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I want to test a given string against 20 or so regular expressions. What's a clean way to do this in Javascript? I'm more concerned about clean code and readability than efficiency (but I don't want it to be super slow either).

Right now I have:

if (href.indexOf('apple.com') > -1 ||
    href.indexOf('google.com') > -1 ||
    href.indexOf('yahoo.com') > -1 ||
    href.indexOf('facebook.com') > -1) {
    performDarkMagic()
}

But it's going to start looking kind of messy as that list grows. Maybe I could just create an array of regular expressions and execute something like _.any() and apply regex.test on each?

Edit: the strings/regexes to match may become more complicated, I just used simple URLs to make the example readable.

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6 Answers 6

Use the test function for regular expressions.

More information on regular expressions here. https://developer.mozilla.org/en/JavaScript/Reference/Global_Objects/RegExp

var re = /((google)|(facebook)|(yahoo)|(apple))\.com/;
re.test( str ); // returns true or false;

Test cases.

Live Demo Here: http://jsfiddle.net/rkzXP/1/

    var func = function( str ){
        var re = /((google)|(facebook)|(yahoo)|(apple))\.com/;
        return re.test( str );
    };
    test("test for valid values", function() {
        equal( func("google.com"), true);
        equal( func("facebook.com"), true);
        equal( func("apple.com"), true);
    });
    test("test for invalid values", function() {
        equal( func("googl.com"), false);
        equal( func("faceook.com"), false);
        equal( func("apple"), false);
    });

So you can rewrite your code as the following.

var re = /((google)|(facebook)|(yahoo)|(apple))\.com/;
if( re.test(str) ){
    performDarkMagic()
}
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2  
You forgot to quote the .. –  Neil Jun 6 '12 at 20:07
    
@Neil Thanks. Fixed. –  Larry Battle Jun 6 '12 at 20:11
    
Oh, sorry it's for qunit. But it's not needed. Let me take it out. –  Larry Battle Jun 6 '12 at 20:13

You could put each one in array then looping over each.

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var patterns = ['apple.com', 'google.com', 'yahoo.com', 'facebook.com', ...]
var callFunc = false;

patterns.forEach(function(item){
   if(href.indexOf(item) > -1){
       callFunc = true;
       break;
   }
});

if(callFunc) {
   performDarkMagic();
}
share|improve this answer
    
forEach ftw +1 /me waits for the people to caution against it working not working in IE.. le sigh. –  Loktar Jun 6 '12 at 20:07
1  
forEach wtf -1? –  Bergi Jun 6 '12 at 20:09
    
@Bergi why would you downvote that? Its a much more elegant solution than the one you provided.. which doesn't look much different from the op's. –  Loktar Jun 6 '12 at 20:10
    
@Loktar: Because the OP needs some()! –  Bergi Jun 6 '12 at 20:11
1  
@Bergi Why the downvote exactly? –  Hunter McMillen Jun 6 '12 at 20:23

Yes, building an array and using .any() or .some() is just fine, especially when there will be more than 4 values:

if ( ["apple","google","yahoo","facebook",...].some(function(host){
    return href.indexOf(host+".com") != -1;
  }) {
    performLightMagic();
}

Yet I can't see regexes there, there are just strings; so you could simplify using regex.test() to:

if (/apple\.com|google\.com|yahoo\.com|facebook\.com/.test(href)) { performLightMagic(); }

or even

if (/(apple|google|yahoo|facebook)\.com/.test(href)) { performLightMagic(); }
share|improve this answer
    
This would get out of hand and ugly very quickly the larger the list gets. –  Loktar Jun 6 '12 at 20:11
    
Hm, it's much more shorthand than array notation. Of course everything depends on reusability of that object... –  Bergi Jun 6 '12 at 20:18
    
Yeah in his question though he said he has to test against 20 or so. IMO an array is the cleaner looking method. –  Loktar Jun 6 '12 at 20:19
    
I never said it would not :-) And for independent regexes, as he mentioned, the array will be easier to build. –  Bergi Jun 6 '12 at 20:21

How I would do it: factor it out into a function. Put each regex in an array, loop over them and return true the first time indexOf > -1. If you reach the end of the loop return false.

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loop through a regex array and then do:

result=result AND (result_of_regex);

next;

after the loop return result

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1  
There's no need to loop on after the first false result... –  Bergi Jun 6 '12 at 20:23

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