<form runat="server" id="f1">
    <div runat="server" id="d">
        grid view:
        <asp:GridView runat="server" ID="g">
        </asp:GridView>
    </div>

    <asp:TextBox runat="server" ID="t" TextMode="MultiLine" Rows="20" Columns="50"></asp:TextBox>
</form>

Code behind:

public partial class ScriptTest : System.Web.UI.Page
{
    protected void Page_Load(object sender, EventArgs e)
    {
        g.DataSource = new string[] { "a", "b", "c" };
        g.DataBind();

        TextWriter tw = new StringWriter();
        HtmlTextWriter h = new HtmlTextWriter(tw);    
        d.RenderControl(h);
        t.Text = tw.ToString();
    }
}

Even the GridView is within a from tag with runat="server", still I am getting this error.

Any clues please ?

  • 2
    I've seen this before if someone is using a Master page that already has a form tag (that may or may not already be declaring runat="server" in it's <form> tag). Just a thought... – lhan Jun 14 '11 at 12:53
  • @Lloyd: But I don't have any Master Page, I have created this page for testing this error only. – teenup Jun 14 '11 at 12:58
  • Hi, I copied your code but cannot replicate the problem. Can you please put the whole file contents (every line) into your question, or Pastebin it? Thanks – christofr Jun 14 '11 at 13:01
  • 1
    possible duplicate of GridView must be added to a form tag for rendering. – Grant Thomas Jun 14 '11 at 13:17
up vote 153 down vote accepted

You are calling GridView.RenderControl(htmlTextWriter), hence the page raises an exception that a Server-Control was rendered outside of a Form.

You could avoid this execption by overriding VerifyRenderingInServerForm

public override void VerifyRenderingInServerForm(Control control)
{
  /* Confirms that an HtmlForm control is rendered for the specified ASP.NET
     server control at run time. */
}

See here and here.

  • I have a GridView whose contents I want to render into an Email Message, thats why I need to render it out of form. I can not override this method because the host page is of Sharepoint. My Grid is a Usercontrol inside a web part in sharepoint page. – teenup Jun 14 '11 at 13:04
  • Also, when I add that GridView directly to an HtmlForm dynamically, and then render it, it perfectly renders. This means that it only requires the presence of a form outside grid. But, when I add that DIV to the HtmlForm dynamically, this error again comes, although the Grid is a child of DIV and also added to HtmlForm along with it. – teenup Jun 14 '11 at 13:08
  • this will not work if your grid is inside an .ascx user control. in that case see Chris Mullins answer below. I have used both Tim and Chris's techniques and they work great. – Taylor Brown Mar 12 '14 at 21:15
  • I love an elegant solution! Gets me excited :D – Nikolay May 19 '14 at 13:52
  • 2
    Worked great. Just a heads up you may get an error saying "RegisterForEventValidation can only be called during Render();" If so set make sure to set the EventValidation to false in the markup for the page. – Al Belmondo Jul 2 '14 at 16:14

An alternative to overriding VerifyRenderingInServerForm is to remove the grid from the controls collection while you do the render, and then add it back when you are finished before the page loads. This is helpful if you want to have some generic helper method to get grid html because you don't have to remember to add the override.

Control parent = grid.Parent;
int GridIndex = 0;
if (parent != null)
{
    GridIndex = parent.Controls.IndexOf(grid);
    parent.Controls.Remove(grid);
}

grid.RenderControl(hw);

if (parent != null)
{
    parent.Controls.AddAt(GridIndex, grid);
}

Another alternative to avoid the override is to do this:

grid.RenderBeginTag(hw);
grid.HeaderRow.RenderControl(hw);
foreach (GridViewRow row in grid.Rows)
{
    row.RenderControl(hw);
}
grid.FooterRow.RenderControl(hw);
grid.RenderEndTag(hw);
  • Adroit!! I will try it tomorrow. – teenup Jun 14 '11 at 19:06
  • when trying to render the grid inside an asp user control (.ascx), using the 1st method worked great for me. – Taylor Brown Mar 12 '14 at 21:13
  • 2
    1.It doesn't work if gridview contains controls like LinkButton - it gives 'Control of type 'LinkButton' must be placed inside a form tag with runat=server' error. 2.Could you please explain why does this technique work? – BornToCode Nov 4 '15 at 13:01
  • @BornToCode Disable sorting for your gridview in code. – Adi Solar Feb 28 '17 at 13:04
  • disabling sorting and paging not working – Vani Mar 31 '17 at 15:00

Just after your Page_Load add this:

public override void VerifyRenderingInServerForm(Control control)
{
    //base.VerifyRenderingInServerForm(control);
}

Note that I don't do anything in the function.

EDIT: Tim answered the same thing. :) You can also find the answer Here

Just want to add another way of doing this. I've seen multiple people on various related threads ask if you can use VerifyRenderingInServerForm without adding it to the parent page.

You actually can do this but it's a bit of a bodge.

First off create a new Page class which looks something like the following:

public partial class NoRenderPage : System.Web.UI.Page
{
    protected void Page_Load(object sender, EventArgs e)
    { }

    public override void VerifyRenderingInServerForm(Control control)
    {
        //Allows for printing
    }

    public override bool EnableEventValidation
    {
        get { return false; }
        set { /*Do nothing*/ }
    }
}

Does not need to have an .ASPX associated with it.

Then in the control you wish to render you can do something like the following.

    StringWriter tw = new StringWriter();
    HtmlTextWriter hw = new HtmlTextWriter(tw);

    var page = new NoRenderPage();
    page.DesignerInitialize();
    var form = new HtmlForm();
    page.Controls.Add(form);
    form.Controls.Add(pnl);
    controlToRender.RenderControl(hw);

Now you've got your original control rendered as HTML. If you need to, add the control back into it's original position. You now have the HTML rendered, the page as normal and no changes to the page itself.

  • Way too much code to achieve something simple. – SearchForKnowledge Jun 5 '15 at 15:21
  • @DanielEdwards what does DesignerInitialize() do for you? – JJS Jun 10 '16 at 16:16

Here is My Code

protected void btnExcel_Click(object sender, ImageClickEventArgs e)
    {
        if (gvDetail.Rows.Count > 0)
        {
            System.IO.StringWriter stringWrite1 = new System.IO.StringWriter();
            System.Web.UI.HtmlTextWriter htmlWrite1 = new HtmlTextWriter(stringWrite1);
            gvDetail.RenderControl(htmlWrite1);

            gvDetail.AllowPaging = false;
            Search();
            sh.ExportToExcel(gvDetail, "Report");
        }
    }

    public override void VerifyRenderingInServerForm(Control control)
    {
        /* Confirms that an HtmlForm control is rendered for the specified ASP.NET
           server control at run time. */
    }
  • Why did you add this answer 5 years after it was answered? And it is the same answer. – Mukus May 23 at 4:03

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