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I have a PaartialView declared like this:

@model IEnumerable<mvc1.Models.ProjectDetailModel>
@using (Html.BeginForm())         
<form method="get" action="EditProject" enctype="multipart/form-data">
<br />
<fieldset>
    <legend>Project Detail</legend>   
@foreach (var item in Model)
{
    <tr>
        <th class="thdetail">
            Project Code
        </th>
        <td class="tddetail">
            @Html.DisplayFor(modelItem => item.projectCode)
        </td>
        <tr>
        <th class="thdetail">
                Project Name
        </th>
        <td class="tddetail">
            @Html.DisplayFor(modelItem => item.projectName)
        </td>

        </tr>
        <tr>
            <th class="thdetail">
                Project Type
            </th>
            <td class="tddetail">
                @Html.DisplayFor(modelItem => item.projectType)
            </td>
        </tr>
        <tr>
            <th class="thdetail">
                Detailed Description
            </th>
            <td class="tddetail">
            <div style="height: 100px; width:700px; overflow: scroll">
                @Html.DisplayFor(modelItem => item.projectDescription)
            </div>
            </td>
        </tr>
    </table>
</fieldset>    
<input type="submit" value="Edit" /> 
</form>
}

On the submit button, i am calling a controller, but when it goes to the controller the model is not being passed back to the controller. How can i get the model back to the controller, or even just 1 field, ie. Model.projectCode which is the primary key

In the controller i have the fll which takes in the model and gets the primary key and calls a stored procedure to return results to another VIEW()

    [HttpGet]
    public ActionResult EditProject(ProjectDetailModel model)
    {
        DBController dbcontroller = new DBController();

        string l_user_name = SessionBag.Current.UserName;
        Int64 l_project_code = model.projectCode;

        if (dbcontroller.DBConnection())
        {
            MySqlCommand command = new MySqlCommand("edit_projects",   dbcontroller.conn);
            command.CommandType = System.Data.CommandType.StoredProcedure;

            // Input parameters for the insert_projects STORED PROC
            command.Parameters.Add(new MySqlParameter("userName",  SessionBag.Current.UserName));
            command.Parameters["@userName"].Direction =   System.Data.ParameterDirection.Input;
            // Output parameters for the view_sr_projects_detail STORED PROC               
            command.Parameters.Add(new MySqlParameter("projectName", MySqlDbType.LongText));
            command.Parameters["@projectName"].Direction = System.Data.ParameterDirection.Output;

            command.Parameters.Add(new MySqlParameter("projectType", MySqlDbType.LongText));
            command.Parameters["@projectType"].Direction = System.Data.ParameterDirection.Output;

            command.Parameters.Add(new MySqlParameter("projectDescription", MySqlDbType.LongText));
            command.Parameters["@projectDescription"].Direction = System.Data.ParameterDirection.Output;
           try
            {
                MySqlDataReader rdr = command.ExecuteReader();

                var model1 = new ProjectDetailModel();

                while (rdr.Read())
                {
                    model1.projectCode = (Int64)(rdr["projectCode"]);
                    model1.projectName = rdr["projectName"].ToString();
                    model1.projectType = rdr["projectType"].ToString();
                    model1.projectDescription = rdr["projectDescription"].ToString();
                }

                dbcontroller.conn.Close();

                return View(model1);
            }
            catch (MySql.Data.MySqlClient.MySqlException ex)
            {
                dbcontroller.conn.Close();

                ViewBag.Message = "Could not view your detail project. Error " + ex.Number + " has ocurred. Please try again or contact the system administrator.";
                return View("Error");
            }
        }
        else
        {
            ViewBag.Message = "Could not connect to the database. Please try again or contact the system administrator";
            return View("Error");
        }
    }        

My model looks like this:

public class ProjectDetailModel
{
    [Display(Name = "Project Code")]
    public Int64 projectCode { get; set; }

    [Display(Name = "User Name")]
    public string srUserName { get; set; }

    [Display(Name = "Project Name")]
    public string projectName { get; set; }

    [Display(Name = "Project Type")]
    public string projectType { get; set; }

    [Display(Name = "Project Requirement")]
    public string projectDescription { get; set; }
}

public class ProjectDetailModelList : List<ProjectDetailModel>
{
}

thanks Naren

share|improve this question
1  
Can you show the code of your controller please? –  Wouter de Kort Mar 20 '12 at 11:57
    
public ActionResult EditProject(ProjectDetailModel model) { DBController dbcontroller = new DBController(); string l_user_name = SessionBag.Current.UserName; Int64 l_project_code = model.projectCode; if (dbcontroller.DBConnection()) { MySqlCommand command = newMySqlCommand "edit_projects", dbcontroller.conn); –  Naren Gokal Mar 20 '12 at 11:59
2  
Put this code in your question so that it is more easy to read. Also show some more code in your view. –  Brendan Vogt Mar 20 '12 at 12:01
1  
The structure of the view model is also relevant to the question. –  32bitkid Mar 20 '12 at 12:03
    
I copied your code from the comment to the question, but your controller code in the comment is incomplete as pasted. –  Robaticus Mar 20 '12 at 12:06

2 Answers 2

up vote 1 down vote accepted

Here this is what you can do. Below is just partial code, modify it to fit in with your example:

Code in your view:

<button id="btnEdit" type="button">Edit</button>

I then use jQuery to add a click listener to the button (make sure that jQuery is added to the view):

<script>

     $(document).ready(function () {

          $('#btnEdit').click(function () {
               window.location = '@Url.RouteUrl(new { action = "EditProject", projectCode = Model.projectCode })';
          });

     });

</script>

Your action method:

public ActionResult EditProject(int projectCode)
{
     // Retrieve this specific project using this code
     // Do what needs to be done to populate the required input fields on view
}

This is the best way that I have found to do it.

share|improve this answer
    
Hi, Thanks for the feedback. I have tried it, but having problems with the JQuery part: projectCode = Model.projectCode })'; What i have also done, to try and get around this, i have added the fll: @{ Int64 l_pCode = item.projectCode; }, thinking i can place it into a variable and then access this variable in the Jquery using: projectCode = l_pCode .. but that doesnt work. How can i fo this ? thanks naren –  Naren Gokal Mar 20 '12 at 22:13
    
Hi, Its working :-) .. I have just added this inside the foreach loop, in the above code and used it like this: '@Url.RouteUrl(new { action = "EditProject", projectCode = item.projectCode })'; Thanks alot, naren –  Naren Gokal Mar 20 '12 at 22:19
    
Hi Brendan, I seem to be having format issues when coming out from the PartialView(). Does the above solution, change any formatting? Reason being, the PartialView sends a field to the controller which then calls a VIEW(). The VIEW() now doesnt really take on the attributes anymore from my style sheet. Well it does but it come out different to the other Views(). Any ideas on this ? thanks –  Naren Gokal Mar 22 '12 at 12:54
    
Not sure why. This is another question as your main question was answered and accepted. –  Brendan Vogt Mar 22 '12 at 13:47

When MVC calls your controller.EditProject(ProjectDetailModel) action the binding system tries to create a ProjectDetailModel object from the data posted to the page (or in the query string or route data, etc.). In order for it to create and populate a ProjectDetailModel for you, you must have the following:

  1. A parameterless constructor on ProjectDetailModel
  2. A publically-settable property with a matching value in the form data

So if ProjectDetailModel looks like this:

public class ProjectDetailModel
{
    public ProjectDetailModel()
    {
    }

    public int ProjectId
    {
        get;
        set;
    }
}

...you can have it populated by MVC by posting this form:

<form method="get" action="EditProject" enctype="multipart/form-data">
    <input type="hidden" id="ProjectId" name="ProjectId" value="123" />
</form>

Edit

Looking at the extra code you've added to the question, you have a few things to sort out:

  1. @using (this.Html.BeginForm()) will render an open form tag - as you've manually written one you don't need that line.

  2. Using this.Html.DisplayFor() will just write the property value to the screen; if you want it to be populated into a parameter in your action, you need to provide the values to the binding system. You can do this by using EditorFor() instead of DisplayFor(), which will cause them to be included in the request as it is sent to the action.

share|improve this answer
    
My model looks like : public class ProjectDetailModel { [Display(Name = "Project Code")] public Int64 projectCode { get; set; } [Display(Name = "User Name")] public string srUserName { get; set; } [Display(Name = "Project Name")] public string projectName { get; set; } [Display(Name = "Project Type")] public string projectType { get; set; } [Display(Name = "Project Requirement")] public string projectDescription { get; set; } public class ProjectDetailModelList : List<ProjectDetailModel> {} –  Naren Gokal Mar 20 '12 at 12:17
    
Please don't paste code, it's difficult to read, put all code in your question. Are you able to read this code? –  Brendan Vogt Mar 20 '12 at 12:28
    
Sorry, i have added it now . thanks –  Naren Gokal Mar 20 '12 at 12:41

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