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When I navigate to /Controller/Action in ASP.NET MVC, the action returns a View and the browser URL is updated. How could I keep the URL intact but return the requested View at the same time?

For example, /Home/Index would return the View for Index whereas /Home/SignUp would return a different View. I want to make sure after both calls, the URL stays the same.

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In your words, and in web, "call" means requesting resource by specifying "url". There are no "both calls" if there's single url. You could use Ajax to request resources from server without updating page and url – archil Oct 3 '12 at 8:40

You could explicitly specify the view you want to return in the controller action:

return View("~/Views/SomeController/SomeView.cshtml");
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I don't think that would execute the action method though. I think it would simply return the View. I'm setting ViewBag properties in the action. – Mark13426 Oct 3 '12 at 8:41
    
No, this will not execute the action. Since you will be returning a different view you could set the required ViewBag properties in this action. – Darin Dimitrov Oct 3 '12 at 8:44

These would be GET calls and this behaviour is intrinsic.

If you want to stay on the same page or even have a single page application then you need to consider using ajax and http POST to get the different views you need to build up your page.

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You can achieve that by performing several approaches:

1. Configure your route config

 routes.MapRoute(
                name: null,
                url: "Home/FirstMethod",
                defaults: new { controller = "Home", action = "FirstMethod" }
            );

            routes.MapRoute(
                name: null,
                url: "Home/SecondMethod",
                defaults: new { controller = "Home", action = "FirstMethod" }
            );

2. Using custom MVCTransferResult: How to simulate Server.Transfer in ASP.NET MVC?

3. You can specifiy view explictly, for example:

return View(viewName: "Contact");
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