Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am writing an android app which interacts with a web-services to get data. The Web-service are writing in PHP and I wrote a Library that uses a AsyncTask to fetch the data the problem is that class only accepts a JSONObject. Most of my services return just a JSONObject by there is particular one that return an json array.

    $array = array();
    while ($row = mysql_fetch_array($query))
    {
        $array[] = $row;
    }
    echo json_encode($array); 

which returns something like this:

 [{ "0":"10","id":"10","1":"17.9409915","lat":"17.9409915","2":"-77.1003625","lon":"-77.1003625"},{"0":"9","id":"9","1":"17.9410143","lat":"17.9410143","2":"-77.1003672","lon":"-77.1003672"}]

What I want to return is

      {result:[{"0":"10","id":"10","1":"17.9409915","lat":"17.9409915","2":"-77.1003625","lon":"-77.1003625"},{"0":"9","id":"9","1":"17.9410143","lat":"17.9410143","2":"-77.1003672","lon":"-77.1003672"}]}

I tried to accomplish this by doing:

  echo json_encode("{result: " .$array. "}");

But that doesn't work. it returns.

 "{result: Array}"

How can I accomplish this?

share|improve this question

2 Answers 2

up vote 4 down vote accepted

Try

$array = array("result" => $array);
echo json_encode($array);
share|improve this answer

You could also use JSONTokener to dispatch your response to the right handler.

public void dispatchResponse(String response) {
    JSONTokener tokener = new JSONTokener(response);

    try {
        Object object = tokener.nextValue();

        if (object instanceof JSONObject) {
            success(new JSONObject(response));
        } else if (object instanceof JSONArray) {
            success(new JSONArray(response));
        } else {
            // Etc...
        }
    } catch (JSONException e) {
        Log.d("debug", "JSONException: "+ e.getMessage());
    }
}

public void success(JSONObject response) {
    Log.d("debug", "JSONObject: "+ response);
}

public void success(JSONArray response) {
    Log.d("debug", "JSONArray: "+ response);
}
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.