on this. Hopefully I've given you enough pointers that you'd be able to take it from here if what I've done doesn't turn out to be sufficient in any way.

This may seem a little over the top for a regexp answer, but I can't recommend with a clear conscience that you use a huge regexp for validation without also recommending some machinery to keep things manageable.


Further reading
https://developer.mozilla.org/en-US/docs/Web/JavaScript/Guide/Regular_Expressions
http://en.wikipedia.org/wiki/Unit_testing

share|improve this answer
    
Wow - this is much more than I was expecting. As you can probably tell, I'm no programmer, but I have to use javascript occasionally to validate things. Thanks so much! –  trueimage Jul 8 '13 at 22:39
    
Yeah, it's more than I was expecting too! But the more I thought about it the more I had to keep adding stuff. There are other good answers here now too (there weren't when I started writing, sorry!). –  mintsauce Jul 8 '13 at 22:44
    
+1 Very nice breakdown. –  ohaal Jul 8 '13 at 23:11
    
+1 for small test framework ;-) –  Ja͢ck Jul 9 '13 at 2:34

/^([1-2]0[0-9] )?[0-9]{2}-[0-9]{2}-[0-9]{3}-[0-9]{2}[- ]?W[0-9]( 0[0-9])?$/

for the first one, and

/^([1-2]0[0-9] )?[A-D] [0-9] [0-9]{3} [A-L] [0-9]{3}[A-P][0-9]{2}( 0[0-9])?$/

for the second. I'm not great with regex, so it's completely possible I messed something up somewhere.

share|improve this answer
    
This is great, thanks. But - the leading 3 and trailing 2 chars is an "all or nothing" thing. Your pattern validates this: "100 14-36-085-17W6 00" but also "100 14-36-085-17W6" and "14-36-085-17W6 00" only the first is correct –  trueimage Jul 8 '13 at 21:07

Based on your requirement in your comment on @SamuelReid's answer, the regex will get ugly. It gets hard when two string requirements are dependent on each other being on/off (on opposite sides of the string).

The regex:

/^(?:(?:[12]0\d (?:\d{2}-\d{2}-\d{3}-\d{2}[ -]?W\d|[A-D] \d{3} [A-L] \d{3}[A-P]\d{2}) 0\d)|(?:\d{2}-\d{2}-\d{3}-\d{2}[ -]?W\d|[A-D] \d{3} [A-L] \d{3}[A-P]\d{2}))$/

Nicely formatted/easier to read version:

/^
  (?:
    (?:
      [12]0\d[ ]
      (?:
        \d{2}-\d{2}-\d{3}-\d{2}[ -]?W\d
        |
        [A-D] \d{3} [A-L] \d{3}[A-P]\d{2}
      )
      [ ]0\d
    )
    |
    (?:
      \d{2}-\d{2}-\d{3}-\d{2}[ -]?W\d
      |
      [A-D] \d{3} [A-L] \d{3}[A-P]\d{2}
    )
  )
$/x

(added [] around whitespaces to emphasize them, as they are important and lost in free-spacing mode (x flag) -- which AFAIK is not supported in js)

As you can see from the "easier to read version", the basic regex is just done twice with the added [12]0\d[ ] and [ ]0\d on one of the expressions.

See it live on regexpal


If it needs to match in the middle of a string, simply swap out the ^ and $ anchors with \b on both ends of the regex:

Regex with \b boundary instead of ^ and $

/\b(?:(?:[12]0\d (?:\d{2}-\d{2}-\d{3}-\d{2}[ -]?W\d|[A-D] \d{3} [A-L] \d{3}[A-P]\d{2}) 0\d)|(?:\d{2}-\d{2}-\d{3}-\d{2}[ -]?W\d|[A-D] \d{3} [A-L] \d{3}[A-P]\d{2}))\b/

share|improve this answer

The first number type can be matched with the following expression, which is very similar to what you already have:

/d{2}-\d{2}-\d{3}-\d{2}[ -]?W\d/
                       ^^^^^ 
                       added

I'm using the character set, [- ]?, which optionally matches a space or hyphen.

The extra characters

Matching the left:

/^[12]0\d /

And right part:

/ 0\d$/

All together now:

/^(?:(?:[12]0\d )(?:\d{2}-\d{2}-\d{3}-\d{2}[ -]?W\d|[A-D] \d{3} [A-L] \d{3}[A-P]\d{2})(?: 0\d)|(?:\d{2}-\d{2}-\d{3}-\d{2}[ -]?W\d|[A-D] \d{3} [A-L] \d{3}[A-P]\d{2}))$/

Let's clean that up a little:

var w1 = '\\d{2}-\\d{2}-\\d{3}-\\d{2}[ -]?W\\d',
w2 = '[A-D] \\d{3} [A-L] \\d{3}[A-P]\\d{2}',
words = '(?:' + w1 + '|' + w2 + ')',
prefix = '[12]0\\d ',
suffix = ' 0\\d',
re;

re = new RegExp('^(?:' + prefix + words + suffix + '|' + words + ')$');
share|improve this answer
    
Unfortunately this doesn't address the 5 additional digits mentioned in the question. 3 before and 2 after. –  ohaal Jul 8 '13 at 21:56
    
@ohaal Just added it. –  Ja͢ck Jul 8 '13 at 21:59
1  
@ohaal Well, it's more of the journey than the destination I'd argue :) –  Ja͢ck Jul 8 '13 at 22:15
    
That's pretty much what I've got, except you've used non-capturing groups whereas I didn't bother. Don't forget to escape the backslashes when you compose your regexps from strings though. –  mintsauce Jul 8 '13 at 22:50
    
@NagaJolokia Should have tested that :) thanks! –  Ja͢ck Jul 8 '13 at 23:00

It's really not all that bad (though definitely a big regex). This should cover both patterns and the additional possible digits at the beginning or end.

Here's the pattern that you need:

var re = new RegExp("^([1-2]0\\d )?(\\d{2}-\\d{2}-\\d{3}-\\d{2}[\- ]?W\\d|[A-D] \\d{3} [A-L] \\d{3}[A-P]\\d{2})( 0\\d)?$");

. . . or, alternately:

var re = /^([1-2]0\d )?(\d{2}-\d{2}-\d{3}-\d{2}[\- ]?W\d|[A-D] \d{3} [A-L] \d{3}[A-P]\d{2})( 0\d)?$/

The rest of your code should work fine with it.

Edit: Based on my new understanding of "all or nothing", I've updated my approach . . . I'd do two tests based off of two regex patterns constructed from common patterns.

var sCorePattern = "(\\d{2}-\\d{2}-\\d{3}-\\d{2}[\- ]?W\\d|[A-D] \\d{3} [A-L] \\d{3}[A-P]\\d{2})";
var sSecondaryPattern = "[1-2]0\\d " + sCorePattern + " 0\\d";

var regCorePattern = new RegExp("^" + sCorePattern + "$");
var regSecondaryPattern = new RegExp("^" + sSecondaryPattern + "$");

if (regCorePattern.test(s) || regSecondaryPattern.test(s)) {
    . . . do stuff . . .
}
else {
    . . . do other stuff . . .
}

To me it's a good combination of efficiency and reuse, without sacrificing readability. :)

share|improve this answer
    
You can't do that; if the first three characters are present, the last two must be present too. –  Ja͢ck Jul 8 '13 at 22:15
    
Ooooooh . . . I misread the "all or nothing" part of it . . . I thought he meant "all or nothing" on each individual grouping of optional numbers. Hmmmm . . . –  talemyn Jul 8 '13 at 22:16

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