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On my layout I include a lightbox login form (displays when user clicks a login link):

<div id="logincontent" style="display: none;">
    @{Html.RenderAction("LightBoxLogin", "LightBoxLogin");}
</div>

My javascript includes:

<script type="text/javascript" src="/Scripts/jquery-1.7.1.min.js"></script>
<script type="text/javascript" src="/Scripts/Common.js"></script> 
<script type="text/javascript" src="/Scripts/jquery.unobtrusive-ajax.min.js"></script>

On this lightbox I have an Ajax form:

@using (Ajax.BeginForm("LightBoxLogin", "LightBoxLogin", FormMethod.Post, new AjaxOptions() { UpdateTargetId="testid" , InsertionMode=InsertionMode.Replace }))

The div with the id "testid" is placed on my LighboxLoginLogin view, so that it contains the ajax form. I have also tried placing it inside the form.

What I want: When user submits a wrong user or password I want the form to be displayed again but with error texts.

What happens Nothing. I can see using Firebug that view with updated texts is retrieved without errors. But "testid" div is not being replaced.

If I move the "testid" div to my layout then view is displayed although obviously this does not look so good :)

So can a view not update itself using ajax form or am I doing something wrong?

EDIT The method called just returns the same view:

[HttpPost]
public ActionResult LightBoxLogin(LightBoxLoginModel model)
{
    model.LoginError = true;
    return View("~/Views/LightBoxLogin.cshtml", model); 
}
share|improve this question
1  
You don't need to specify the location of your view, you can just reference it by name, i.e. return View("LightBoxLogin", model); – forseta Jun 22 '13 at 8:13
1  
Yes, you are right about that. Anyway I solved my problem. Typical. I spent most of yesterday on this problem and then I solve it 30 mins after asking. I had a div with display none where I kept my lightbox html. But this would never get displayed from there. When showing my lightbox I would copy the html and show it in another div on the layout. So now I just placed my "testid" on that other div. Placing the "testid" on the form itself is also a misunderstanding of how ajax forms work. The form is displayed SOMEWHERE ELSE, so it cannot really replace itself. – BarrySlisk Jun 22 '13 at 8:34
1  
@BarrySlisk add an answer an mark it as accepted – Scott Selby Jun 22 '13 at 12:12

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