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I'm trying to parse this string into java, but I keep getting errors.

{"id":1,"jsonrpc":"2.0","result":{"limits":{"end":3,"start":0,"total":3},"sources":[{"file":"/media/storage/media/re Music/","label":"re Music"},{"file":"/media/storage/media/ra Music/","label":"ra Music"},{"file":"addons://sources/audio/","label":"Music Add-ons"}]}}

When I use this code ...

String temp = //json code returned from up above
JSONObject obj = new JSONObject(temp);
JSONArray array = obj.getJSONArray("sources");

I get an error saying org.json.JSONObject Value... and then displays what is in temp. Any help?

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3 Answers 3

up vote 2 down vote accepted

The array named "sources" is several levels deep. You need to traverse down into the json.

Code formatters help with this stuff...

http://jsonformatter.curiousconcept.com/

{
   "id":1,
   "jsonrpc":"2.0",
   "result":{
      "limits":{
         "end":3,
         "start":0,
         "total":3
      },
      "sources":[
         {
            "file":"/media/storage/media/re Music/",
            "label":"re Music"
         },
         {
            "file":"/media/storage/media/ra Music/",
            "label":"ra Music"
         },
         {
            "file":"addons://sources/audio/",
            "label":"Music Add-ons"
         }
      ]
   }
}
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ok that makes more sense, but how would go into a nested statement like this? like this? JSONArray ar = obj.getaray("results") –  Andrew Butler Feb 10 '12 at 22:46
    
@user987103 what is getarray? What is "results"? –  Miserable Variable Feb 10 '12 at 22:49
    
I don't know the details of the exact library you are using, (you haven't actully told us though I probably could figure it out from the package name). Typically, you would do obj.get("result").getArray("sources"). Check your javadoc for the exact specifics on method namees –  Gus Feb 10 '12 at 22:50
    
oh I'm just using org.json .. is there an easier one to use? –  Andrew Butler Feb 10 '12 at 22:53
    
There are lots out there, but there are lots of stack overflow questions adressing the pros and cons. Which line gives you the error, the second or the third (in your original code) –  Gus Feb 10 '12 at 22:55

It looks like the "sources" array is in the "result" object. So you would need to get that object and then get the array from that like this:

JSONObject obj = new JSONObject(temp);
JSONObject result = obj.getJSONObject("result");
JSONArray array = result.getJSONArray("sources");
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everytime I put the result string into a JSONObject it throws that same exception –  Andrew Butler Feb 10 '12 at 22:52
    
Can you show updated source? –  CaseyB Feb 10 '12 at 23:12

Your json should have top level object, from there you need to get child objects. See this link for more detail.

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that's the thing though, once I put that temp string into a JSONObject it throws an error. I know that I have to go into a nested result, but it just throws that error. –  Andrew Butler Feb 10 '12 at 22:50

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