537

I want to transfer a list object via Google Gson, but I don't know how to deserialize generic types.

What I tried after looking at this (BalusC's answer):

MyClass mc = new Gson().fromJson(result, new List<MyClass>() {}.getClass());

but then I get an error in Eclipse saying "The type new List<MyClass>() {} must implement the inherited abstract method..." and if I use a quick fix I get a monster of over 20 method stubs.

I am pretty sure that there is an easier solution, but I seem unable to find it!

Now I have this:

Type listType = new TypeToken<List<MyClass>>() {}.getType();

MyClass mc = new Gson().fromJson(result, listType);

However, I do get the following exception at the fromJson line:

java.lang.NullPointerException
at org.apache.harmony.luni.lang.reflect.ListOfTypes.length(ListOfTypes.java:47)
at org.apache.harmony.luni.lang.reflect.ImplForType.toString(ImplForType.java:83)
at java.lang.StringBuilder.append(StringBuilder.java:203)
at com.google.gson.JsonDeserializerExceptionWrapper.deserialize(JsonDeserializerExceptionWrapper.java:56)
at com.google.gson.JsonDeserializationVisitor.invokeCustomDeserializer(JsonDeserializationVisitor.java:88)
at com.google.gson.JsonDeserializationVisitor.visitUsingCustomHandler(JsonDeserializationVisitor.java:76)
at com.google.gson.ObjectNavigator.accept(ObjectNavigator.java:106)
at com.google.gson.JsonDeserializationContextDefault.fromJsonArray(JsonDeserializationContextDefault.java:64)
at com.google.gson.JsonDeserializationContextDefault.deserialize(JsonDeserializationContextDefault.java:49)
at com.google.gson.Gson.fromJson(Gson.java:568)
at com.google.gson.Gson.fromJson(Gson.java:515)
at com.google.gson.Gson.fromJson(Gson.java:484)
at com.google.gson.Gson.fromJson(Gson.java:434)

I do catch JsonParseExceptions and result is not null.

I checked listType with the debugger and got the following:

  • list Type
    • args = ListOfTypes
      • list = null
      • resolvedTypes = Type[ 1 ]
    • loader = PathClassLoader
    • ownerType0 = null
    • ownerTypeRes = null
    • rawType = Class (java.util.ArrayList)
    • rawTypeName = "java.util.ArrayList"

So it seems the getClass invocation didn't work properly. Any suggestions...?

I've checked on the Gson User Guide. It mentions a runtime exception that should happen during parsing a generic type to Json. I did it "wrong" (not shown above), just as in the example, but didn't get that exception at all. So I changed the serialization as in the user guide suggested. Didn't help, though.

Edit:

Solved, see my answer below.

3
  • 1
    The answer you pointed to, uses TokenType. Have you tried that way?
    – Nishant
    Commented Apr 5, 2011 at 15:30
  • just got the same hint as an answer. next time I'll give the example a closer look. ;)
    – jellyfish
    Commented Apr 5, 2011 at 15:36
  • Can you try an implementation of list in type token? Since your raw type is array list you should try array list.
    – billygoat
    Commented Apr 6, 2011 at 13:12

15 Answers 15

1116

Method to deserialize generic collection:

import java.lang.reflect.Type;
import com.google.gson.reflect.TypeToken;

...

Type listType = new TypeToken<ArrayList<YourClass>>(){}.getType();
List<YourClass> yourClassList = new Gson().fromJson(jsonArray, listType);

Since several people in the comments have mentioned it, here's an explanation of how the TypeToken class is being used. The construction new TypeToken<...>() {}.getType() captures a compile-time type (between the < and >) into a runtime java.lang.reflect.Type object. Unlike a Class object, which can only represent a raw (erased) type, the Type object can represent any type in the Java language, including a parameterized instantiation of a generic type.

The TypeToken class itself does not have a public constructor, because you're not supposed to construct it directly. Instead, you always construct an anonymous subclass (hence the {}, which is a necessary part of this expression).

Due to type erasure, the TypeToken class is only able to capture types that are fully known at compile time. (That is, you can't do new TypeToken<List<T>>() {}.getType() for a type parameter T.)

For more information, see the documentation for the TypeToken class.

13
  • 34
    In new versions of GSON the TypeToken contructor is not public, hence here you get constructor not visible error. What do you have to do in this case?
    – Pablo
    Commented Apr 3, 2012 at 20:09
  • 8
    Using actual version of GSON (2.2.4) it works again. You can access the constructor here.
    – user1563700
    Commented Nov 20, 2013 at 22:42
  • 9
    Following Imports required --- import java.lang.reflect.Type; import com.google.gson.reflect.TypeToken Commented Jun 30, 2015 at 11:38
  • 5
    This is good if YourClass is fixed in code. What if the class comes at runtime?
    – jasxir
    Commented Sep 8, 2015 at 8:40
  • 1
    @jasxir, if the type argument is dynamic and not known at compile time, use TypeToken.getParameterized, as shown in this answer. Commented Sep 13, 2022 at 19:12
312

Another way is to use an array as a type, e.g.:

MyClass[] mcArray = gson.fromJson(jsonString, MyClass[].class);

This way you avoid all the hassle with the Type object, and if you really need a list you can always convert the array to a list by:

List<MyClass> mcList = Arrays.asList(mcArray);

IMHO this is much more readable.

And to make it be an actual list (that can be modified, see limitations of Arrays.asList()) then just do the following:

List<MyClass> mcList = new ArrayList<>(Arrays.asList(mcArray));
7
  • 4
    this is great! How can I use it with reflection? I dont know the MyClass value and it will be defined dynamically!
    – Amin Sh
    Commented Dec 27, 2013 at 16:10
  • 2
    nota: with this, be careful that mcList is not a full-fledged list. many things will not work.
    – njzk2
    Commented Jun 5, 2014 at 13:29
  • 4
    How to use it with generics? T[] yourClassList = gson.fromJson(message, T[].class); //cannot select from type variable Commented Feb 21, 2015 at 17:31
  • 3
    @MateusViccari at the time of that comment, mcList in this answer was only the result of the call to Arrays.asList. This method returns a list on which most if not all optional methods are left unimplemented and throw exceptions. For instance, you cannot add any element to that list. As the later edit suggests, Arrays.asList has limitations, and wrapping it into an actual ArrayList allows you to get a list that is more useful in many cases.
    – njzk2
    Commented Mar 6, 2017 at 4:00
  • 2
    If you need to construct an array type at runtime for an arbitrary element type, you can use Array.newInstance(clazz, 0).getClass() as described in David Wood's answer. Commented Mar 20, 2018 at 12:24
92

Since Gson 2.8, we can create util function like this:

public <T> List<T> getList(String jsonArray, Class<T> clazz) {
    Type typeOfT = TypeToken.getParameterized(List.class, clazz).getType();
    return new Gson().fromJson(jsonArray, typeOfT);
}

Example usage:

String jsonArray = ...
List<User> user = getList(jsonArray, User.class);
7
  • 3
    TypeToken#getParameterized looks a way better then the hack with an anonymous subclass Commented Oct 10, 2018 at 14:46
  • 1
    I copied your method "as is" and it does not work : compiler says "The method getParameterized(Class<List>, Class<T>) is undefined for the type TypeToken". I checked both my Gson version (2.8.0) and documentation and everything is fine on this side... I ended up using @Happier solution which works fine Commented Feb 20, 2020 at 9:19
  • 1
    This should be the accepted solution, simple, it uses the Gson API, and there are no hacks around it. +1
    – 4gus71n
    Commented Aug 29, 2020 at 18:21
  • 2
    For what it's worth the solution using an anonymous TypeToken subclass is not really a hack, but the officially recommended usage by Gson (see its Javadoc and the User Guide). The main advantage is that it makes sure you construct proper parameterized types. TypeToken.getParameterized cannot perform any validation at compile time so you could construct types such as List<String, String, String> or Map<Integer>; the latest Gson versions at least detect these bad types at runtime. Commented Sep 13, 2022 at 19:18
  • 1
    @Marcono1234 Another advantage of anonymous TypeToken is shown when we need nested generics. For instance while parsing [[1,2],[3,4],[5,6]] I would rather read/maintain code with new TypeToken<List<List<Integer>>(){}.getType() than TypeToken.getParameterized(List.class, TypeToken.getParameterized(List.class, Integer.class).getType()).getType().
    – Pshemo
    Commented Sep 19, 2022 at 14:13
32

Refer to this post. Java Type Generic as Argument for GSON

I have better solution for this. Here's the wrapper class for list so the wrapper can store the exactly type of list.

public class ListOfJson<T> implements ParameterizedType
{
  private Class<?> wrapped;

  public ListOfJson(Class<T> wrapper)
  {
    this.wrapped = wrapper;
  }

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

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

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

And then, the code can be simple:

public static <T> List<T> toList(String json, Class<T> typeClass)
{
    return sGson.fromJson(json, new ListOfJson<T>(typeClass));
}
2
  • What is mEntity.rulePattern? Commented Apr 7, 2015 at 15:04
  • It's just a sample object for test. You don't need to care about it. Use toList method and everything goes well.
    – Happier
    Commented Apr 8, 2015 at 6:44
29

Wep, another way to achieve the same result. We use it for its readability.

Instead of doing this hard-to-read sentence:

Type listType = new TypeToken<ArrayList<YourClass>>(){}.getType();
List<YourClass> list = new Gson().fromJson(jsonArray, listType);

Create a empty class that extends a List of your object:

public class YourClassList extends ArrayList<YourClass> {}

And use it when parsing the JSON:

List<YourClass> list = new Gson().fromJson(jsonArray, YourClassList.class);
0
14

For Kotlin simply:

import java.lang.reflect.Type
import com.google.gson.reflect.TypeToken
...
val type = object : TypeToken<List<T>>() {}.type

or, here is a useful function:

fun <T> typeOfList(): Type {
    return object : TypeToken<List<T>>() {}.type
}

Then, to use:

val type = typeOfList<YourMagicObject>()
4
  • I've used your code to create this function using reified types: inline fun <reified T> buildType() = object : TypeToken<T>() {}.type!! and call it with the List type: buildType<List<YourMagicObject>>()
    – coffeemakr
    Commented Nov 21, 2017 at 19:34
  • @coffeemakr You don't need reified types here. Commented Nov 22, 2017 at 18:58
  • Oh. But why do you create the type token of a ArrayList in buildType and also call the function with the generic type? Is this a typo? - This would create ArrayList<ArrayList<YourMagicObject>>
    – coffeemakr
    Commented Nov 22, 2017 at 21:12
  • @coffeemakr ah, yeah. Typo Commented Nov 23, 2017 at 0:22
7
public static final <T> List<T> getList(final Class<T[]> clazz, final String json)
{
    final T[] jsonToObject = new Gson().fromJson(json, clazz);

    return Arrays.asList(jsonToObject);
}

Example:

getList(MyClass[].class, "[{...}]");
1
6

As it answers my original question, I have accepted doc_180's answer, but if someone runs into this problem again, I will answer the 2nd half of my question as well:

The NullPointerError I described had nothing to do with the List itself, but with its content!

The "MyClass" class didn't have a "no args" constructor, and neither had its superclass one. Once I added a simple "MyClass()" constructor to MyClass and its superclass, everything worked fine, including the List serialization and deserialization as suggested by doc_180.

2
  • 1
    If you have a list of abstract classes you'll get the same error. I guess this is GSON's general error message for "Unable to instantiate class".
    – Drew
    Commented Sep 30, 2011 at 1:18
  • The tip about adding a constructor helped me realize why I had all null-values. I had field names like "To" and "From" in my JSON-string, but the corresponding fields in my object were "to" and "from" in lower case, so they were skipped
    – Rune
    Commented Jun 19, 2016 at 8:03
6

Here is a solution that works with a dynamically defined type. The trick is creating the proper type of of array using Array.newInstance().

public static <T> List<T> fromJsonList(String json, Class<T> clazz) {
    Object [] array = (Object[])java.lang.reflect.Array.newInstance(clazz, 0);
    array = gson.fromJson(json, array.getClass());
    List<T> list = new ArrayList<T>();
    for (int i=0 ; i<array.length ; i++)
        list.add(clazz.cast(array[i]));
    return list; 
}
0
3

I want to add for one more possibility. If you don't want to use TypeToken and want to convert json objects array to an ArrayList, then you can proceed like this:

If your json structure is like:

{

"results": [
    {
        "a": 100,
        "b": "value1",
        "c": true
    },
    {
        "a": 200,
        "b": "value2",
        "c": false
    },
    {
        "a": 300,
        "b": "value3",
        "c": true
    }
]

}

and your class structure is like:

public class ClassName implements Parcelable {

    public ArrayList<InnerClassName> results = new ArrayList<InnerClassName>();
    public static class InnerClassName {
        int a;
        String b;
        boolean c;      
    }
}

then you can parse it like:

Gson gson = new Gson();
final ClassName className = gson.fromJson(data, ClassName.class);
int currentTotal = className.results.size();

Now you can access each element of className object.

1

Refer to example 2 for 'Type' class understanding of Gson.

Example 1: In this deserilizeResturant we used Employee[] array and get the details

public static void deserializeResturant(){

       String empList ="[{\"name\":\"Ram\",\"empId\":1},{\"name\":\"Surya\",\"empId\":2},{\"name\":\"Prasants\",\"empId\":3}]";
       Gson gson = new Gson();
       Employee[] emp = gson.fromJson(empList, Employee[].class);
       int numberOfElementInJson = emp.length();
       System.out.println("Total JSON Elements" + numberOfElementInJson);
       for(Employee e: emp){
           System.out.println(e.getName());
           System.out.println(e.getEmpId());
       }
   }

Example 2:

//Above deserilizeResturant used Employee[] array but what if we need to use List<Employee>
public static void deserializeResturantUsingList(){

    String empList ="[{\"name\":\"Ram\",\"empId\":1},{\"name\":\"Surya\",\"empId\":2},{\"name\":\"Prasants\",\"empId\":3}]";
    Gson gson = new Gson();

    // Additionally we need to se the Type then only it accepts List<Employee> which we sent here empTypeList
    Type empTypeList = new TypeToken<ArrayList<Employee>>(){}.getType();


    List<Employee> emp = gson.fromJson(empList, empTypeList);
    int numberOfElementInJson = emp.size();
    System.out.println("Total JSON Elements" + numberOfElementInJson);
    for(Employee e: emp){
        System.out.println(e.getName());
        System.out.println(e.getEmpId());
    }
}
1

using Kotlin, you can get generic MutableList type for all custom Serializable Types

private fun <T : Serializable> getGenericList(
    sharedPreferences: SharedPreferences,
    key: String,
    clazz: KClass<T>
): List<T> {
    return sharedPreferences.let { prefs ->
        val data = prefs.getString(key, null)
        val type: Type = TypeToken.getParameterized(MutableList::class.java, clazz.java).type
        gson.fromJson(data, type) as MutableList<T>
    }
}

you can call this function

getGenericList.(sharedPrefObj, sharedpref_key, GenericClass::class)
0

In My case @uncaught_exceptions's answer didn't work, I had to use List.class instead of java.lang.reflect.Type:

String jsonDuplicatedItems = request.getSession().getAttribute("jsonDuplicatedItems").toString();
List<Map.Entry<Product, Integer>> entries = gson.fromJson(jsonDuplicatedItems, List.class);
0

I have created GsonUtils lib for this case. I add this into maven central repository.

Map<String, SimpleStructure> expected = new HashMap<>();
expected.put("foo", new SimpleStructure("peperoni"));

String json = GsonUtils.writeValue(expected);

Map<String, SimpleStructure> actual = GsonUtils.readMap(json, String.class, SimpleStructure.class);
-1

I liked the answer from kays1 but I couldn't implement it. So I built my own version using his concept.

public class JsonListHelper{
    public static final <T> List<T> getList(String json) throws Exception {
        Gson gson = new GsonBuilder().setDateFormat("yyyy-MM-dd HH:mm:ss").create();
        Type typeOfList = new TypeToken<List<T>>(){}.getType();
        return gson.fromJson(json, typeOfList);
    }
}

Usage:

List<MyClass> MyList= JsonListHelper.getList(jsonArrayString);
1
  • Surely this cannot work since you're trying to use T in compile-time. This will effectively deserialize to a List of StringMap, no?
    – JHH
    Commented Apr 4, 2017 at 13:55

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