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The reply at

MVC3 Pass Model view to controller using javascript

implies that this was impossible, at least for MVC 3.

I was wondering if there is any way in MVC 4 to quickly pass the entire form contents (represented by the model) from the .cshtml (razor) view to the controller in JavaScript.

For example, if I select a dropdown, I may want to return all fields from a form to the controller which will take appropriate action.

Obviously, for large forms it is undesirable to have to do this element-by-element

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Why is it impossible (on MVC 3)? I do it all the time. Have you ever heard about JSON, AJAX, Serialization, JsonNET, etc? Actually, you don't pass anything. You submit information to an Action in the Controller. –  MelanciaUK Sep 5 '13 at 20:27
    
Do you have a small example of the JSON syntax to pass the entire model back to the controller from JavaScript? Thanks very much. I'm from the US, but watch a lot of UK TV, listen to UK music, etc. –  JosephDoggie Sep 5 '13 at 20:38
    
I live in the UK, but I'm Italian/Brazilian. :) –  MelanciaUK Sep 5 '13 at 20:53
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2 Answers 2

up vote 1 down vote accepted

Basically, you can do it calling an AJAX POST:

JS (using jQuery):

$('form').on('submit', function (event) {
    // Stop the default submission
    event.preventDefault();

    // Serialize (JSON) the form's contents and post it to your action
    $.post('YourAction', $(this).serialize(), function (data) {
        // If you want to do something after the post
    });
});

Controller Action:

public ActionResult YourAction(string JSONmodel)
{
    System.Web.Script.Serialization.JavaScriptSerializer serializer = new System.Web.Script.Serialization.JavaScriptSerializer();

    MyModel model = serializer.Deserialize(JSONmodel, typeof(MyModel));

    // Now you can do whatever you want with your model
}

UPDATE

For more complex objects, you can use a third part solution for serialization/deserialization. It's well documented and broaden used:

Json.NET: http://json.codeplex.com/

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2  
Why not use the default model binder? –  Erik Philips Sep 5 '13 at 20:55
1  
Maybe the OP wants to submit something in a different way, to a different Action. Who knows? –  MelanciaUK Sep 5 '13 at 20:56
1  
I needed something similar when using the jQuery jqGrid, as an example. I couldn't rely on the default model binder to achieve the result expected. –  MelanciaUK Sep 5 '13 at 20:58
1  
i use this method for posting my knockout js viewmodels sometimes. its handy when making single page apps. –  spaceman Sep 6 '13 at 7:49
    
@spaceman Yes, that's another use for it. –  MelanciaUK Sep 6 '13 at 7:50
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Yes it is possible in a simpler way.

  1. Alternate of example provided by MelanciUK.

    $('form').on('submit', function (event) { // Stop the default submission event.preventDefault();

    // User same property name as in Model
    $.post('YourAction', {prop1 : 'a', prop2 : 'b'}, function (data) {
        // If you want to do something after the post
    });
    

    });

    [HttpPost]
     public ActionResult SampleAction(SampleModel sModel)
      {
    
      }
    

You can achieve the same thing by stadard MVC(ModelBinding) convention i.e. no need to serialize and deserialize.

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I haven't personally verified the above, but it looks very helpful. If anyone wants to try it, please post whether it actually works or not. –  JosephDoggie Apr 22 at 19:06
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