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In ASP.NET MVC, we have @Url.Action for actions. Is there something similar like @Url.Api which would route to /api/controller?

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3 Answers 3

up vote 95 down vote accepted

The ApiController has a property called Url which is of type System.Web.Http.Routing.UrlHelper which allows you to construct urls for api controllers.


public class ValuesController : ApiController
    // GET /api/values
    public IEnumerable<string> Get()
        // returns /api/values/123
        string url = Url.Route("DefaultApi", new { controller = "values", id = "123" });
        return new string[] { "value1", "value2" };

    // GET /api/values/5
    public string Get(int id)
        return "value";


This UrlHelper doesn't exist neither in your views nor in the standard controllers.


And in order to do routing outside of an ApiController you could do the following:

public class HomeController : Controller
    public ActionResult Index()
        string url = Url.RouteUrl(
            new { httproute = "", controller = "values", id = "123" }
        return View();

or inside a view:

<script type="text/javascript">
    var url = '@Url.RouteUrl("DefaultApi", new { httproute = "", controller = "values", id = "123" })';
       url: url,
       type: 'GET',
       success: function(result) {
           // ...

Notice the httproute = "" route token which is important.

Obviously this assumes that your Api route is called DefaultApi in your RegisterRoutes method in Global.asax:

    name: "DefaultApi",
    routeTemplate: "api/{controller}/{id}",
    defaults: new { id = RouteParameter.Optional }
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That.. really doesn't help me much since I need my View to be able to generate Urls in a safe way. If there is a Go Live license what is the 'Go Live' way to create urls on the View? – Shane Courtrille Feb 29 '12 at 16:16
More importantly this won't work if you're using ASP.Net Development Server since it changes ports all the time so you can't even hardcore the url in the view. – Shane Courtrille Feb 29 '12 at 16:18
@ShaneCourtrille, I have updated my answer to illustrate how you could use the normal System.Web.Mvc.UrlHelper to generate Api routes outside of an HttpControllerContext. – Darin Dimitrov Feb 29 '12 at 16:39
Thanks very much! I was trying to use RouteUrl but didn't know about the httproute param requirement. – Shane Courtrille Feb 29 '12 at 17:28
I understand the purpose of the sample; I'm saying it would be a more useful sample if you threw in one line of ViewBag code because you would be demonstrating that this value is what we were trying to get at in a likely scenario and not just executing some arbitrary code. Again, I wouldn't have commented if I hadn't wasted a couple minutes failing to realize what I missed before I finally recognized that the particular line of code was the relevant one. – stimpy77 Dec 4 '12 at 23:51

It works with the simpler form of Url.Action thus you don't have to reference any Routing names:

Url.Action("MyAction", "MyApiCtrl", new { httproute = "" })

You might want to add an area = "" if the URL is needed within an Area. (Api controllers are outside of Areas by default.) I'm using MVC 4.

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Very simple and straightforward. Thanks! – Jesse Sep 2 '13 at 4:34
The UrlHelper in Web Api is…, it doesn't have an action method. – Yuriy Faktorovich Sep 20 '13 at 15:26
@YuriyFaktorovich This post implies that Url.Action is being used from a View. Url is of type System.Web.Mvc.UrlHelper, and it doesn't map to WebApi routes. This is why you need the extra parameter: new { httproute = "" }. – Jesse Sep 24 '13 at 21:26
I've added httproute"" but it's not mapping =/ – Maslow Nov 8 '13 at 20:25
Straightforward. – Avrohom Jul 16 at 15:05

Want to be able to generate links in a typesafe manner, without hardcoded strings (controller names)?

There's a nuget for that! (and it's written by Mark Seeman)

Works like this:

Routes, as usual:

name: "API Default",
routeTemplate: "api/{controller}/{id}",
defaults: new { id = RouteParameter.Optional }

Get an URL:

var linker = new RouteLinker(request);
var uri = linker.GetUri<FooController>(r => r.GetById(1337));


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