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I've been trying this all night but can't seem to get

{"files": [
  {
    "name": "picture1.jpg",
    "size": 902604,
    "url": "http:\/\/example.org\/files\/picture1.jpg",
    "thumbnailUrl": "http:\/\/example.org\/files\/thumbnail\/picture1.jpg",
    "deleteUrl": "http:\/\/example.org\/files\/picture1.jpg",
    "deleteType": "DELETE"
  },
  {
    "name": "picture2.jpg",
    "size": 841946,
    "url": "http:\/\/example.org\/files\/picture2.jpg",
    "thumbnailUrl": "http:\/\/example.org\/files\/thumbnail\/picture2.jpg",
    "deleteUrl": "http:\/\/example.org\/files\/picture2.jpg",
    "deleteType": "DELETE"
  }
]}

I've been trying to get the name of each file...So what i've done is to this.

var obj = JSON.parse(data.result);
        for(var i in obj.files){
        var urlstring;
        urlstring = obj.files[i].name;
        alert(urlstring);
        }

But somehow it doesn't allow me to alert out the name of each one...Any idea how i can go about doing it?

share|improve this question
    
Can you post fiddle – Carlos Sep 28 '13 at 14:54
    
This code works fine for me. Are you sure the content in data.result is the same as in the code above? – Adassko Sep 28 '13 at 14:57
    
When you say "it doesn't allow you to alert out the name of each one", what does it do instead? Are you getting and runtime errors? – Ates Goral Sep 28 '13 at 15:37
    
The code displayed above just doesn't do anything. No errors thrown, but it doesn't display anything either. (At least nothing visible...Very new to jQuery, no idea how to debug it...) – user2587774 Sep 28 '13 at 18:12
    
@user2587774 If using chrome just press ctrl+shift+j for console window.I would suggest your to use firebug tool to dubug JS – Dipak Ingole Sep 29 '13 at 3:55

Assuming,

var data  = {"files": [
  {
    "name": "picture1.jpg",
    "size": 902604,
    "url": "http:\/\/example.org\/files\/picture1.jpg",
    "thumbnailUrl": "http:\/\/example.org\/files\/thumbnail\/picture1.jpg",
    "deleteUrl": "http:\/\/example.org\/files\/picture1.jpg",
    "deleteType": "DELETE"
  },
  {
    "name": "picture2.jpg",
    "size": 841946,
    "url": "http:\/\/example.org\/files\/picture2.jpg",
    "thumbnailUrl": "http:\/\/example.org\/files\/thumbnail\/picture2.jpg",
    "deleteUrl": "http:\/\/example.org\/files\/picture2.jpg",
    "deleteType": "DELETE"
  }
]};

Try,

$.each(data, function(i, items) {
    $.each(items, function(j, item) {
       alert(item.name);
    });
});

Working fiddle Here


EDIT

Your data is badly formatted so you need to format it correctly.

Please have a look at following data, and working fiddle.

var data  = '{"files": ['+
'{"name": "picture1.jpg","size": 902604,"url":"http:\/\/example.org\/files\/picture1.jpg","thumbnailUrl": "http:\/\/example.org\/files\/thumbnail\/picture1.jpg","deleteUrl": "http:\/\/example.org\/files\/picture1.jpg","deleteType": "DELETE"},' +
'{"name":"picture2.jpg","size":841946,"url":"http:\/\/example.org\/files\/picture2.jpg","thumbnailUrl":"http:\/\/example.org\/files\/thumbnail\/picture2.jpg","deleteUrl":"http:\/\/example.org\/files\/picture2.jpg","deleteType":"DELETE"}]}';

var obj = JSON.parse(data);

for(var i in obj.files){
        var urlstring;
        urlstring = obj.files[i].name;
        alert(urlstring);
}

Working fiddle with your code

share|improve this answer
    
Excellent works very well :) Thanks so much! Do you mind explaning a bit of the code? Why does yours seem to work and my foreach method as that's what i normally do in PHP! – user2587774 Sep 28 '13 at 18:11
    
@user2587774 this is because you are getting JSON parsing err at JSON.parse(data.result); due to un-formatted JSON data. – Dipak Ingole Sep 28 '13 at 18:34
    
@user2587774 i updated my ans with your code.Please check how data is formatted.mark it correct and close if find it right – Dipak Ingole Oct 1 '13 at 6:47

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