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Ok so i have a json array like this:

{
  "forum":[
    {
      "id":"1",
      "created":"2010-03-19 ",
      "updated":"2010-03-19 ","user_id":"1",
      "vanity":"gamers",
      "displayname":"gamers",
      "private":"0",
      "description":"All things gaming",
      "count_followers":"62",
      "count_members":"0",
      "count_messages":"5",
      "count_badges":"0",
      "top_badges":"",
      "category_id":"5",
      "logo":"gamers.jpeg",
      "theme_id":"1"
    }
  ]
}

I want to use jquery .getJSON to be able to return the values of each of the array values, but im not sure as to how to get access to them.

So far i have this jquery code

$.get('forums.php', function(json, textStatus) {
            //optional stuff to do after success
            alert(textStatus);
            alert(json);

        });

If you can help id be very happy :)

share|improve this question
    
You've a large object inside an array (which actually contains only one item, the object). This is likely a confusion of terminology. It's unclear what you want to end up. Please elaborate. What would you like to end up? Displaying each object property as key=value pair? Reading this guide may help you a bit further as well to get terminology right: hunlock.com/blogs/… (and maybe even answer your own question). –  BalusC Mar 21 '10 at 16:54
    
sorry i should have mentioned that the forum array has more then one sub array items –  ChrisMJ Mar 21 '10 at 17:09
    
I see, I updated my answer accordingly. –  BalusC Mar 21 '10 at 17:29
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2 Answers 2

up vote 51 down vote accepted

The {} in JSON represents an object. Each of the object's properties is represented by key:value and comma separated. The property values are accessible by the key using the period operator like so json.forum. The [] in JSON represents an array. The array values can be any object and the values are comma separated. To iterate over an array, use a standard for loop with an index. To iterate over object's properties without referencing them directly by key you could use for in loop:

var json = {"forum":[{"id":"1","created":"2010-03-19 ","updated":"2010-03-19 ","user_id":"1","vanity":"gamers","displayname":"gamers","private":"0","description":"All things gaming","count_followers":"62","count_members":"0","count_messages":"5","count_badges":"0","top_badges":"","category_id":"5","logo":"gamers.jpeg","theme_id":"1"}]};

var forum = json.forum;

for (var i = 0; i < forum.length; i++) {
    var object = forum[i];
    for (property in object) {
        var value = object[property];
        alert(property + "=" + value); // This alerts "id=1", "created=2010-03-19", etc..
    }
}

If you want to do this the jQueryish way, grab $.each():

$.each(json.forum, function(i, object) {
    $.each(object, function(property, value) {
        alert(property + "=" + value);
    });
});

I've used the same variable names as the "plain JavaScript" way so that you'll understand better what jQuery does "under the hoods" with it. Hope this helps.

share|improve this answer
    
ok so i have this, but when i run it, it is printing out Undefined within my <li> tag var url ="forums.json"; $.getJSON (url, function(data){ alert("data loaded"); $.each(data, function(i, item) { $("#forums").html("<li>"+ item.displayname +"</li>") alert("worlds listed"); }); }); –  ChrisMJ Mar 21 '10 at 23:23
    
Replace $.each(data, ... by $.each(data.forum, ... exactly as in the example. Your data is json in my example. JSON is an object. The forum is a property which contains the array. –  BalusC Mar 21 '10 at 23:29
    
thank you worked a treat!!! –  ChrisMJ Mar 21 '10 at 23:45
    
You're welcome. –  BalusC Mar 21 '10 at 23:48
    
+1 really nice answer ... –  NullPoiиteя Feb 22 '13 at 15:38
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That should work fine. Just use $.getJSON instead of $.get.

share|improve this answer
    
o yea, but how do i itterate each of the values say i want to get "displayname":"gamers" and echo what should be gamers –  ChrisMJ Mar 21 '10 at 16:51
    
Your json variable will be a JavaScript object. Get it as normal: for (var user in json.forum) { alert(user.displayname); }. –  Samir Talwar Mar 21 '10 at 18:19
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