Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I want to pass model from form to controler and show others models in the same view. How can I do this? My main problem is: how to send into testAcc actionresult, model CommentModel, and show text in ViewData["Success"] ?

Here is my code:

    @model XYZ.Models._ideaDetailsWrapper
    @using XYZ.Tools   
<article>
    <h2>@Model.idea.Tilte</h2>

<table><tr><td>
<p>
    Author: <b>@UserTools.getUser(Model.idea.AuthorID).UserName</b><br />
    Add date: @Model.idea.AddDate<br />
    Category: @IdeasTools.getCategoryName(Model.idea.CategoryID)<br />
</p></td>
</tr></table>

<p><b>Content:</b><br />
    @Model.idea.Content</p>

<br /><br />

// HERE - ADD comment

    @using (Html.BeginForm("testAcc", "Ideas", FormMethod.Post))
    { 
            <h4>Add comment:</h4>

            @Html.LabelFor(m => m.addComment.Content)
            @Html.EditorFor(m => m.addComment.Content)<br />
        <input type="submit" value="SendEmails" />
    }

@ViewData["Success"]

wrapper:

public class _ideaDetailsWrapper 
{
    public Ideas idea { get; set; }
    public IEnumerable<IdeasComment> commentList { get; set; }
    public CommentModel addComment { get; set; }
}

Action method:

    [HttpPost]
    [Authorize]
    public ActionResult testAcc(CommentModel model)
    {

        CommentModel abs = model;

        ViewData["Success"] = "Working!";

        // ADD TO DATABASE, but model is null..
        return RedirectToAction("Details", "Ideas");
    }
share|improve this question
    
RedirectToAction asks the browser to redirect the request elsewhere, so the browser requests the new URL, this is a separate request, so it won't know anything about your model or ViewData from the first request. –  Colin Mackay Apr 20 '13 at 23:21
    
but when I debug, variable CommentModel model in testAcc method is always null –  whoah Apr 20 '13 at 23:24
    
Where? Not in the testAcc method (unless there are bits missing you're not showing us) and if it is in the view then that's because, as I said, it is a separate request from the browser and has no information about the previous request. –  Colin Mackay Apr 20 '13 at 23:26
    
I tested it in this line CommentModel abs = model;. Without model (just passing one string from textbox) this methods works perfecly (testAcc). But for passing model - there are some troubles. I stop debuger before RedirectToAction.. –  whoah Apr 20 '13 at 23:30
    
Based on your code change: The model of your view and the model in the testAcc method do not match and it can't coerce one to the other (the properties have different names), so it doesn't know what to do and cannot match them up. If you look at the actual HTML produced you'll see that what ever is produced by EditorFor will be named something like "addCommant_Content", but the POST action is expecting something called "Content" –  Colin Mackay Apr 20 '13 at 23:31

1 Answer 1

up vote 3 down vote accepted

One way to do this is to use a Partial View.

Details.cshtml

@model XYZ.Models._ideaDetailsWrapper
...
// HERE - ADD Comment
<div id="comment-form">
@Html.Partial("_CommentForm", Model.addComment)
</div>

@Model.message
// add validation javascript to this view

_CommentForm.cshtml (Partial View)

@model XYX.Models.CommentModel
@{
    Layout = null;
}

@using (Html.BeginForm("testAcc", "Ideas", FormMethod.Post))
{ 
      @Html.ValidationSummary(true)
        <h4>Add comment:</h4>

        @Html.LabelFor(m => m.Content)
        @Html.EditorFor(m => m.Content)
        @Html.ValidationMessageFor(m => m.Content)<br />
    <input type="submit" value="SendEmails" />
}

The partial view is strongly typed and will submit the CommentModel

Action methods:

[HttpPost]
[Authorize]
public ActionResult testAcc(CommentModel model)
{
    string abs = model.Content;

    TempData["Message"] = "Working!";

    // ADD TO DATABASE
    return RedirectToAction("Details", "Ideas", new { id = model.Idea.Id });
}

[HttpGet]
[Autorize]
public ActionResult Details(int id)
{
    var ideaModel = dbStore.GetIdea(id);  // however you do this

    var model = new _ideaDetailsWrapper {
        idea = ideaModel,
        addComment = new CommentModel(),
        message = TempData["Message"]
        ...
    };
    return View(model);
}

Use TempData to pass the message through redirect. You'll check if TempData["Message"] exists in the Details action when you first load the page directly before you use it.

Edit: For Validation just add the validation javascript to the Details view and the ValidationSummary to the partial view.

Edit 2: This method breaks down with validation and error handling. For this to work it needs AJAX to replace the form div without reloading the entire page.

You need to intercept the normal form submission and handle it yourself using AJAX

$("form").on("submit", function(event) {
    event.preventDefault();
    $.ajax({
        url: "/Ideas/testAcc",
        type: "POST",
        data: $("form").serialize()
    })
    .done(function(partialViewHtml) {
        $("#comment-form").html(partialViewHtml);
    });
});

Your action becomes

[HttpPost]
public ActioNResult testAcc(CommentModel model)
{
    if (ModelState.IsValid)
    {
        ...
        return RedirectToAction("Details", "Ideas", new { id = model.Idea.Id });
    }
    return PartialView("_CommentForm", model);
}
share|improve this answer
    
thanks ! now it works. But how to validate fields in model when <input type="submit" value="SendEmails" /> is clicked? Messages from model, like this : [Required] etc? –  whoah Apr 20 '13 at 23:58
    
Add the validation scripts to the Details view –  Jasen Apr 20 '13 at 23:59
    
@Html.ValidationSummary() - this one, yep? Still doesn't work. On input click, page is reloading without validation.. –  whoah Apr 21 '13 at 0:02
    
Hmm, not sure as I've usually done it this way with AJAX. Try adding a HttpGet testAcc that return PartialView("_CommentModel", model). Then when you fail validation in HttpPost just return View(model). –  Jasen Apr 21 '13 at 0:12
    
In [HttpPost] when I put return View(model) I get error The view 'testAcc' or its master was not found or no view engine supports the searched locations. But when I put return View("_CommentForm",test); - it works and validation runs properly, but it show only this partialview, without rest Details elements. Do you know why and how to resolve it? Regards ! –  whoah Apr 21 '13 at 6:22

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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