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i wan to call mvc controller method while page load :

    public ActionResult Detail(int id)
    {
       Customer customer =  CustomerManager.GetCustomer(id);
        return View(customer);
    }

My View Codes :


<h2>Detail</h2>
<%=Html.ValidationSummary("Please correct the erros and try again.") %>
   <% using (Html.BeginForm("Detail", "Customer", new { id = 1 }))
      {%>
<fieldset>
<legend>Fields</legend>
<p>
<%=Html.LabelFor(q => q.id)%>
<%=Html.Encode(Model.id)%>
</p>
<p>
<%=Html.LabelFor(q => q.Name)%>
<%=Html.DisplayFor(q => q.Name)%>
</p>
<p>
<%=Html.LabelFor(q => q.SurName)%>
<%:Html.Encode(Model.SurName)%>
</p>
<p>
 <%=Html.ActionLink("Edit", "Edit", new { id = Model.id })%> 
</p>

</fieldset>
<%} %>

How to Call Detail action method :

Classic Web Form :

Pageload()
{
  if(!ispostback)
       Detail(1);
}

TO

MVC from . How to do that?

share|improve this question
    
you can write your referrer url to session. each request, check if the referrer url string equal request.url then call Detail(id). Since MVC is stateless, I think there is no postback property. –  Tô Việt Anh Mar 27 '12 at 9:05

1 Answer 1

up vote 3 down vote accepted
if (true) // some condition
{
    return RedirectToAction("Detail", "Customer", new { id = 1 });
}
share|improve this answer
    
:D yes indeed.. –  Bas Mar 27 '12 at 9:04
    
this will also(as a side effect) render the view associated with the detail method, but not render the view associated with the original request –  Bond Mar 27 '12 at 11:32
    
Yes, you're right. This's for view <%=Html.Action("Detail", "Customer", new { id = 1 }) %> –  Anton Mar 27 '12 at 11:38

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