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How do I put a dataset into a viewbag and display the result in a view?

I have a dataset from a model that I write to a viewbag. I want to use a foreach loop to get the datarows out of the viewbag in the view.

I already have a variable going into the view, so I cant pass the dataset normally. I will also have many other datasets per page. so I thought viewbag was the best way to approach this issue.

model

class modeldata 
{
    public dataset readrows(DataSet dataset)
    {
    //returns data from sql query.
    }
}

controller:

 DataSet data = new DataSet();
 modeldata getdata = new modeldata ();
 ViewBag.Data = getdata.readrows(data);
 return view("page1") //based on case statement. 
 //Already have a value going into view, so I need to use viewbag

View:

@Model site.controllers.homecontroller;

     foreach (Model.data row in ViewBag.Data.Rows)
        {
            @:row["id"] + " " + row["name"];
        } 
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1  
Why are you using DataSets in an MVC app? Things work a lot better if you deal with data models and an ORM. –  Erik Funkenbusch Mar 22 '12 at 15:16
    
legacy code with 100's of SQL statements. Don't have time to convert for this project. –  tdjfdjdj Mar 22 '12 at 15:21
1  
So, what is the actual question? –  Henk Holterman Mar 22 '12 at 15:21
    
The question is: How do I put a dataset into a viewbag and display the rows in the view. I have a foreach example above. –  tdjfdjdj Mar 22 '12 at 15:23
2  
Is the foreach example working? If not, what is not working? Looks like the code you've provided should work, assuming the type Model.data is the same as an item in ViewBag.Data.Rows. I think that might need to be DataRow, but it's been a while since I messed with DataSets. –  Mike McCaughan Mar 22 '12 at 15:34

2 Answers 2

up vote 6 down vote accepted

To display data in the view, you have two options. One is to pass an instance of a Model class to a strongly-typed view. The second option is to use ViewBag. In your case, it looks like you are doing a little bit of both, but I would recommend using the strongly-typed view approach.

The View will have a Model property that represents an instance of the class type specified by your @Model declaration. In your code, you are using the controller class which is not going to work. I rewrote the example to use a DataSet as the model. As you can see, the Model property of the View becomes an instance of the System.Data.DataSet class and has all of its properties and methods.

View

@Model System.Data.DataSet;

foreach (DataRow row in Model.Rows)
{
    @:row["id"] + " " + row["name"];
} 

Controller

DataSet data = new DataSet();
modeldata getdata = new modeldata();
return View(getdata.readrows(data));

Edit:

Here is an example that uses a Dictionary in the model class to store multiple DataSets. You can then modify the View to use the modeldata type as its Model class.

Model

namespace Site.Models
{
    class modeldata
    {
        public Dictionary<string, DataSet> DataSets { get; set; }

        public static DataSet ReadRows(DataSet dataset)
        {
            //returns data from sql query.
        }
    }
}

View

@Model Site.Models.modeldata;

@foreach (System.Data.DataTable table in Model.DataSets["sampleData"].Tables)
{
    foreach (System.Data.DataRow row in table.Rows)
    {
        @:row["id"] + " " + row["name"];
    }
} 

Controller

DataSet data = new DataSet();
modeldata getdata = new modeldata();
getdata.DataSets["sampleData"] = modeldata.ReadRows(data);
return View(getdata);
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I have something else going into the view, and I plan to have multiple datasets per page so I cant return it. Is there another way to reach it from the view? –  tdjfdjdj Mar 22 '12 at 15:12
3  
@user719825: Just create a ViewModel class that has both the "something else" you want to send to the view and the dataset. That way a single object can fulfill both needs. –  StriplingWarrior Mar 22 '12 at 15:24
    
Hmmm that is really an interesting approach. Could you provide me an example? –  tdjfdjdj Mar 22 '12 at 15:26
    
I edited my answer to show this. you can create properties in the modeldata class to store the other data you need. –  Michael Hornfeck Mar 22 '12 at 15:29
    
Sorry for the delay. I am still working on this. I think the only problem I have with this example is .Rows still doesn't exist in the foreachloop because "DataSets" is a property. Is there something I am missing? –  tdjfdjdj Mar 26 '12 at 18:06

You would need to create a model class to contain each dataset as a property, e.g:

public class MyModel 
{
    DataSet data1,
    DataSet data2,
    DataSet data3
}

Then return a strongly typed view bound to the type 'MyModel' which in the view would then allow you to do:

var myDataInTheView = model.data1;

You can then use the foreach approach as others have described, but on the properties of the model, rather than the model class itself. In the snippet above, loop over myDataInTheView

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