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I would like to pass a javascript variable in a @Url.Action method as a route parameter.

I like to pass the screenmode javascript variable as a route parameter to my action method.

I have a view model with ScreenMode enum property and based on it i should call a action in Ajax. I also need to pass a javascript variable as a parameter for route.

This is what i tried and got compilation error.

The name 'screenMode' does not exist in the current context

  $("#role-detail-form").submit(function (e) {

    if ($(this).valid()) {
    var screenMode = 0;
    @{
     if (Model.ScreenMode == UI.ViewModel.ScreenMode.New)
     {
       <text> 
       screenMode =2; 
       </text>
     }
    }
    $.post('@Url.Action("SaveRoleDetail", new { mode=screenMode})', 
            $(this).serialize(), function (data) {
                $("#role-detail").html(data);
                $.validator.unobtrusive.parse($("#role-detail"));
            });
        }
        e.preventDefault();
    });

My Action is

 public ActionResult SaveRoleDetail(RoleModel viewModel, ScreenMode screenMode)
    {
    }
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2 Answers

up vote 5 down vote accepted

You'd have to split that out and build the query string yourself, in order to incorporate the Javascript variable.

Something like this is what you need:

$.post('@(Url.Action("SaveRoleDetail"))?screenMode=' + screenMode)

EDIT: Although probably best practice, you should store the ScreenMode variable in your Model, then put a HiddenFor in your view for it. Then, whenever you change the value in Javascript, simply update the value of the hidden input, that way your action method only needs to take the view model as a parameter. If you are posting the form in JavaScript and you can call $("#form").serialize() to send all the data back within your post call.

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Can i pass this query string in post ajax method? how the url will look like? screenMode will be part of post parameters or in query string? –  Murali Jan 9 '13 at 10:54
    
Better still, you could put the ScreenMode in your model, have a hiddenFor in the view, then if you want to change it's value in Javascript, you can simply update the value of the hidden input, then when all is done, just do $("#form").serialize();, that way your action method need only take the view model as a parameter :) –  mattytommo Jan 9 '13 at 10:57
    
Yes you are correct. I now use hidden field and update with Javascript. Can you please add this Hidden Field information as part of your answer. So it will be easily visible and helpful for others too :) –  Murali Jan 9 '13 at 11:00
    
@Murali Done :) –  mattytommo Jan 9 '13 at 11:14
    
@mattytommo - back on the stack ;) –  Darren Davies Jan 9 '13 at 14:27
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If you use T4MVC and jQuery, you can call the ActionResult doing the following:

In the controller:

public ActionResult SaveRoleDetail(RoleModel viewModel, ScreenMode screenMode)
{
}

In the view:

    $.post("@Url.Action(MVC.Home.SaveRoleDetail())", { viewModel: param1, screenMode: param2) }, function (data) {

        //Do Work

    });
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1  
It will be helpful if you add a link for T4MVC and jQuery. So people can easily navigate from here. Thanks –  Murali Jan 9 '13 at 14:36
    
Sorry, I missed the links. Both are available as Nuget Packages. T4MVc can be found here (t4mvc.codeplex.com) and jQuery here (jquery.com) Hope this helps. –  lopezbertoni Jan 9 '13 at 14:42
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