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I have a simple Wall.cshtml view that loads a _Search.cshtml Partial View that looks like this:

<h2>The Wall</h2>
@{Html.RenderPartial("~/Views/Search/_Search.cshtml");}

The _Search.cshtml Partial View (updated based on @Darin reply) looks like this:

@using (Html.BeginForm("Searching", "Search", FormMethod.Post, new { id = "searchForm" }))    
{  
    <div id="search">
        <div id="searchbtn">
           <input id="Search" type="button" value="Search" />
        </div>
        <div id="searchtxt">
           @Html.TextBox("txtSearch")
        </div>
  </div>
}

The Controller looks like this:

public class SearchController : Controller
{
    public ActionResult Wall()
    {
        return View();
    }

    [HttpPost]
    public ActionResult Searching()
    {
        // do something with the search value
        return View();
    }
}

When I run the app, the resulting block of HTML produced looks like this:

<form action="/Search/Searching" id="searchForm" method="post">  
   <div id="search">
      <div id="searchbtn">
          <input id="Search" type="button" value="Search" />
      </div>
      <div id="searchtxt">
          <input id="txtSearch" name="txtSearch" type="text" value="" />
      </div>
   </div>
</form>

QUESTION 1: Why would the button click never hit the Searching Controller method?
(let me restate that _Search.cshtml is a Partial view that runs inside a view named Wall.cshtml).

QUESTION 2: How would I get the value inside the "txtSearch" textbox?

QUESTION 3: Since this is a Partial View, how do I make the view that holds the current Search Partial View ..to refresh and update itself with the result of the Search query ?

Thanks in advanced.

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3 Answers 3

up vote 13 down vote accepted

It would be better to use a form and making the search button submit:

@using (Html.BeginForm("Search", "Home", FormMethod.Post, new { id = "searchForm" }))    
{
    <div id="search">
        <div id="searchbtn">
            <input id="Search" type="submit" value="Search" />
        </div>
        <div id="searchtxt">
            @Html.TextBox("txtSearch")
        </div>
    </div>
}

As far as your second question is concerned, you could AJAXify this search form:

$(function() {
    $('#searchForm').submit(function() {
        $.ajax({
            url: this.action,
            type: this.method,
            success: function(result) {
                $('#resultContainer').html(result);
            }
        });
        return false;
    });
});

where resultContainer could be some div that will harbor the search results returned from the controller action.

share|improve this answer
    
Solution1 was something i did before but as stated on the updated original reply, the button click never reaches the Searching Controller method. –  SD Developer Apr 6 '11 at 16:51
    
@Filu, and what happens when you inspect the request in FireBug? What is the reason for not reaching the controller? –  Darin Dimitrov Apr 6 '11 at 18:14
    
I must admit, i never used Firebug. I just installed it. What shall i be looking for when I click on the button? –  SD Developer Apr 7 '11 at 8:05
    
@Filu, look at the console tab. It will show you AJAX requests, javascript errors, etc... –  Darin Dimitrov Apr 7 '11 at 8:52
    
...it's always like that. I woke up this night and thought, what "type" is the button? ...it's a "button" instead of "input". That was the problem :--) –  SD Developer Apr 7 '11 at 17:03

the problem was that the <input id="Search" type="button" value="Search" />
has a type = BUTTON

I changed the Type to be INPUT ...and that fixed the problem.

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type=submit should also work here –  jcolebrand Jul 25 '11 at 17:38

Don't forget to serialize the data to push also the Model to the Controller Action:

@model CBS.DataAccess.Entities.SupplierQuoteEntity     
@using (Html.BeginForm("Create", "SupplierQuote", FormMethod.Post, new { id = "SupplierQuoteCreateForm" }))
{ 
    <div>blablablabla fields...</div>

    <a class="t-button t-button-icontext" onclick="ajaxSubmit()"><span class="t-icon t-insert"></span>Create</a>  

    <script type="text/javascript">
        function ajaxSubmit() {
            var formData = $("#SupplierQuoteCreateForm").serializeArray();

            $.ajax({
                type: "POST",
                url: '@Url.Action("Create", "SupplierQuote")',
                data: formData,
                dataType: "json",
                success: function (data) {
                    alert(data);
                }
            });
        }        
    </script>    
}
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