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This is my json array creating with php. I want to know bellow json array have correct syntax. How to get the values withing android,because my sample code get some errors.

THIS IS PHP SCRIPT FOR JSON ARRAY GENARATING

public static function getCategory($_lgtime) {
        $con = JsonDataManip::connect();
        $stmt = $con->prepare("select * from " . _TABLE_CATEGORY . " where lgtime > ?");
        $stmt->execute(array($_lgtime));
        while ($row = $stmt->fetch()) {
            $jsonArray['key'] = $row['key'];
            $jsonArray['name'] = $row['name'];
            $jsonArray['lgtime'] = $row['lgtime'];
            $json[] = $jsonArray;
        }
        return $json;
    }

usage php :

echo json_encode(JsonDataManip::getCategory('20140129184514895'));

GENARATED JSON ARRAY

[{
    "key":"1",
    "name":"Category 10",
    "lgtime":"20140129184514896"
    },
    {
    "key":"2",
    "name":"Category 9",
    "lgtime":"20140129184514896"
    },
    {
    "key":"3",
    "name":"Category 8",
    "lgtime":"20140129184514896"
    }]

ANDROID JSON PARSER FUNCTION

protected Void doInBackground(Void... arg0) {
            ServiceHandler sh = new ServiceHandler();
            String jsonStr = sh.makeServiceCall(url, ServiceHandler.GET);
            Log.d("Response: ", "> " + jsonStr);
            if (jsonStr != null) {
                try {

                    JSONObject  jsnArry = new JSONObject(jsonStr);
                JSONArray jsonArray = jsnArry.getJSONArray("");
                for(int i=0;i<jsnArry.length();i++){
                    Log.d("JSON PARSE",jsonArray.getJSONObject(i).getString("name"));
                    //contactList[i] =          
                }
                } catch (JSONException e) {
                    // TODO Auto-generated catch block
                    e.printStackTrace();
                }
            }
            return null;
        }

ERROR

01-30 08:45:53.527: W/System.err(1507): org.json.JSONException: Value {"lgtime":"20140129184514896","key":"1","name":"Category 10"} at 0 of type org.json.JSONObject cannot be converted to JSONArray
share|improve this question
    
can't you return as an object instead of an array? eg. { "result" : [your array] } –  Jianhong Jan 30 '14 at 4:02
    
I dont know how to do that,i am new to android and json. –  Jimmer Jan 30 '14 at 4:05
1  
Just a note - it might be your problem. If the array contains only 1 element, I believe the returned JSON object will just be a JSON object, not a JSON array. –  Larry Jan 30 '14 at 4:37
1  
u don't need a lib for it, can be as easy as davidwalsh.name/web-service-php-mysql-xml-json, look at the php implementation. from your parser you are expecting an object first then read an array but in actual fact you are returning an array as the root. –  Jianhong Jan 30 '14 at 4:42

3 Answers 3

up vote 0 down vote accepted

Your PHP script returns a JSON array, not a JSON object. You should update your Android code like so:

if (jsonStr != null) {
    try {
        JSONArray json = new JSONArray(jsonStr);
        for (int i=0; i < json.length(); i++) {
            Log.d("JSON PARSE", json.getJSONObject(i).getString("name"));
        }
    } catch (JSONException e) {
        Log.w("JSON PARSE", "Failed to parse JSON!", e);
    }
}
share|improve this answer
    
How to return Json Object ? This is my php usage of above code echo json_encode(JsonDataManip::getCategory('20140129184514895')); –  Jimmer Jan 30 '14 at 4:54
    
Why do you want to return a JSON object? You're returning an array (list) of objects. This makes sense. Returning an object in this case would not make much sense. –  twaddington Jan 30 '14 at 5:09

To check if your JSON string is valid, please use this link JSONLint. As far your error is concerned for your code, it clearly states that

type org.json.JSONObject cannot be converted to JSONArray

Possible Solution (if you are using Gson)

Your response from ServiceHandler would be a string. So convert that into a JSONObject and the pass that to JSONArray.

Example

JSONObject jsonObject = new JSONObject(<responseString>);
JSONArray jsonArray = jsonObject.getJSONArray();

Else

JSONObject jsonObject = new JSONObject(<responseString>);
String key = jsonObject.getJSONObject("key");
String name = jsonObject.getJSONObject("name");
String lgtime = jsonObject.getJSONObject("lgtime");

Then you can continue with your logic in the program.

share|improve this answer
    
JSONObject jsnArry = new JSONObject(jsonStr); JSONArray jsonArray = jsnArry.getJSONArray(""); for(int i=0;i<jsnArry.length();i++){ Log.d("JSON PARSE",jsonArray.getJSONObject(i).getString("name")); //contactList[i] = } 01-30 09:19:16.256: W/System.err(1555): org.json.JSON.typeMismatch(JSON.java:111) –  Jimmer Jan 30 '14 at 3:50
    
If you are not keen on using Gson to parse your data you need not convert to JSONArray. You can retrieve all your required data from JSONObject itself. Check my updated answer. –  VikramV Jan 30 '14 at 4:07
{    "employees":[
    {
    "firstName":"John",
    "lastName":"Doe"
    },
    {
    "firstName":"Anna",
    "lastName":"Smith"
    },
    {
    "firstName":"Peter",
    "lastName":"Jones"
    }
    ]
}

Your opening and closing braces are missing. that is not a valid json array, The above is a sample array format

share|improve this answer
    
[{ "key":"1", "name":"Category 10", "lgtime":"20140129184514896" }, { "key":"2", "name":"Category 9", "lgtime":"20140129184514896" }, { "key":"3", "name":"Category 8", "lgtime":"20140129184514896" }] is a valid JSON. Verified by JSONLint <jsonlint.com/>;. –  VikramV Jan 30 '14 at 4:25

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