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I need to deserialize the following:

{"result":{"success":true,"value":"8cb2237d0679ca88db6464eac60da96345513964"}}

to a C# object using Newtonsoft.Json

WebClient wc = new WebClient();
var json = wc.DownloadString(url);
Worker w = JsonConvert.DeserializeObject<Worker>(json);

Here is the class code:

public class Worker
{

    [JsonProperty("success")]
    public string success { get; set; }

    [JsonProperty("value")]
    public string value { get; set; }
}

The code does not error out, but the success and value are null.

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3 Answers 3

You're missing the outer object.

public class Worker
{
     [JsonProperty("result")]
     public Result Result { get; set; }
}

public class Result
{
    [JsonProperty("success")]
    public string Success { get; set; }

    [JsonProperty("value")]
    public string Value { get; set; }
}
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Thanks! Figured "result" needed to be serialized. –  user2019423 Jan 28 '13 at 20:04
    
Also you may want to consider capitalizing your property names, since that is the standard convention in C#. Since you're already controlling the JSON serialization with attributes, it won't affect that. I edited my answer to show what I mean. –  luksan Jan 28 '13 at 20:10
    
@luksan +1 What if I want the C# class to contain three fields: Result, Success and Value? When I set the JsonProperty attribute to "result.success" or "result.value" it returns null. Is it possible? –  Anar Khalilov Jul 12 '13 at 7:17
    
@Anar I'm not sure I understand. Maybe try creating a new question on here with example code. –  luksan Jul 12 '13 at 14:31
    
My fault, sorry. I wanted to ask whether you could specify JsonProperty value two levels deep, hence, "result.success". It does not work that way, maybe you know a way. –  Anar Khalilov Jul 12 '13 at 14:55

You don't need any class and can make use of dynamic keyword

string json = @"{""result"":{""success"":true,""value"":""8cb2237d0679ca88db6464eac60da96345513964""}}";

dynamic dynObj = JsonConvert.DeserializeObject(json);
Console.WriteLine("{0} {1}", dynObj.result.success, dynObj.result.value);
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Great thoughts! –  user2019423 Jan 28 '13 at 20:03

I'm not familiar with that library, but success and result look to be both properties of the object "result"

Have you tried [JsonProperty("result.success")]?

Edit: Well, regardless it looks like a scoping issue. After viewing the documentation, this is my new suggestion:

public class Result{
 [JsonProperty("result")]
 public Worker result { get; set; }
}

then Json.Convert.Deserialize<Result>(json) instead.

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Good thought... still Null. –  user2019423 Jan 28 '13 at 19:58

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