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the database table has fields like this:


and i did this in the controller:

ViewBag.Columns = from col in _db.tbl_columns
      select col;
      return View();

In the view i did this:

<% foreach (tbl_columns col in (IEnumerable)ViewBag.Columns)
    { %>

      <%= col.fld_column1_item1 %>
      <%= col.fld_column2_item1 %>
      <%= col.fld_column3_item1 %>

    <% } %>

Now my qyestion is very simple: is it possible to add a variable that automates this "column1", "column2" etc? And how could I use it?

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Could you be more explicit about what these columns actually hold (e.g., what their names are?) That'd make it easier for us to help you. –  George Stocker Nov 11 '11 at 16:09
You really should be using a model rather than the viewbag for bringing collections to the view. –  Chris Nov 11 '11 at 16:09
@GeorgeStocker the column names are just like i have posted above, and they hold menu names. Chris im not very sure if i got you right. Could you please post a very short sample? :) –  Albo Best Nov 11 '11 at 16:12
You would have a view model, one of the properties would be Collection. So you would have return View(Model) and in the view you would access it Model.Collection. Then you can spin over it like this: forearch(var item in Model.Collection) –  Chris Nov 11 '11 at 16:18

2 Answers 2

up vote 1 down vote accepted

It seems like you could change your table schema and this would be very easy to do at that point.

New Table Schema:

Id  Column   Item   ParentId
1    1        null   null
2    1        1      1
3    1        2      1
3    1        3      1
4    2        null   null
5    2        1      4
6    2        2      4
6    2        3      4
7    3        null   null
8    3        1      7
9    3        2      7
9    3        3      7

Now, you can just iterate through each of them by the following (psuedo-ish code):

foreach (var rows in columns)
    foreach (var row in rows)
        <%= row.Item %>
share|improve this answer
the table schema for this project has been made like that and I just have to do the rest of the project :) however I also think it should be different, just like you mentioned and I will have to discuss this and decide. Thanks for the help! –  Albo Best Nov 11 '11 at 16:22

I agree with others, you should be using a view model. However, with the current table structure, you will still need to iterate through your model and display each property. If you have the ability to change the db schema I would flatten it out as suggested by George Stocker.

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