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import org.json.simple.JSONArray;
import org.json.simple.JSONAware;
import org.json.simple.JSONObject;
import org.json.simple.JSONValue;

public class JsonTest implements JSONAware {
private final int x, y;

public JsonTest(int x, int y) {
    this.x = x;
    this.y = y;
}

@Override
public String toJSONString() {
    JSONArray arr = new JSONArray();
    arr.add(this.x);
    arr.add(this.y);
    return arr.toString();
}

public static void main(String[] args) {
    JsonTest jtest = new JsonTest(4, 5);
    String test1 = JSONValue.toJSONString(jtest);
    System.out.println(test1); //this works as expected
    JSONObject obj = new JSONObject();
    obj.put(jtest, "42");
    System.out.println(obj); //this doesn't
}
}

Gives as output:

[4,5]

{"it.integrasistemi.scegliInPianta.etc.JsonTest@3cb89838":"42"}

Instead of:

[4,5]

{[4,5]:"42"}

What am i missing?

My reference: http://code.google.com/p/json-simple/wiki/EncodingExamples#Example_6-1_-_Customize_JSON_outputs

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1  
[4,5] is no valid JSON identifier! –  Sirko May 10 '12 at 9:39

2 Answers 2

up vote 2 down vote accepted

That's because JSonTest doesn't override the toString() method.

Add the following code to the JSonTest class:

@Override
public String toString() {
    return toJSONString(); 
}
share|improve this answer
    
Shouldn't "implements JSONAware" be the correct way to go in this cases? - code.google.com/p/json-simple/wiki/… –  Enoon May 10 '12 at 9:41
    
JSONAware doesn't override the toString() method and JSONObject calls the toString() method (as evidently seen in your code example). –  Buhake Sindi May 10 '12 at 9:43
    
@FabioMariaCarlucci: implementing an interface does not automatically include a customized toString(), and Object.toString() will not do what you want. –  goldilocks May 10 '12 at 9:44

Because only a String can be used as a key of a JSON object. So your jtest object is transformed to a String.

share|improve this answer
    
Because it's calling the object's toString() method. –  Buhake Sindi May 10 '12 at 9:45

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