Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I have a page that highly depends on a IList (in ActionResult "MyEvents") that I pass in ViewData. Something like that: ViewData["events"] = listOfEvents; and in the end, I just return View();

And in my View, I take this ViewData["events"] and do a foreach in it so I can iterate through its contents.

But, this ViewData must be dynamically filled. So, when I click on a day (I'm using jQuery DatePicker), this day is sent as an argument to "MyEvents" and this day will be very important to my listOfEvents that will fill my ViewData["events"].

But, the result I'm getting is that the div that contains my foreach creates another whole page inside it!! I've tried to do $("#myDiv").html(contentFromMyEvents) and this was what happened.

Just for testing, I've tried also to do $("#myDiv").text(contentFromMyEvents) and the whole html code with all its tags and everyting else from my page appeared inside the div! It was a page inside a page!!

So, I think that is happening because I'm returning "return View();" and of course it will render my whole View again.

So, how can I pass just the ViewData["events"] and update it on my page??

Thanks!!

share|improve this question
up vote 3 down vote accepted

Look to the load function in jQuery(http://docs.jquery.com/Ajax/load). Call your controller with load and then inject the result into your html document.

$("myDiv").load("/Controller/Action");

Your ViewData will be parsed on the server side. Instead of returning View(), return a PartialView() pointing to a user control. What comes out the is just a HTML fragment.

share|improve this answer
    
This way will work but I personally think it is a bad practice to send html over the pipe. – Kelly Feb 12 '09 at 4:58
    
Agreed. I think there might be some circumstances where my example is acceptable though. I just provided it for the sake of completeness. – Josh Bush Feb 12 '09 at 5:02
    
Thinking about this a little more, I used this technique recently when I needed to inline an existing entry form into another form. The form layout was already in another view, and I just needed a modal with that same GUI for a "quick add" feature. – Josh Bush Feb 12 '09 at 5:06
    
Thanks Josh! I just modified a little bit what you've told me, but I used much of your tip!! Thanks you too Kelly! – AndreMiranda Feb 12 '09 at 14:52

You could use partial rendering or you could have jquery select the element from the return value.

$("#myDiv").empty().append($(contentFromMyEvents).find('#myDiv'));

Also, keep in mind that if you have any datepickers or links that require events inside of here you may have to rebind them.

share|improve this answer

You should look into passing data back and forth as JSON.

Then using jQuery/Javascript to manipulate and format the data as you see fit.

Remember that once the page is on the client the client's browser has no idea what ViewData is.

Edit: Action Code:

public ActionResult AjaxGetEvents(int id)
{
    IList<object> events = new List<object>();
    foreach( Event event in SomeMethodToGetEvents(id) )
    {
       events.Add( new { Property1 = event.Property1, Property2 = event.Property2 } );
    }
    return JSON(events);
}

Client Side Code:

var url = "some url that returns JSON";
jQuery.getJSON( url, function(data){
    jQuery.each( data ){
        jQuery("#someDiv").append( data.Property1 + " " + data.Property2 "<br/>" );
    });
 });
share|improve this answer
    
Kelly, I'm doing this when I ckick on a day: $.ajax({ url: 'Admin/Schedule/MyEvents/?data=' + date, type: 'GET', success: function(content) { $("#myDiv").html(content) )}; It's something like that. The problem is that "return View();" (in my ActionResult) is (continues...) – AndreMiranda Feb 12 '09 at 1:35
    
(continuing...) is returning my whole page to that "success" $.ajax option. I think I've got to return any other kind of data in my ActionResult... I don't know, maybe "return JSON (ViewData["events"]);" ??? – AndreMiranda Feb 12 '09 at 1:38
    
In my page I'm doing this: foreach (UserEvents event in (IEnumerable)ViewData["events"]) { //do all iteration here }... So, how can I get a JSON and treat this ViewData??? – AndreMiranda Feb 12 '09 at 1:40

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.