7

How to get the textbox value from view to controller in mvc4?If I using httppost method in controller the page cannot found error was came.

View

@model MVC_2.Models.FormModel

@{
    ViewBag.Title = "DisplayForm";
}

@using (Html.BeginForm("DisplayForm", "FormController", FormMethod.Post))
{
    <form>
        <div>
            @Html.LabelFor(model => model.Empname)
            @Html.TextBoxFor(model => model.Empname)
           @* @Html.Hidden("Emplname", Model.Empname)*@

            @Html.LabelFor(model => model.EmpId)
            @Html.TextBoxFor(model => model.EmpId)
           @* @Html.Hidden("Emplid", Model.EmpId)*@

            @Html.LabelFor(model => model.EmpDepartment)
            @Html.TextBoxFor(model => model.EmpDepartment)
           @* @Html.Hidden("Empldepart", Model.EmpDepartment)*@

            <input type="button" id="submitId" value="submit" />

        </div>
    </form>
}

model

   public class FormModel
    {
        public string _EmpName;
        public string _EmpId;
        public string _EmpDepartment;

        public string Empname
        {
            get {return _EmpName; }
            set { _EmpName = value; }
        }

        public string EmpId
        {
            get { return _EmpId;}
            set {_EmpId =value;}
        }

        public string EmpDepartment
        {
            get { return _EmpDepartment; }
            set { _EmpDepartment = value; }
        }
    }

controller

        public ActionResult DisplayForm()
        {
            FormModel frmmdl = new FormModel();
            frmmdl.Empname=**How to get the textbox value here from view on submitbutton click???**
        }
3

10 Answers 10

13

First you need to change your button type to "submit". so your form values will be submitted to your Action method.

from:

<input type="button" id="submitId" value="submit" />

to:

<input type="submit" id="submitId" value="submit" />

Second you need to add your model as parameter in your Action method.

[HttpPost]
public ActionResult DisplayForm(FormModel model)
    {
       var strname=model.Empname;
             return View();
    }

Third, If your Controller name is "FormController". you need to change the parameter of your Html.Beginform in your view to this:

@using (Html.BeginForm("DisplayForm", "Form", FormMethod.Post))

    {
    //your fields
    }

P.S. If your view is the same name as your Action method which is "DisplayForm" you don't need to add any parameter in the Html.BeginForm. just to make it simple. like so:

@using (Html.BeginForm())
{
//your fields
}
3

Have an ActionResult for the form post:

[HttpPost]
public ActionResult DisplayForm(FormModel formModel)
{
    //do stuff with the formModel
    frmmdl.Empname = formModel.Empname;
}

Look into Model Binding. Default model binding will take the data embedded in your posted form values and create an object from them.

2

Let's implement simple ASP.NET MVC subscription form with email textbox.

Model

The data from the form is mapped to this model

public class SubscribeModel
{
    [Required]
    public string Email { get; set; }
}

View

View name should match controller method name.

@model App.Models.SubscribeModel

@using (Html.BeginForm("Subscribe", "Home", FormMethod.Post))
{
    @Html.TextBoxFor(model => model.Email)
    @Html.ValidationMessageFor(model => model.Email)
    <button type="submit">Subscribe</button>
}

Controller

Controller is responsible for request processing and returning proper response view.

public class HomeController : Controller
{
    public ActionResult Index()
    {
        return View();
    }

    [HttpPost]
    public ActionResult Subscribe(SubscribeModel model)
    {
        if (ModelState.IsValid)
        {
            //TODO: SubscribeUser(model.Email);
        }

        return View("Index", model);
    }
}

Here is my project structure. Please notice, "Home" views folder matches HomeController name.

ASP.NET MVC structure

1

You model will be posted as a object on the action and you can get it in action on post like this:

[HttpPost]
public ActionResult DisplayForm(FormModel model)
        {
            // do whatever needed
          string emp = model.EmpName; 
        }

it you are posting data always put HttpPost attribute on the action.

Your view also has mistakes, make it like this:

@using (Html.BeginForm("DisplayForm", "Form", FormMethod.Post))
{
        <div>
            @Html.LabelFor(model => model.Empname)
            @Html.TextBoxFor(model => model.Empname)
           @* @Html.Hidden("Emplname", Model.Empname)*@

            @Html.LabelFor(model => model.EmpId)
            @Html.TextBoxFor(model => model.EmpId)
           @* @Html.Hidden("Emplid", Model.EmpId)*@

            @Html.LabelFor(model => model.EmpDepartment)
            @Html.TextBoxFor(model => model.EmpDepartment)
           @* @Html.Hidden("Empldepart", Model.EmpDepartment)*@

            <input type="button" id="submitId" value="submit" />

        </div>

}
0

There are two ways you can do this.

The first uses TryUpdateModel:

    public ActionResult DisplayForm()
    {
        FormModel frmmdl = new FormModel();
        TryUpdateModel (frmmdl);

        // Your model should now be populated
    }

The other, simpler, version is simply to have the model as a parameter on the [HttpPost] version of the action:

    [HttpPost]
    public ActionResult DisplayForm(FormModel frmmdl)
    {
        // Your model should now be populated
    }
0

Change your controller like below.

[HttpPost]
public ActionResult DisplayForm(FormModel model)
{
   var Empname = model.Empname;
}
0

You need to have both Get and Post Methods:

[HttpGet]
public ActionResult DisplayForm()
    {
       FormModel model=new FormModel();
             return View(model);
    }
[HttpPost]
public ActionResult DisplayForm(FormModel model)
    {
       var employeeName=model.Empname;
             return View();
    }
0
[HttpPost]
public ActionResult DisplayForm(FormModel model)
{
    var value1 = model.EmpName;
}
0

Model values from hidden field? I recommend the strongly typed approach shown below:

public ActionResult DisplayForm(string Emplname, string Emplid, string Empldepart)
0
[HttpPost]
 public ActionResult DisplayForm(FormModel model)
 {
     FormModel frmmdl = new FormModel();
     frmmdl.Empname=**How to get the textbox value here from view on submitbutton //click???**
 }

model.Empname will have the value

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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