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I'm trying to create a file upload, and am using the HTML control input (file) for this. Since this control is in a loginview, I can't access it directly in code behind and have to use the FindControl function like this:

this.LoginView1.FindControl("file_img_upload")

The problem is, I need to typecast the control to get access to the PostedFile attribute. Since Input is a HTML control, you can't seem to typecast it like, for example, a Button.

Is there a way to typecast this control or access it in any other way?

This is how the control is embedded in the loginview:

<asp:LoginView ID="LoginView1" runat="server">
  <AnonymousTemplate>
    <p>U heeft geen toegang tot deze pagina als u niet ingelogd bent.</p>
  </AnonymousTemplate>
  <LoggedInTemplate>
    <div class="fifth">
       <input id="file_img_upload" type="file" enctype="multipart/form-data"/>
       <asp:Button ID="btn_img_upload" runat="server" Text="Upload" 
                                    OnClick="btn_img_upload_Click"/>  
       <asp:Image ID="img_img_upload" runat="server" />
       <asp:Label ID="lbl_img_output" runat="server"  Text="Label"></asp:Label> 
    </div>
  </LoggedInTemplate>
</asp:LoginView>  
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wouldn't it be easier to use the FileUpload web control, since it's one of its properties you're trying to access? –  Wim Ombelets Dec 12 '12 at 12:19
    
It's indeed much easier to use the control! (I'm really new to ASP and didn't know there was one) I'm now using it and it seems to work. Thanks! –  silvdb Dec 13 '12 at 14:09

2 Answers 2

It's easier to use the ASP FileUploadControl, which is accessable from code behind.

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You will find as a System.Web.UI.HtmlControls.HtmlInputFile control if you add the runat="server" attribute.

<input id="file_img_upload" type="file" enctype="multipart/form-data" runat="server" />
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