1

My PHP code is this:

$userdetails = mysqli_query($con, "SELECT *FROM aircraft_status"); 

#$row = mysql_fetch_row($userdetails) ;

while($rows=mysqli_fetch_array($userdetails)){
$status[]= array($rows['Aircraft']=>$rows['Status']);
}
#Output the JSON data
echo json_encode($status); 

and gives this:

[{"A70_870":"1"},{"A70_871":"1"},{"A70_872":"1"},{"A70_873":"1"},{"A70_874":"1"},{"A70_875":"1"},{"A70_876":"2"},{"A70_877":"1"},{"A70_878":"2"},{"A70_879":"2"},{"A70_880":"2"},{"A70_881":"0"},{"A70_882":"0"},{"A70_883":"0"},{"A70_884":"0"},{"A70_885":"0"}]

The java code that reads it is this:

// Create a JSON object from the request response
    JSONObject jsonObject = new JSONObject(result);

    //Retrieve the data from the JSON object
        n870 = jsonObject.getInt("A70_870");
        n871 = jsonObject.getInt("A70_871");
        n872 = jsonObject.getInt("A70_872");
        n873 = jsonObject.getInt("A70_873");
        n874 = jsonObject.getInt("A70_874");
        n875 = jsonObject.getInt("A70_875");
        n876 = jsonObject.getInt("A70_876");
        n877 = jsonObject.getInt("A70_877");
        n878 = jsonObject.getInt("A70_878");
        n879 = jsonObject.getInt("A70_879");
        n880 = jsonObject.getInt("A70_880");
        n881 = jsonObject.getInt("A70_881");
        n882 = jsonObject.getInt("A70_882");
        n883 = jsonObject.getInt("A70_883");
        n884 = jsonObject.getInt("A70_884");
        n885 = jsonObject.getInt("A70_885");

When i run my android app I seem to keep getting the error:

"of type org.json.JSONArray cannot be converted into Json object"

However when I send the app dummy code without the square brackets, it seems to work fine! How do I get rid of those [ and ] brackets on the ends???

Alternatively is there a way to accept the json as it is and adapt the java to read it?

  • 1
    removing the brackets will break the json. You've got an array of objects. taking off the brackets "deletes" the array, and now you've got a bunch of comma-separated objects, which is NOT valid javascript/json. – Marc B Oct 10 '13 at 21:17
0

Maybe with this kind of json structure?

$status[$rows['Aircraft']]= $rows['Status'];
  • Thanks to everyone else who answered also, but this worked perfectly first go!!!! Cheers Lajos! you are the man. – Riggs78 Oct 10 '13 at 21:34
1
echo json_encode($status, JSON_FORCE_OBJECT);

Demo: http://codepad.viper-7.com/lrYKv6

or

echo json_encode((Object) $status); 

Demo; http://codepad.viper-7.com/RPtchU

1

Instead of using JSonobject, use JSONArray

   JSONArray array = new JSONArray(sourceString);

Later loop through the array and do the business logic.

http://www.json.org/javadoc/org/json/JSONArray.html

0

You get an JSONArray, Not Object, you could create an Object holding an array, or parsing the array. Refering to this post

0

Solution #1 (Java)

How about a helper method like this:

private int getProp(String name, JSONArray arr) throws Exception {
    for (int i = 0; i < arr.length(); ++i) {
        JSONObject obj = arr.getJSONObject(i);
        if (obj.has(name))
            return obj.getInt(name);
    }
    throw new Exception("Key not found");
}

Then you could use it like:

JSONArray jsonArray = new JSONArray(result); // note the *JSONArray* vs your *JSONObject*
n870 = getProp("A70_870", jsonArray);
n871 = getProp("A70_871", jsonArray);
...

Note I haven't tested this code, so you may need to make some changes...

Alternate solution (PHP)

It's been awhile since I've worked with PHP, but you might be able to leave your Java code intact and change your PHP int the while-loop body to:

$status[$rows['Aircraft']] = $rows['Status'];

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