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I'm using JSON.NET Linq to JSON, when I execute the below I get the following argument exception:

Can not add Newtonsoft.Json.Linq.JValue to Newtonsoft.Json.Linq.JObject

What's wrong with the code

string content = new JObject(
            new JObject("auth",
                        new JProperty("user", "anemail@gmail.com"),
                        new JProperty("secret", "somepassword")
                ),
            new JObject("config",
                        new JProperty("template", "1")
                ),
            new JObject("data",
                        new JProperty("email", "body")
                )
            ).ToString();
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Tim is right. What you wrote looks more like the creation of an XML structure using XDocument and XElement where you can mix the node name and its child nodes in the parameter list. –  fero Oct 29 '12 at 12:48

1 Answer 1

up vote 1 down vote accepted

As per the JSON.NET documentation, you need to wrap your JObjects in JProperties themselves:


string content = new JObject(
                   new JProperty("auth",
                     new JObject(
                       new JProperty("user", "anemail@gmail.com"),
                       new JProperty("secret", "somepassword")
                     )
                   ),
                   new JProperty("config",
                     new JObject(
                       new JProperty("template", "1")
                     )
                   ),
                   new JProperty("data",
                     new JObject(
                       new JProperty("email", "body")
                     )
                   )
                 ).ToString();

share|improve this answer
    
thank you very much, simple when you know how. –  Simon Oct 29 '12 at 18:48
    
Works perfectly :) –  Simon Oct 29 '12 at 18:48

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