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I can get a json response from json_encode from php and I was able to show it in my logcat in eclipse what the response was:

[{"idusers":"1","full_name":"Test Subject","get_email":"test_subject@gmail.com"},
{"idusers":"2","full_name":"Test Subject_2","get_email":"test_subject_2@gmail.com"}]

Now, I'm trying to

    //parse json data
    try {
        JSONArray jArray = new JSONArray(result);
        for(int i =0; i<jArray.length(); i++){
            JSONObject json_data = jArray.getJSONObject(i);
            Log.i("log_tag","id: "+json_data.getInt("idusers")+
                    ", Full Name: "+json_data.getString("full_name")+
                    ", Email: "+json_data.getString("get_email")
                    );
        }
    }catch(JSONException e){
        Log.e("log_tag","Error parsin data "+e.toString());
    }

However, I'm getting an error saying that

Error parsin data org.json.JSONException: Value testing of type java.lang.String cannot be converted to JSONArray

Is there a way to fix the JSONArray problem?

Thanks in advance!

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1  
There's a " missing towards the end of your String. Is that the cause of your problem, or is that just a typo? –  Rajesh J Advani May 20 '12 at 8:21
    
    
@RajeshJAdvani a typo –  andrewliu May 20 '12 at 17:30
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3 Answers

Your JSON is invalid. A quote (") is missing in the "get_email" value in the 2nd array element.

Should be:

[
    {
        "idusers": "1",
        "full_name": "Test Subject",
        "get_email": "test_subject@gmail.com"
    },
    {
        "idusers": "2",
        "full_name": "Test Subject_2",
        "get_email": "test_subject_2@gmail.com"}]
share|improve this answer
    
that's definitely just a typo. cause i'm getting a response from bufferreader –  andrewliu May 20 '12 at 17:27
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up vote 1 down vote accepted

Found out what happened. I had a string in the PHP document and wasn't being called. I had the word "testing", which was the word from the error. Once this "testing" was deleted, it worked. Thanks

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Try adding a cast to the PHP variables being returned by JSON. Also, are you using json_encode?

$user_id = (int) $id;
$email = (string) $email;
share|improve this answer
    
I am using json_encode in my php –  andrewliu May 20 '12 at 19:09
    
This is what I'm passing through in my PHP file while($get = $SQL->fetch(PDO::FETCH_ASSOC)){ $output[]=$get; } print(json_encode($output)); –  andrewliu May 20 '12 at 19:09
    
So, I'm technically not really setting any variables, its just going directly towards the array. the datatype in mysql is varchar, does that have a difference? and the id is int. –  andrewliu May 20 '12 at 19:41
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