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With the built-in json converter I return multiple objects in my action like this:

return Json(new { success = true, data = units });

When I use the JSON.NET library how can I do the same?

This does obviously not compile:

return new { success = true, data = JsonConvert.SerializeObject(units) };

I do not want to create an extra viewmodel for this containing both properties.

Do I have a wrong understanding of the default Json javascript serializer maybe ?

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2 Answers

up vote 0 down vote accepted

If you want to use Newtonsoft.Json to serialise your objects, you can create a new ActionResult class and pass the data in the result.

For example:

public class NewtonsoftJsonResult : ContentResult
{
    private readonly object _data;

    public NewtonsoftJsonResult(object data)
    {
        _data = data;
    }

    public override void ExecuteResult(ControllerContext context)
    {
        Content = JsonConvert.SerializeObject(_data);
        ContentType = "application/json";

        base.ExecuteResult(context);
    }
}

Just return your custom ActionResult with the anonymous object as data:

public ActionResult Index()
{
    return new NewtonsoftJsonResult(new { success = true, data = units});
}
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Thanks. That worked fine. –  Elisa Jun 3 '12 at 14:28
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In your second example, JsonConvert.SerializeObject(units) will result in a string returned to JavaScript. JavaScript won't see data as containing some "real" data but rather a simple string, with curly parentheses inside.

Use your first sentence as usual. MVC's Json method will serialize the objects within.

For example:

class Units
{
    public int Width { get; set; }
    public int Height { get; set; }
}

...

Units u = new Units { Width = 34, Height = 20 };

return Json(new { success = true, data = units });

will result in a Json that looks similar to this:

{ "success" : "true", "data" : { "Height" : "20", "Width" : "34" } } }
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I do not want to use the built-in json serializer. My question is about Json.net and by the way in javascript I do this: var jsonData = $.parseJSON(data); thus returning a json string is fine. –  Elisa Jun 3 '12 at 14:17
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