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Looking for a way to parse key pairs out of the hash/fragment of a URL into an object/associative array with JavaScript/JQuery

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You could probably do it with a pretty simple regexp. What "format" are the key/value pairs in the URL? – gnarf Nov 16 '10 at 18:59
    
Same as they would be in a query string- see my answer – Yarin Nov 16 '10 at 19:23
up vote 26 down vote accepted

Check out: jQuery BBQ

jQuery BBQ is designed for parsing things from the url (query string or fragment), and goes a bit farther to simplify fragment-based history. This is the jQuery plugin Yarin was looking for before he put together a pure js solution. Specifically, the deparam.fragment() function does the job. Have a look!

(The support site I'm working on uses an asynchronous search, and because BBQ makes it trivial to tuck entire objects into the fragment I use it to 'persist' my search parameters. This gives my users history states for their searches, and also allows them to bookmark useful searches. Best of all, when QA finds a search defect they can link straight to the problematic results!)

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@Hovis- this is indeed an awesome plugin, and in fact I've switched over to using it as well. Giving you the answer as it's a much better option than my scratch function. – Yarin Nov 30 '11 at 21:35
    
I'm going to start using this. – The Muffin Man Dec 17 '11 at 19:02
3  
BBQ doesn't work well with Jquery 1.9+ and throws exceptions on load. It hasn't been updated in over three years. I'm not sure BBQ is still a good recommendation. You may be able to hack it to get it to work, see this: github.com/cowboy/jquery-bbq/pull/41 – nostromo Oct 21 '13 at 7:05

Here it is, modified from this query string parser:

function getHashParams() {

    var hashParams = {};
    var e,
        a = /\+/g,  // Regex for replacing addition symbol with a space
        r = /([^&;=]+)=?([^&;]*)/g,
        d = function (s) { return decodeURIComponent(s.replace(a, " ")); },
        q = window.location.hash.substring(1);

    while (e = r.exec(q))
       hashParams[d(e[1])] = d(e[2]);

    return hashParams;
}

No JQuery/plug-in required

Update:

I'm now recommending the jQuery BBQ plugin as per Hovis's answer. It covers all hash parsing issues.

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7  
could you elaborate on the "hash parsing issues"? I have the same need and I don't see anything wrong with your answer. – Christophe Oct 11 '12 at 21:03
    
@Christophe- I honestly can't recall. I'm sure my code works fine, but BBQ is a total plugin with hashchange events, query string parsing, etc, so probably that's what I meant.. – Yarin Sep 12 '13 at 16:31
    
For basic handling your script is awesome!! Too often we default to jQuery libraries for basic tasks. Thanks! – SomethingOn Feb 7 '14 at 15:46

I am using jQuery URL Parser library.

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2  
This parses the url itself -- not the hash items. Useful, but not what the original question is about. – Dan Esparza Dec 15 '10 at 18:30

My answer to this question should do what you're looking for:

url_args_decode = function (url) {
  var args_enc, el, i, nameval, ret;
  ret = {};
  // use the DOM to parse the URL via an 'a' element
  el = document.createElement("a");
  el.href = url;
  // strip off initial ? on search and split
  args_enc = el.search.substring(1).split('&');
  for (i = 0; i < args_enc.length; i++) {
    // convert + into space, split on =, and then decode 
    args_enc[i].replace(/\+/g, ' ');
    nameval = args_enc[i].split('=', 2);
    ret[decodeURIComponent(nameval[0])]=decodeURIComponent(nameval[1]);
  }
  return ret;
};
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You might want to check out jsuri. It seems to work well for me.

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The link is now dead. – Gone Coding Goodbye Nov 12 '15 at 16:42

You can also use the .hash property, demonstrated in this scrolling table of contents example for a clicked link or for the locatioin.

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This jquery API does parse hash tags: https://jhash.codeplex.com/

// get the "name" querystring value
var n = jHash.val('name');

// get the "location" querystring value
var l = jHash.val('location');

// set some querystring values
jHash.val({
    name: 'Chris',
    location: 'WI'
});
share|improve this answer
    
use gatoatigrado 's answer, it's better then the one I posted – SomeoneElse Jun 13 '15 at 2:47

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