144

json.net (newtonsoft)
I am looking through the documentation but I can't find anything on this or the best way to do it.

public class Base
{
    public string Name;
}
public class Derived : Base
{
    public string Something;
}

JsonConvert.Deserialize<List<Base>>(text);

Now I have Derived objects in the serialized list. How do I deserialize the list and get back derived types?

3
  • That isn't how the inheritance works. You can specify JsonConvert.Deserialize<Derived>(text); to include the Name field. Since Derived IS A Base (not the other way around), Base doesn't know anything about Derived's definition.
    – M.Babcock
    Dec 14, 2011 at 23:13
  • 1
    Sorry, clarified a bit. The issue is I have a list which contains both base and derived objects. So I need to figure out how I tell newtonsoft how to deserialize the derived items.
    – Will
    Dec 14, 2011 at 23:18
  • I did you solve this. I have the same problem Jul 29, 2012 at 20:18

6 Answers 6

130

You have to enable Type Name Handling and pass that to the (de)serializer as a settings parameter for both Serialize and Deserialize operations.

Base object1 = new Base() { Name = "Object1" };
Derived object2 = new Derived() { Something = "Some other thing" };
List<Base> inheritanceList = new List<Base>() { object1, object2 };

JsonSerializerSettings settings = new JsonSerializerSettings { TypeNameHandling = TypeNameHandling.All };
string Serialized = JsonConvert.SerializeObject(inheritanceList, settings);
List<Base> deserializedList = JsonConvert.DeserializeObject<List<Base>>(Serialized, settings);

This will result in correct deserialization of derived classes. A drawback to it is that it will name all the objects you are using, as such it will name the list you are putting the objects in.

5
  • 34
    +1. I was googling for 30 minutes until I actually found out that you need to use same settings for SerializeObject & DeserializeObject. I assumed it would use $type implicitly if it is there when deserializing, silly me. Jul 13, 2015 at 18:53
  • 31
    TypeNameHandling.Auto will do it too, and is nicer because it doesn't write the instance type name when it matches the type of the field/property, which is often the case for most fields/properties. Feb 16, 2016 at 10:16
  • 5
    This doesn't work when deserialization is performed on another solution/project. On serialization the name of the Solution is embedded within as type: "SOLUTIONNAME.Models.Model". On deserialization on the other solution it will throw "JsonSerializationException: Could not load assembly 'SOLUTIONNAME'.
    – Jebathon
    May 22, 2020 at 17:06
  • 2
    I never know it could be so easy! I dug through Google and damn near pull all my hair out trying to figure out how to write a custom serializer/deserializer! Then I finally came across this answer, and finally solved it! You're my lifesaver! Thanks trillions!
    – Noob001
    Oct 27, 2021 at 16:15
  • @Jebathon, you have in both solutions have at least projects with the same name and classes with the same namespace. But better to share the same library Apr 20, 2023 at 8:06
60

If you are storing the type in your text (as you should be in this scenario), you can use the JsonSerializerSettings.

See: how to deserialize JSON into IEnumerable<BaseType> with Newtonsoft JSON.NET

Be careful, though. Using anything other than TypeNameHandling = TypeNameHandling.None could open yourself up to a security vulnerability - see "How to configure Json.NET to create a vulnerable web API".

6
  • 31
    You can also use TypeNameHandling = TypeNameHandling.Auto - this will add a $type property ONLY for instances where the declared type (i.e. Base) does not match the instance type (i.e. Derived). This way, it doesn't bloat your JSON as much as TypeNameHandling.All. Mar 25, 2015 at 13:18
  • I keep receiving Error resolving type specified in JSON '..., ...'. Path '$type', line 1, position 82. Any ideas?
    – briba
    Oct 21, 2016 at 23:09
  • 6
    Be careful when using this on a public endpoint as it opens up security issues: alphabot.com/security/blog/2017/net/…
    – gjvdkamp
    Aug 13, 2018 at 10:59
  • 2
    @gjvdkamp JEEZ thanks for this, I did not know about this. Will add to my post.
    – kamranicus
    Oct 2, 2018 at 3:02
  • 1
    6 months later... I would strongly discourage the use of this. Aside from the security concerns, this also makes it a pain to rename your classes or move them into other namespaces. Refactoring will become hell. I now use a custom "discriminator field" on my objects to know what subclass to deserialize them into. It's the same idea basically, but it's just not tied to class namespaces... Aug 24, 2022 at 19:57
36

Since the question is so popular, it may be useful to add on what to do if you want to control the type property name and its value.

The long way is to write custom JsonConverters to handle (de)serialization by manually checking and setting the type property.

A simpler way is to use JsonSubTypes, which handles all the boilerplate via attributes:

[JsonConverter(typeof(JsonSubtypes), "Sound")]
[JsonSubtypes.KnownSubType(typeof(Dog), "Bark")]
[JsonSubtypes.KnownSubType(typeof(Cat), "Meow")]
public class Animal
{
    public virtual string Sound { get; }
    public string Color { get; set; }
}

public class Dog : Animal
{
    public override string Sound { get; } = "Bark";
    public string Breed { get; set; }
}

public class Cat : Animal
{
    public override string Sound { get; } = "Meow";
    public bool Declawed { get; set; }
}
8
  • 8
    I get the need, but I'm not a fan of having to make the base class aware of all the "KnownSubType"s... Apr 4, 2019 at 23:18
  • 3
    There are other options if you look at the documentation. I only provided the example I like more.
    – rzippo
    Apr 5, 2019 at 9:58
  • 2
    This is the safer approach that doesn't expose your service to load arbitrary types upon de-serialization.
    – David Burg
    Dec 19, 2019 at 23:40
  • 2
    Where is JsonSubtypes even defined? I'm using Newtonsoft.Json Version 12.0.0.0 and have no reference to JsonSubtypes, JsonSubTypes nor JsonSubtypesConverterBuilder (mentioned in that article). Nov 16, 2020 at 18:37
  • 1
    @MattArnold It's a separate Nuget package.
    – rzippo
    Nov 16, 2020 at 19:33
9

Use this JsonKnownTypes, it's very similar way to use, it just add discriminator to json:

[JsonConverter(typeof(JsonKnownTypeConverter<BaseClass>))]
[JsonKnownType(typeof(Base), "base")]
[JsonKnownType(typeof(Derived), "derived")]
public class Base
{
    public string Name;
}
public class Derived : Base
{
    public string Something;
}

Now when you serialize object in json will be add "$type" with "base" and "derived" value and it will be use for deserialize

Serialized list example:

[
    {"Name":"some name", "$type":"base"},
    {"Name":"some name", "Something":"something", "$type":"derived"}
]
0

In .NET 6/7 you could use System.Text.Json.Serialization

[JsonDerivedType(typeof(Panel), typeDiscriminator: "panel")]

See https://learn.microsoft.com/en-us/dotnet/api/system.text.json.serialization.jsonderivedtypeattribute.-ctor?view=net-7.0&f1url=%3FappId%3DDev16IDEF1%26l%3DEN-US%26k%3Dk(System.Text.Json.Serialization.JsonDerivedTypeAttribute.%2523ctor)%3Bk(DevLang-csharp)%26rd%3Dtrue

4
  • Where should this code be put? Please also add an excerpt from the link. The link can become dead in the future and your answer would remain useless. Jul 8, 2023 at 6:48
  • I know this is a bit old at this point but JsonDerivedType is only available in .NET 7/8 according to that link.
    – DibsyJr
    Sep 13, 2023 at 13:44
  • Are you suggesting to use System.Text.Json implementation ? It is describe in different question is-polymorphic-deserialization-possible-in-system-text-json This question is about newtonsoft json.net Oct 7, 2023 at 17:08
  • JsonDerivedType works for .NET7+ (no .NET6- implementations from MS). See "Applies to" section here
    – PIoneer_2
    Jan 3 at 17:26
-3

just add object in Serialize method

 var jsonMessageBody = JsonSerializer.Serialize<object>(model);

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.