97

I have this code:

Type typeOfObjectsList = new TypeToken<ArrayList<myClass>>() {}.getType();
List<myClass> objectsList = new Gson().fromJson(json, typeOfObjectsList);

It converts a JSON string to a List of objects. But now I want to have this ArrayList with a dynamic type (not just myClass), defined at runtime.

The ArrayList's item type will be defined with reflection.

I tried this:

    private <T> Type setModelAndGetCorrespondingList2(Class<T> type) {
        Type typeOfObjectsListNew = new TypeToken<ArrayList<T>>() {}.getType();
        return typeOfObjectsListNew;
    }

But it doesn't work. This is the exception:

java.sql.SQLException: Fail to convert to internal representation: {....my json....}
2
  • 1
    That's an SQLException. It has nothing to do with the code you've posted. Show us the JDBC code. Commented Dec 27, 2013 at 14:58
  • 1
    @SotiriosDelimanolis It's not! I just want to have that TypeToken<ArrayList<T>>() code accept dynamic Arraylist type. somthing like this: TypeToken<ArrayList<Class.forName(MyClass)>>
    – Amin Sh
    Commented Dec 27, 2013 at 15:17

14 Answers 14

91

Since Gson 2.8.0, you can use TypeToken#getParameterized(Type rawType, Type... typeArguments) to create the TypeToken, then getType() should do the trick.

For example:

TypeToken.getParameterized(ArrayList.class, myClass).getType()
0
56

The syntax you are proposing is invalid. The following

new TypeToken<ArrayList<Class.forName(MyClass)>>

is invalid because you're trying to pass a method invocation where a type name is expected.

The following

new TypeToken<ArrayList<T>>() 

is not possible because of how generics (type erasure) and reflection works. The whole TypeToken hack works because Class#getGenericSuperclass() does the following

Returns the Type representing the direct superclass of the entity (class, interface, primitive type or void) represented by this Class.

If the superclass is a parameterized type, the Type object returned must accurately reflect the actual type parameters used in the source code.

In other words, if it sees ArrayList<T>, that's the ParameterizedType it will return and you won't be able to extract the compile time value that the type variable T would have had.

Type and ParameterizedType are both interfaces. You can provide an instance of your own implementation (define a class that implements either interface and overrides its methods) or use one of the helpful factory methods that TypeToken provides in its latest versions. For example,

private Type setModelAndGetCorrespondingList2(Class<?> typeArgument) {
    return TypeToken.getParameterized(ArrayList.class, typeArgument).getType();
}
3
  • I think it's possible, using the technique shown here: stackoverflow.com/questions/14139437/… Commented Apr 19, 2014 at 15:55
  • 2
    @BenoitDuffez Careful. The answer you linked is doing something different. It's using an actual Class object, so Gson can very well know what type to deserialize to. In the OP's question, they want to do it without using the Class object and only through the type argument, which isn't available within the method itself. Commented Apr 19, 2014 at 16:09
  • @SotiriosDelimanolis: You're absolutely right. I thought that putting the class was an acceptable price to get this to work. But indeed, the linked answer does something different from what the OP asked for. Thanks for the clarification. Commented Apr 19, 2014 at 16:10
33

Option 1 - implement java.lang.reflect.ParameterizedType yourself and pass it to Gson.

private static class ListParameterizedType implements ParameterizedType {

    private Type type;

    private ListParameterizedType(Type type) {
        this.type = type;
    }

    @Override
    public Type[] getActualTypeArguments() {
        return new Type[] {type};
    }

    @Override
    public Type getRawType() {
        return ArrayList.class;
    }

    @Override
    public Type getOwnerType() {
        return null;
    }

    // implement equals method too! (as per javadoc)
}

Then simply:

Type type = new ListParameterizedType(clazz);
List<T> list = gson.fromJson(json, type);

Note that as per javadoc, equals method should also be implemented.

Option 2 - (don't do this) reuse gson internal...

This will work too, at least with Gson 2.2.4.

Type type = com.google.gson.internal.$Gson$Types.newParameterizedTypeWithOwner(null, ArrayList.class, clazz);
0
9

With kotlin you can use a below functions to converting (from/to) any (JsonArray/JsonObject) just in one line without need to send a TypeToken :-

Convert any class or array to JSON string

inline fun <reified T : Any> T?.json() = this?.let { Gson().toJson(this, T::class.java) }

Example to use :

 val list = listOf("1","2","3")
 val jsonArrayAsString = list.json() 
 //output : ["1","2","3"]

 val model= Foo(name = "example",email = "[email protected]") 
 val jsonObjectAsString = model.json()
//output : {"name" : "example", "email" : "[email protected]"}

Convert JSON string to any class or array

inline fun <reified T : Any> String?.fromJson(): T? = this?.let {
    val type = object : TypeToken<T>() {}.type
    Gson().fromJson(this, type)
}

Example to use :

 val jsonArrayAsString = "[\"1\",\"2\",\"3\"]"
 val list = jsonArrayAsString.fromJson<List<String>>()

 val jsonObjectAsString = "{ "name" : "example", "email" : "[email protected]"}"
 val model : Foo? = jsonObjectAsString.fromJson() 
 //or 
 val model = jsonObjectAsString.fromJson<Foo>() 
8

This worked for me:

public <T> List<T> listEntity(Class<T> clazz)
        throws WsIntegracaoException {
    try {
        // Consuming remote method
        String strJson = getService().listEntity(clazz.getName());

        JsonParser parser = new JsonParser();
        JsonArray array = parser.parse(strJson).getAsJsonArray();

        List<T> lst =  new ArrayList<T>();
        for(final JsonElement json: array){
            T entity = GSON.fromJson(json, clazz);
            lst.add(entity);
        }

        return lst;

    } catch (Exception e) {
        throw new WsIntegracaoException(
                "WS method error [listEntity()]", e);
    }
}
1
7

You can do this with Guava's more powerful TypeToken:

private static <T> Type setModelAndGetCorrespondingList2(Class<T> type) {
    return new TypeToken<ArrayList<T>>() {}
            .where(new TypeParameter<T>() {}, type)
            .getType();
}
0
5

sun.reflect.generics.reflectiveObjects.ParameterizedTypeImpl workes. No need for custom implementation

Type type = ParameterizedTypeImpl.make(List.class, new Type[]{childrenClazz}, null);
List list = gson.fromJson(json, type);

Can be used with maps and any other collection:

ParameterizedTypeImpl.make(Map.class, new Type[]{String.class, childrenClazz}, null);

Here is nice demo how you can use it in custom deserializer: Deserializing ImmutableList using Gson

3

in kotlin you can

inline fun <reified T> parseData(row :String): T{
   return Gson().fromJson(row, object: TypeToken<T>(){}.type)
}
2

You can actually do it. You just need to parse first your data into an JsonArray and then transform each object individually, and add it to a List :

Class<T> dataType;

//...

JsonElement root = jsonParser.parse(json);
List<T> data = new ArrayList<>();
JsonArray rootArray = root.getAsJsonArray();
for (JsonElement json : rootArray) {
    try {
        data.add(gson.fromJson(json, dataType));
    } catch (Exception e) {
        e.printStackTrace();
    }
}
return data;
2
  • try / catch inside loop is very inefficient.
    – dobrivoje
    Commented Nov 15, 2019 at 7:49
  • try / catch inside or outside the loop makes no difference to performance. Commented Feb 25, 2020 at 23:30
1

Fully working solution:

String json = .... //example: mPrefs.getString("list", "");
ArrayList<YouClassName> myTypes = fromJSonList(json, YouClassName.class);


public <YouClassName> ArrayList<YouClassName> fromJSonList(String json, Class<YouClassName> type) {
        Gson gson = new Gson();
        return gson.fromJson(json, TypeToken.getParameterized(ArrayList.class, type).getType());
    }
1

This is straightforward & simple in Kotlin.

val typeDataModelClass = Array<DataModelClass>::class.java
0

Well actually i have made extension functions to resolve this , saving a list to SharedPrefrence and retrieve them in anyplace in the app like this :

use this to Save a List to SharedPref. For example :

fun <T> SaveList(key: String?, list: List<T>?) {
val gson = Gson()
val json: String = gson.toJson(list)
getSharedPrefrences(App.getAppContext() as Application).edit().putString(key, json).apply()}

return the list in any place from sharedPref. like this :

fun Context.getList(key: String): String? {
 return getSharedPrefrences(App.getAppContext() as Application).getString(key, null)}

inline fun <reified T : Any> String?.fromJson(): T? = this?.let {
val type = object : TypeToken<T>() {}.type
Gson().fromJson(this, type)}

Usage in Saving and Getting List from Saved one is like :

saveList(Consts.SLIDERS, it.data)  

SetSliderData(this.getList(Consts.SLIDERS).fromJson<MutableList<SliderResponseItem>>()!!)
0

this code is json string data to convert in arraylist model

String json = getIntent().getExtras().getString("submitQuesList", "");
Type typeOfObjectsList = new TypeToken<ArrayList<Datum_ques>>() {}.getType();
submitQuesList = new Gson().fromJson(json, typeOfObjectsList);
0

My Solution;

JsonUtil.class

package dev.agitrubard.util;

import com.google.gson.Gson;
import com.google.gson.GsonBuilder;
import lombok.experimental.UtilityClass;

import java.util.Arrays;
import java.util.List;

@UtilityClass
public class JsonUtil {

    private static final Gson GSON = new GsonBuilder().create();

    public static <T> List<T> fromJsonArray(String jsonArray, Class<T[]> clazz) {
        return Arrays.asList(
                GSON.fromJson(jsonArray, clazz)
        );
    }

}

Main.class

public class Main {

    public static void main(String[] args) {
        String json = "[{\"id\":1,\"firstName\":\"John\",\"lastName\":\"Doe\"},{\"id\":2,\"firstName\":\"Jane\",\"lastName\":\"Doe\"}]";
        List<User> users = JsonUtil.fromJsonArray(json, User[].class);
        for (User user : users) {
            System.out.println(user.getId() + " - " + user.getFirstName() + " " + user.getLastName());
        }
    }

    @Getter
    public static class User {
        private Long id;
        private String firstName;
        private String lastName;
    }

}

Console Output

1 - John Doe
2 - Jane Doe

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.