10

I have some data stored in Java elements and I need to return it in a given format - JSONObject. While my implementation works fine, I'm still getting a warning message from eclipse (Version: Juno Service Release 2):

"Type safety: The method put(Object, Object) belongs to the raw type HashMap. References to generic type HashMap should be parameterized"

This is my code:

public interface Element {...}

public abstract class AbstractElement implements Element {...}

public final class Way extends AbstractElement {...}

import java.util.ArrayList;
import java.util.HashSet;
import java.util.List;
import java.util.Set;

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

public class WayToJsonConverter{
    ...
    public JSONObject wayToJson(){
        JSONObject obj = new JSONObject();
        obj.put("id",way.getId());
        ...
        return obj;
    }
    ...
}

The problematic line is : obj.put("id",way.getId());

Is there a way to solve this issue other then adding @SuppressWarnings("unchecked")?

  • what is the return type of getId()? – SudoRahul May 7 '13 at 9:20
  • The return type is : String – Itay Gal May 7 '13 at 9:22
  • 1
    In that case, there is no problem with obj.put("id",way.getId());. It has to be some other line which gives that warning! – SudoRahul May 7 '13 at 9:24
  • 2
    Would be helpful if you added your import section to the code snippet. – Adam Adamaszek May 7 '13 at 9:27
14

What is your JSONObject, does it inherit from HashMap? If does, the warn probably means that your should declare the JSONObject instance as follows:

JSONObject<String,Object> obj=new JSONObject<String,Object>();

Updated: Look at the definition of the JSONObject:

public class JSONObject extends HashMap

it extends HashMap but doesn't support parameter type, if its definition is

public class JSONObject<K,V> extends HashMap<K,V>

then we could write

JSONObject<String,Object> obj=new JSONObject<String,Object>();

and the put method will no longer generate the warning

  • 15
    When I'm trying to do that I'm getting the message: "The type JSONObject is not generic; it cannot be parameterized with arguments <String, Object>" – Itay Gal May 7 '13 at 9:27
  • 21
    I found it extends HashMap, but does not have type parameter in class definition, so we can do nothing rather than adding the @SuppressWarnings("unchecked") here... – ltebean May 7 '13 at 10:41
  • 3
    Can you add the last comment's content to your answer? You were the first to explain why this cannot be solved and I want to accept your answer. – Itay Gal May 8 '13 at 6:42
  • 1
    Look at the definition of the JSONObject:"public class JSONObject extends HashMap", it extends HashMap but doesn't support parameter type, if it's definition is "public class JSONObject<K,V> extends HashMap<K,V>", then we could write "JSONObject<String,Object> obj=new JSONObject<String,Object>();", and the put method will no longer generate the warning – ltebean May 8 '13 at 6:52
  • I am using the same import org.json.simple.JSONObject; The latests versions seems to be 1.1.1. Is there a newer version that can be parameterized? This is the one I have: mvnrepository.com/artifact/com.googlecode.json-simple/… – nacho4d Oct 22 '16 at 3:07
2

If you can't switch to another library or modify the code of this library to make it generic, the only other option would be to write a wrapper around this library which uses it, and properly supports generics.

So you would have your own JSONObject class which would contain an org.json.simple.JSONObject, would extend HashMap<String, Object> and implement Map<String, Object>, and would contain forwarding methods for all the methods of org.json.simple.JSONObject.

You would still have to put @SuppressWarnings("unchecked") in this class, but it would be limited to this class, and all the rest of your code could be free of generic warnings or the suppression of them.

  • 1
    If I still need to use the suppressWarning I didn't solved the problem but moved it. As for now, all of the JSON handling are done in one class so it won't help me much. Moreover, I need to return a JSONObject to some methods of the interface I'm implementing so Warping it won't help me anyway. It seems that this is a limitation of the given JSON package and I can't do much to make it look better. – Itay Gal May 8 '13 at 6:06
1

public class JSONObject extends HashMap implements Map, JSONAware, JSONStreamAware

But does not have type parameter in class definition, The only option you have is to add the @SuppressWarnings("unchecked")

0

You could create a map object and then do an explicit cast to JSONObject

Map<String, String> obj =  new HashMap<String, String>();
obj.put("id",way.getId());
JSONObject jsonObj =  (JSONObject) obj;

But note that this will restrict you only include "Strings" in your JSON. and you will see compile errors if you put another data structure. Say an array.

  • in the above case there is no need to add "suppress warning" annotation – Kranthi Mar 2 '16 at 18:05
  • java.util.HashMap cannot be cast to org.json.simple.JSONObject – Dennis Jun 8 '17 at 20:18
0

FYI org.codehaus.jettison.json.JSONObject will not cause this warning. When using codehaus' JSONObject, you also have the ability to catch parsing errors via org.codehaus.jettison.json.JSONException. See https://github.com/codehaus/jettison for details.

0

Another option is to initialize the JSONObject with a (parameterized) Map<String, Object>. That way, a value can be of any valid JSON type, and you avoid the unchecked warning. E.g.:

public class WayToJsonConverter{
    ...
    public JSONObject wayToJson(){
        Map<String, Object> forJsonObj = new HashMap<>();
        forJsonObj.put("id",way.getId());  // No warning, hurray!
        forJsonObj.put("integer", 14);
        forJsonObj.put("floating", 1.4);
        JSONObject obj = new JSONObject(forJsonObj);
        ...
        return obj;
    }
    ...
}
  • JSONObject has no parameterized constructors. – Harsh Pandey Oct 10 '17 at 21:02
  • @HarshPandey- I don't use a parameterized constructor of JSONObject in my answer. – asherbar Oct 11 '17 at 12:20
  • JSONObject obj = new JSONObject(forJsonObj); are you not using a parameterized constructor here? – Harsh Pandey Oct 11 '17 at 15:49
  • Oh, you mean that the constructor receives a Map argument in the constructor? I misunderstood your comment. Anyway, I was using this as a reference. – asherbar Oct 11 '17 at 16:10
  • Your reference points to org.json.JSONObject, while OP is using org.json.simple.JSONObject. – Harsh Pandey Oct 11 '17 at 16:22

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