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I had posted the question wrongly. I am posting the question correctly here ...

I am getting a json string as a HTTP response. I know the structure of it. It is as follows:

public class Json<T> {
    public Hits<T> hits;
}
public class Hits<T> {
    public int found;
    public int start;
    public ArrayList<Hit<T>> hit;
}
public class Hit<T> {
    public String id;
    public Class<T> data;
}

The "data" field can belong to any class. I will know it at runtime only. I will get it as a parameter. This is how I am deserializing.

public <T> void deSerialize(Class<T> clazz {
    ObjectMapper mapper = new ObjectMapper();
    mapper.readValue(jsonString,  new TypeReference<Json<T>>() {});
}

But I am getting an error -

cannot access private java.lang.class.Class() from java.lang.class. Failed to set access. Cannot make a java.lang.Class constructor accessible

share|improve this question
    
Why duplicating the question (see stackoverflow.com/questions/11664894/…)? – StaxMan Jul 27 '12 at 19:25
    
see stackoverflow.com/questions/17400850/… – lisak Jul 1 '13 at 12:51

You're serializing and deserializing Class object to JSON? Maybe keep it as String in Hit and create additional getter that launches Class.forName, e.g.

public class Hit {
    public String id;
    public String data;
    public Class<?> getDataClass() throws Exception {
       return Class.forName(data);
    }
}
share|improve this answer
    
I have edited the question fully, can you please answer it? – Gowtham Natarajan Jul 27 '12 at 5:40
1  
The error you got says: "I want to instatinate new Class object but I can't execute new Class() because the constructor is private". What is more it makes no sense. Please put a sample JSON string. It will be much easier to suggest a solution then. I'm pretty sure that serializing/deserializing property of type Class is a wrong path. – Piotr Gwiazda Jul 27 '12 at 10:33

You will need to build JavaType explicitly, if generic type is only dynamically available:

// do NOT create new ObjectMapper per each request!
final ObjectMapper mapper = new ObjectMapper();

public Json<T> void deSerialize(Class<T> clazz, InputStream json) {
    return mapper.readValue(json,
      mapper.getTypeFactory().constructParametricType(Json.class, clazz));
}
share|improve this answer
    
This doesn't work from my experience, it might be a bug though: github.com/FasterXML/jackson-databind/issues/254 – lisak Jul 1 '13 at 8:03
    
Referenced bug had other issue(s) -- generic type resolution as shown above will work, but does not address other possible problems. – StaxMan Jul 2 '13 at 18:07
    
Yeah, my apologies, it's been resolved in here stackoverflow.com/questions/17400850/… – lisak Jul 2 '13 at 21:23

Deserialize Generic class variable

...

how do I tell it to Jackson? Will gson do any better?

The Gson user guide includes a section on exactly what I understand you're trying to accomplish, though that documented example may still be incomplete.

In a blog post, I covered in more detail the solution using Gson 1.7.1. Below is the relevant code example.

Similar (but more involved) solutions using Jackson (1.8.2) are also demonstrated and described in the same blog post. (The different approaches and examples use hundreds of lines of code, so I've omitted reposting them here.)

public class GsonInstanceCreatorForParameterizedTypeDemo  
{  
 public static void main(String[] args)  
 {  
  Id<String> id1 = new Id<String>(String.class, 42);  

  Gson gson = new GsonBuilder().registerTypeAdapter(Id.class,  
    new IdInstanceCreator()).create();  
  String json1 = gson.toJson(id1);  
  System.out.println(json1);  
  // actual output: {"classOfId":{},"value":42}  
  // This contradicts what the Gson docs say happens.  
  // With custom serialization, as described in a  
  // previous Gson user guide section,   
  // intended output may be   
  // {"value":42}  

  // input: {"value":42}  
  String json2 = "{\"value\":42}";  

  Type idOfStringType=new TypeToken<Id<String>>(){}.getType();  
  Id<String> id1Copy = gson.fromJson(json2, idOfStringType);  
  System.out.println(id1Copy);  
  // output: classOfId=class java.lang.String, value=42  

  Type idOfGsonType = new TypeToken<Id<Gson>>() {}.getType();  
  Id<Gson> idOfGson = gson.fromJson(json2, idOfGsonType);  
  System.out.println(idOfGson);  
  // output: classOfId=class com.google.gson.Gson, value=42  
 }  
}  

class Id<T>  
{  
 private final Class<T> classOfId;  
 private final long value;  

 public Id(Class<T> classOfId, long value)  
 {  
  this.classOfId = classOfId;  
  this.value = value;  
 }  

 @Override  
 public String toString()  
 {  
  return "classOfId=" + classOfId + ", value=" + value;  
 }  
}  

class IdInstanceCreator implements InstanceCreator<Id<?>>  
{  
 @SuppressWarnings({ "unchecked", "rawtypes" })  
 public Id<?> createInstance(Type type)  
 {  
  Type[] typeParameters =   
    ((ParameterizedType) type).getActualTypeArguments();  
  Type idType = typeParameters[0];  
  return new Id((Class<?>) idType, 0L);  
 }  
} 
share|improve this answer

Sample generic deserializing interface:

public interface Deserializable<T> {
    static final ObjectMapper mapper = new ObjectMapper();

    @SuppressWarnings("unchecked")
    default T deserialize(String rawJson) throws IOException {
        return mapper.readValue(rawJson, (Class<T>) this.getClass());
    }
}
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