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Is it possible to return a dynamic object from a json deserialization using json.net? I would like to do something like this:

dynamic jsonResponse = JsonConvert.Deserialize(json);
Console.WriteLine(jsonResponse.message);
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13  
Not a duplicate, he's asking specifically about json.net and your linked question is just asking for any solution at all. – T.W.R. Cole Sep 27 '13 at 20:37
up vote 268 down vote accepted

latest json.net version allow do this:

dynamic d = JObject.Parse("{number:1000, str:'string', array: [1,2,3,4,5,6]}");

Console.WriteLine(d.number);
Console.WriteLine(d.str);
Console.WriteLine(d.array.Count);

output:

 1000
 string
 6

Documentation here: LINQ to JSON with Json.NET

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8  
Note that for arrays the syntax is JArray.Parse. – jgillich May 15 '14 at 10:24
2  
Why do we need to use dynamic word ? i am scared never used before :D – MonsterMMORPG Aug 28 '14 at 0:29
2  
In VB.Net you need to do Dim d As Object = JObject.Parse("{number:1000, str:'string', array: [1,2,3,4,5,6]}") – ilans Dec 31 '14 at 16:39

As of Json.NET 4.0 Release 1, there is native dynamic support:

[Test]
public void DynamicDeserialization()
{
    dynamic jsonResponse = JsonConvert.DeserializeObject("{\"message\":\"Hi\"}");
    jsonResponse.Works = true;
    Console.WriteLine(jsonResponse.message); // Hi
    Console.WriteLine(jsonResponse.Works); // True
    Console.WriteLine(JsonConvert.SerializeObject(jsonResponse)); // {"message":"Hi","Works":true}
    Assert.That(jsonResponse, Is.InstanceOf<dynamic>());
    Assert.That(jsonResponse, Is.TypeOf<JObject>());
}

And, of course, the best way to get the current version is via NuGet.

Updated (11/12/2014) to address comments:

This works perfectly fine. If you inspect the type in the debugger you will see that the value is, in fact, dynamic. The underlying type is a JObject. If you want to control the type (like specifying ExpandoObject, then do so.

enter image description here

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6  
This never seems to work. It only returns a JObject, not a dynamic variable. – Paul Sep 9 '14 at 17:52
    
-1 as this still does not work and its 2014. – Gutek Nov 12 '14 at 15:18
2  
BTW, this works: JsonConvert.DeserializeObject<ExpandoObject>(STRING); with proper deserialization, so we do not have JObject etc. – Gutek Nov 12 '14 at 15:24
1  
@DavidPeden if you have JObject and you will try to bind that in Razor you will get exceptions. Question was about deserializing to dynamic object - JObject is dynamic but contains "own" types like JValue not primitive types. I can't use @Model.Prop name in Razor if return type is JValue. – Gutek Nov 17 '14 at 12:32
1  
This works, but each dynamic property is a JValue. Which confused me because I was working in the debugger/immediate window and wasn't seeing just strings. David shows this in the bottom screenshot. The JValue is convertible so you can just do string m = jsonResponse.message – Luke Puplett Feb 7 '15 at 11:06

I know this is old post but JsonConvert actually has a different method so it would be

var product = new { Name = "", Price = 0 };
var jsonResponse = JsonConvert.DeserializeAnonymousType(json, product);
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12  
That would be deserializing a json payload into an anonymous type, not a dynamic type. Anonymous types and dynamic types are different things, and I don't believe this addresses the question asked. – jrista Aug 1 '12 at 19:12
    
Is it necessary to use two variables? Why not reuse the first one in the second statement? – RenniePet Jul 23 '13 at 1:06

If you just deserialize to dynamic you will get a JObject back. You can get what you want by using an ExpandoObject.

var converter = new ExpandoObjectConverter();    
dynamic message = JsonConvert.DeserializeObject<ExpandoObject>(jsonString, converter);
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This worked for me, thanks! – Matthew Joel Rodríguez Llanos Dec 10 '15 at 2:39

You need to have some sort of type to deserialize to. You could do something along the lines of:

var product = new { Name = "", Price = 0 };
dynamic jsonResponse = JsonConvert.Deserialize(json, product.GetType());

Note: My answer was based on a solution for .NET 4.0's build in JSON serializer.

Here is a link to deserialize to anonymous types is here:

http://blogs.msdn.com/b/alexghi/archive/2008/12/22/using-anonymous-types-to-deserialize-json-data.aspx

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Yes you can do it using the JsonConvert.Deserialize. To do that, just simple do:

dynamic jsonResponse = JsonConvert.Deserialize(json);
Console.WriteLine(jsonResponse["message"]);
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JsonConvert doesn't contain a method called Deserialize. – Can Poyrazoğlu Nov 28 '15 at 17:04
    
it should just be DeserializeObject, but this should be the accepted answer IMO – superjugy Dec 21 '15 at 16:19

If you use JSON.NET with old version which didn't JObject.

This is another simple way to make a dynamic object from JSON: https://github.com/chsword/jdynamic

NuGet Install

PM> Install-Package JDynamic

Support using string index to access member like:

dynamic json = new JDynamic("{a:{a:1}}");
Assert.AreEqual(1, json["a"]["a"]);

Test Case

En, you can use this util as following :

Get the value directly

dynamic json = new JDynamic("1");

//json.Value

2.Get the member in the json object

dynamic json = new JDynamic("{a:'abc'}");
//json.a is a string "abc"

dynamic json = new JDynamic("{a:3.1416}");
//json.a is 3.1416m

dynamic json = new JDynamic("{a:1}");
//json.a is integer: 1

3.IEnemerable

dynamic json = new JDynamic("[1,2,3]");
/json.Length/json.Count is 3
//And you can use json[0]/ json[2] to get the elements

dynamic json = new JDynamic("{a:[1,2,3]}");
//json.a.Length /json.a.Count is 3.
//And you can use  json.a[0]/ json.a[2] to get the elements

dynamic json = new JDynamic("[{b:1},{c:1}]");
//json.Length/json.Count is 2.
//And you can use the  json[0].b/json[1].c to get the num.

Other

dynamic json = new JDynamic("{a:{a:1} }");

//json.a.a is 1.
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