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I'm relatively new to Android development and am writing my first REST-based app. I've opted to use the Android Asynchronous HTTP Client to make things a bit easier. I'm currently just running through the main "Recommended Usage" section on that link, essentially just creating a basic static HTTP client. I'm following the code given, but changing it around to refer to a different API. Here's the code in question:

    public void getFactualResults() throws JSONException {
    FactualRestClient.get("q=Coffee,Los Angeles", null, new JsonHttpResponseHandler() {
        @Override
        public void onSuccess(JSONArray venues) {
            // Pull out the first restaurant from the returned search results
            JSONObject firstVenue = venues.get(0);
            String venueName = firstVenue.getString("name");

            // Do something with the response
            System.out.println(venueName);

        }
    });
}

The String venueName = firstVenue.getString("name"); line is currently throwing an error in Eclipse: "Type mismatch: cannot convert from Object to JSONObject". Why is this error occurring? I searched other threads which led me to try using getJSONObject(0) instead of get(0) but that led to further errors and Eclipse suggesting using try/catch. I haven't changed any of the code on the tutorial, save for the variable names and URL. Any thoughts/tips/advice?

Thanks so much.

EDIT:

Here is the onSuccess method, modified to include the try/catch blocks suggested. Eclipse now shows the "local variable may not have been initialized" for firstVenue here: venueName = firstVenue.getString("name"); and for venueName here: System.out.println(venueName); Even if I initialize String venueName; directly after JSONObject firstVenue; I still get the same error. Any help in resolving these would be greatly appreciated!

public void onSuccess(JSONArray venues) {
            // Pull out the first restaurant from the returned search results
            JSONObject firstVenue;
            try {
                firstVenue = venues.getJSONObject(0);
            } catch (JSONException e) {
                // TODO Auto-generated catch block
                e.printStackTrace();
            }
            String venueName;
            try {
                venueName = firstVenue.getString("name");
            } catch (JSONException e) {
                // TODO Auto-generated catch block
                e.printStackTrace();
            }
            // Do something with the response
            System.out.println(venueName);

        }
share|improve this question
    
can you please paste your venues value that you retrieve by get request? –  Akbari Dipali Mar 13 '13 at 5:48
    
Use GSON from google as it is easy, fast, light weight and takes all the pain of this away code.google.com/p/google-gson –  Graham Smith Jun 17 '13 at 22:05

4 Answers 4

up vote 0 down vote accepted

Yes, you should be using getJSONObject to ensure that the value you obtain is a JSON object. And yes, you should catch the possible JSONException which is thrown if that index in the array doesn't exist, or does not contain an object.

It'll look something like this:

JSONObject firstVenue;
try {
    firstVenue = venues.get(0);
} catch (JSONException e) {
    // error handling
}
share|improve this answer
    
Thanks. So the error handling in line 1 does not help then? Can that just be removed? The FactualRestClient.get() is defined as this: public static void get(String url, RequestParams params, AsyncHttpResponseHandler responseHandler) { client.get(getAbsoluteUrl(url), params, responseHandler); } so it already has error handling built in... Can you clarify? –  user2163853 Mar 13 '13 at 5:38
    
Your existing throws clause catches JSONExceptions that are thrown in the getFactualResults method, but the exception would occur in the onSuccess method of the response handler. So that method would have to throw the exception (which will necessitate modifying the interface and FactualRestClient). And even then, because this is asynchronous, you can't throw it within the runtime of getFactualResults. Better to catch it in onSuccess, or if it's truly unexpected, throw a RuntimeException (which is unchecked). –  Jeremy Roman Mar 13 '13 at 5:59
    
OK, so I did that, but then I encounter problems with firstVenue and venueName being initialized within the try/catch block - the error is "local variable firstVenue may not have been initialized." Even if I initialize both before the try/catch, it still happens. Thoughts? –  user2163853 Mar 14 '13 at 3:38
    
You'll have to paste the modified code fragment for me to tell. –  Jeremy Roman Mar 14 '13 at 3:40
    
jeremy, I added the modified code fragment in the bottom of the body of the original question, as I wanted to keep it as readable as possible. –  user2163853 Mar 14 '13 at 3:49

You can try to convert object you are getting from querying to String and then use

final JSONObject jsonObject = new JSONObject(stringresult);

I was getting same error earlier, it worked for me.

share|improve this answer
    
Sorry, can you clarify how that would fit in the existing code? Thanks –  user2163853 Mar 13 '13 at 5:43
    
what are the values of venues u get? –  code_guru Mar 13 '13 at 7:19
    
I'm not sure what you mean - the venues are returned in a JSONArray and are JSONObjects. –  user2163853 Mar 13 '13 at 13:34

convert obj to json Object:

Object obj = JSONValue.parse(inputParam); JSONObject jsonObject = (JSONObject) obj;

share|improve this answer

The solution provided by Shail Adi only worked for me by setting the initial values of firstVenue and venueName to null. Here's my code:

        JSONObject firstVenue = null;
        try {
            firstVenue = (JSONObject)venues.get(0);
        } catch (JSONException e) {
            // TODO Auto-generated catch block
            e.printStackTrace();
        }
        String venueName = null;
        try {
            venueName = firstVenue.getString("name");
        } catch (JSONException e) {
            // TODO Auto-generated catch block
            e.printStackTrace();
        }
        // Do something with the response
        System.out.println(venueName);
share|improve this answer

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