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I am trying to use a partial view to represent rows of a table in my project. I currently have

 <table> 
    <thead>
        <tr>
            <th >
                Column 1
            </th>
            <th >
                 Column 2
            </th>
            <th >
                 Column 3
            </th>
        </tr>
    </thead>
    <tbody>
         @foreach(var item in Model.Items)
         {
         @Html.Action("ItemCalculatedView", new { Id = item.Id}) 
         }
     </tbody>
     </table>

In my partial view I have this

@using (Ajax.BeginForm("SaveStuff", "Whatever",
    new { id = @Model.Id }, new AjaxOptions()
    {
        HttpMethod = "Post",
        OnSuccess = "Success"
    }))
   {
   @Html.HiddenFor(m => m.Id)
    <tr>
       <td>
          @Html.Label("Col1", Model.Col1)
       </td>
       <td>
          @Html.TextBox("Number", Model.Number)
       </td>
       <td>
          <input type="submit" id='submit-@Model.Id'/>
       </td>
     </tr>           
     }

How can I make this work?

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2 Answers 2

up vote 2 down vote accepted

You can put a form inside a table cell, but you can't have the form inside a tbody element, or spanning multiple columns. So there are three options:

  1. Use a CSS layout instead of a table, or use divs with CSS display set to "table". (for example)
  2. Put the entire form (TextBox and Submit) inside a td
  3. Put another table inside the td element

I'd recommend #1 -- use a CSS layout to construct the table, since it's difficult to style table tags:

Main

<div class="table"> 
    <div class="header-row">
        <div class="header-cell">Column 1</th>
        <div class="header-cell">Column 2</th>
        <div class="header-cell">Column 3</th>
    </div>

     @foreach(var item in Model.Items)
     {
         @Html.Action("ItemCalculatedView", new { Id = item.Id}) 
     }
</div>

Partial

@using (Ajax.BeginForm(
  actionName: "SaveStuff", 
  controllerName: "Whatever",
  routeValues: new { id = @Model.Id }, 
  ajaxOptions: new AjaxOptions
  {
      HttpMethod = "Post",
      OnSuccess = "Success"
  },
  htmlAttributes: new { @class = "row" }
 ))
 {
   <div class="cell">
       @Html.HiddenFor(m => m.Id)
   </div>
   <div class="cell">
      @Html.Label("Col1", Model.Col1)
   </div>
   <div class="cell">
      @Html.TextBox("Number", Model.Number)
   </div>
   <div class="cell">
      <input type="submit" id='submit-@Model.Id'/>
   </div>
 }

CSS

.table { display: table; }
.header-row, row { display: table-row; }
.header-cell, cell { display: table-cell; }
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1  
Awesome, my design skills just went up :) –  GatesReign Dec 11 '12 at 19:58
    
@GatesReign caveat on using display: table: IE7 and earlier doesn't support it: caniuse.com/css-table –  McGarnagle Dec 11 '12 at 20:28
    
My form (Ajax.BeginForm) seems to breaks the table layout. The table does work when their is no form element in the layout, but tries to force table rows in the first column of the table header. eg<table> <form><tr><td> content </td></tr></form> </table> –  GatesReign Dec 11 '12 at 20:53
1  
@GatesReign it's possible to get the layout right -- maybe set the form itself to have "class=row". See updated Fiddle: jsfiddle.net/yZMxE/1 –  McGarnagle Dec 11 '12 at 21:04
    
perfect, thanks for the help bro –  GatesReign Dec 12 '12 at 16:46

You have several issues here. First, as dbaseman mentions, you can't place forms within the structure of a table and have it be legal HTML. It may work, or it might not, and even if it does work, you can't guarantee it will continue to work.

I would instead wrap your table in the form, and then on the post figure out which button was pressed based on its value and/or index.

I would strongly advise against using css tables for tabular data. It's just not semantically correct.

Another possible solution is, instead of using the Ajax.BeginForm, instead use jQuery $.ajax and then you can select a row of data in javascript to post to the server.

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