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I'm using a Html.BeginForm but I need a hyperlink to trigger a postback to a ActionResult (similar functionality to a LinkButton). I don't think that I can use an ActionLink because i'm not routing to a view with the same name as the ActionResult (or have I misunderstood :S).

Any help would be appreciated.

Thanks

share|improve this question
    
You mean that you want to change the target for your form based on which button they click? Or will the form always post to the other target? – GalacticCowboy Jun 1 '11 at 20:21
    
Your link doesn't route to a view, your controllers do that. You point your ActionLink at /{controller}/MyAction and the controller does the work of deciding which view to render. Can you be more specific about the routes and controller names you're using? – David Jun 1 '11 at 20:42
    
Basically I just need a hyperlink to behave the same as a submit button. So...when the hyperlink is clicked, the form will post to an actionresult passing in a number of parameters. The actionresult will then return a return a partial view. Hope this makes sense. – BigBadDom Jun 1 '11 at 20:43
    
Ok, so I created this: @Html.ActionLink("Submit", "PostExample", null, new { id = "exampleCssId" }). But i wanted to link it to an ActionResult in my Home controller and the ActionResult method to route to a different partial view. At the moment, i'm getting a 404 error, because it cannot find a view called 'PostExample'. – BigBadDom Jun 1 '11 at 20:57
    
If you're posting to an action in another controller, you'll need to use a different overload of Html.ActionLink, namely ActionLink(string linkText, string actionName, string controllerName, object routeArguments, object htmlAttributes) (I think they're in that order) – David Jun 1 '11 at 23:14
up vote 0 down vote accepted

I think you have two options (though the first isn't as flexible and can get messy)

1) style your submit button like a hyperlink (easy, but you'll probably end up using Html.BeginAjax or something like that)

2) Style a div, ActionLink, or some other element and serialize the form data on posting back using jQuery

If you can better describe the data being returned, we can better customize the dataType and success parameters below.

$(function () {
    $('#myButton').click(function (e) {
        e.preventDefault();
        $.ajax({
            url: '/MyController/MySuperAction',
            type: 'POST',
            data: $('#formId').serialize(),
            dataType: 'json',
            success: function (xhr_data) {
                // in this particular example, you'll
                // parse your JSON returned.
            }
        });
    });
});

Edit

So, you're controller could look like

public ActionResult MySuperAction(FormCollection form) {
    // I don't recommend using FormCollection
    // You should stick to the view model pattern

    // process your form
    return Json(new { MyValue = "Textbox value" });
}

And you'd need to modify the success function above to something like

success: function(xhr_data) {
    $('#MyTextBoxID').val(xhr_data.MyValue);
}
share|improve this answer
    
Thanks for the example. The only data that would have to be returned is simply a textbox value. – BigBadDom Jun 1 '11 at 21:14
    
That works perfectly....brilliant. Thank you. – BigBadDom Jun 2 '11 at 8:06
    
Isn't there a shorter and cleaner way perhaps Ajax.ActionLink or some other thingy? – Shimmy Nov 23 '12 at 2:25

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