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How can I check if two URLs are the same in javascript?

For example I wouldn't want to store both of these in a database:

or both of these:

or both of these:

...and what about GET data in URLs? My database could get really messy.

Is there a way I can convert all of the URLs into some standard form so that checking for duplicates would be much simpler?

Thanks everyone!

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None of those are really the same. Are those the only differences that you want merged? – Phrogz Jan 19 '12 at 19:53
It is not always true that content on is the same as on Same for your other examples. Keep that in mind. – Konrad Dzwinel Jan 19 '12 at 19:53
Are you planning on using JS to access a database?... – cambraca Jan 19 '12 at 19:54
Doesn't google do something like this? They don't have duplicate urls in their search results. Or do they check the contents of the page and make sure they're the same, before declaring them duplicate URLs? – Web_Designer Jan 19 '12 at 19:55
@cambraca I'm using HTML5 localstorage – Web_Designer Jan 19 '12 at 19:57

2 Answers 2

Google solved this problem by usign link rel="canonical" - this proces is called canonicalization.

Of course you can simplify urls with regexp as you describe, but "" and "" could be different sites.

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If you just want to store the based domain for a site this is what I would do.

var url = ""; // This is the url you want to process.

var filter = [

// Loops through array and removes the protocol and www. prefixes if present
for (var i in filter) {
    url = url.replace(filter[i], "");

// Returns everything before the first / in the URL
var cleanUrl = url.split("/")[0]; // cleanUrl should equal "" now

I would probably wrap it in a function so that it would be easy to run multiple times too.

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I want subfolder & subdomains to work aswell. Your method would turn both and into That's not really what i'm looking for. – Web_Designer Jan 19 '12 at 20:04
This would work for subdomains but not subfolders. If you want to support subfolders just don't do the .split("/")[0] part. – pseudosavant Jan 19 '12 at 20:54

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