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I have a an object view with data and a button on that view. The user can review the object info and click the button to go to a new view form whee he can enter info to create an item. My challenge is this, how would I attach the ID of the object on the previous view to associate it with and attach to the information they create and submit?

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can you show some code ? it will be helpful to solve the problem –  Ravi Gadag Jul 2 '12 at 4:27
    
I'm sending from my iPad right now so notat the moment. Do u know of a good solution to fit this conceptually? –  J0NNY ZER0 Jul 2 '12 at 4:31

2 Answers 2

up vote 1 down vote accepted
@Html.ActionLink("Add","AddNotes","Object",new {@id=5},null)

This will create an a tag with querystring ?id=5. (You may replace the hardcoded 5 with the dynamic value in your view)

Have a property to keep this value for your ViewModel/Model for the create form.

public class CreateNoteViewModel
{
  public int ParentId { set;get;}
  public string Note { set;get;}
  //Other properties also
}

Read this in your GET action method which creates the second view and set the value of that property of the ViewModel/Model.

public ActionResult AddNotes(int id)
{
  var model=new CreateNoteViewModel();
  model.ParentId=id;
  return View(model);
}

And in your strongly typed view, Keep this value inside a hidden variable.

@model CreateNoteViewModel
@using(Html.BeginForm())
{
 @Html.TextBoxFor(Model.Note)
 @Html.HiddenFor(Model.ParentId)
 <input type="submit" />
}

Now in your HttpPost action , you can get the Object Id from your POSTED model's ParentId property

[HttpPost]
public ActionResult AddNotes(CreateNoteViewModel model)
{
 if(ModelState.IsValid()
 {
   //check for model.ParentId here
   // Save and redirect
 }
 return View(model); 
}
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I am working on this solution right now. I will thank you by marking as answer if I succeed. Thanks for the code. ( : –  J0NNY ZER0 Jul 2 '12 at 18:57
    
does it matter whether it's set;get; or get;set;. I have get;set; –  J0NNY ZER0 Jul 2 '12 at 19:42
    
@HelloJonnyOh: that order does not matter. –  Shyju Jul 2 '12 at 19:55
    
It worked like a charm. ( : Thanks so much! –  J0NNY ZER0 Jul 2 '12 at 20:06
1  
Use ViewModels wherever possible over ViewData and Session. This keeps your code strongly typed and clean. ViewData is dynamic and using that so much produces unmanagable ugly code. –  Shyju Jul 2 '12 at 20:12

You could use hidden input & viewdata, PSEUDOCODE. NOTE you may have to use strings with view data and convert back to your id in your controller. See this link for a basic explanation of ViewData/ViewBag (and cons).

You'll need to pass the data to the view from the first action (Controller) The Controller base class has a "ViewData" dictionary property that can be used to populate data that you want to pass to a View. You add objects into the ViewData dictionary using a key/value pattern.

controller

 public ActionResult yourfirstaction()
      {
            //assign and pass the key/value to the view using viewdata
            ViewData["somethingid"] = ActualPropertyId;

in view - get the value use it with the hidden input to pass back to next controller to render next view

 <input type="hidden" name="somethingid" value='@ViewData["somethingid"]' id="somethingid" />

controller

  public ActionResult yournextaction(string somethingid)
      {
            //use the id
            int ActualPropertyId =  Convert.ToInt32(somethingid);
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Where would I place the hidden input? I assume the page where the user is coming from... –  J0NNY ZER0 Jul 2 '12 at 17:39
    
Yes sir, in your view, right under your button. –  user1166147 Jul 2 '12 at 18:05
    
where should the ACTUAL name of my property that I want to pass go? Can you edit your pseudocode and replace with "ActualPropertyId"? –  J0NNY ZER0 Jul 2 '12 at 18:12

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