36

Actually, I am Creating 1 TextBox on Pageload and adding that TextBox to Panel. Now, I have a LinkButton like Add Another.

I am entering Text in that TextBox and if needed I need to Create New TextBox,by clicking Add Another LinkButton.

Actually, I am able to get the count and recreate the TextBoxes. But,the Problem is that, My Entered text in the Previously Generated Textboxes is Missing.

Can Anyone,Suggest me a solution for this?

protected void Page_Load(object sender, EventArgs e)
    {
        try
        {
            if (!IsPostBack)
            {
                for (int i = 0; i < 5; i++)
                {
                    TableRow row = new TableRow();
                    for (int j = 0; j < 5; j++)
                    {
                        TableCell cell = new TableCell();
                        TextBox tb = new TextBox();                        
                        tb.ID = "TextBoxRow_" + i + "Col_" + j;                        
                        cell.Controls.Add(tb);                        
                        row.Cells.Add(cell);
                    }                    
                    Table1.Rows.Add(row);
                }
            }
        }
        catch (Exception ex)
        {
            throw;
        }        
    }

This is a Sample Code, the same code is written in Button_Click Also

 protected void ASPxButton1_Click(object sender, EventArgs e)
    {
 int k = Table1.Controls.Count;
}

I am getting a Count=0 on Button_Click.

1
  • 1
    Can you show us some code? Jul 11, 2013 at 9:03

7 Answers 7

20

All you need to do is to re-instantiate / reinitialize dynamic controls before or within page load event each and every time during postback and add this control to page / forms / placeholders. Then, the posted data will automatically be assigned to the control by calling the LoadPostData method by the parent control.

check the article and how to write code for dynamic control - How to maintain dynamic control events, data during postback in asp.net

enter image description here

2
  • Now i am clear about dynamic control state management thanks vivek.
    – Rohit
    Sep 21, 2013 at 8:17
  • 1
    +1 for the detailed supporting article. This is a great reference for the underlined workings of dynamic controls for postbacks/events.
    – Radderz
    Jan 23, 2017 at 7:06
14

When using dynamic controls, you must remember that they will exist only until the next postback.ASP.NET will not re-create a dynamically added control. If you need to re-create a control multiple times, you should perform the control creation in the PageLoad event handler ( As currently you are just creating only for first time the TextBox using Condition: !IsPostabck ). This has the additional benefit of allowing you to use view state with your dynamic control. Even though view state is normally restored before the Page.Load event, if you create a control in the handler for the PageLoad event, ASP.NET will apply any view state information that it has after the PageLoad event handler ends.

So, Remove the Condition: !IsPostback, So that each time the page Loads, The TextBox control is also created. You will also see the State of Text box saved after PageLoad handler completes. [ Obviously you have not disabled ViewState!!! ]

Example:

protected void Page_Load(object sender, EventArgs e)
{

    TextBox txtBox = new TextBox();
    // Assign some text and an ID so you can retrieve it later. 

    txtBox.ID = "newButton";
    PlaceHolder1.Controls.Add(txtBox);

}

Now after running it, type anything in text box and see what happens when you click any button that causes postback. The Text Box still has maintained its State!!!

2
  • 2
    Could you elaborate on the ViewState and how it affects the dynamic controls?
    – Zorgarath
    Dec 28, 2015 at 19:12
  • Bless you! Great solution.
    – ARNDG2
    May 5, 2017 at 9:00
7

The dynamically generated control do not maintain state. You have to maintain it at your own. You can use some hidden field to keep the state of controls, which will be used on server side to extract the state. Asp.net uses hidden field to maintain the state between requests, you can see __VIEWSTATE in the source.

In ASP.NET pages, the view state represents the state of the page when it was last processed on the server. It's used to build a call context and retain values across two successive requests for the same page. By default, the state is persisted on the client using a hidden field added to the page and is restored on the server before the page request is processed. The view state travels back and forth with the page itself, but does not represent or contain any information that's relevant to client-side page display, Reference.

2
  • This is true when used by themselves, but if you add the dynamically created control to a PlaceHolder (or alternative WebControl), then this will keep the state of the dynamic control. So long as you Recreate your dynamic control on page load (or before), on postbacks too, the state information will be preserved.
    – Radderz
    Jan 23, 2017 at 7:13
  • @Adil can you have a look at my question stackoverflow.com/questions/55817451/… . i am having the same issue Apr 24, 2019 at 10:04
4

Just remove this line

 if (!IsPostBack)
3

This is My final answer after working a lot with Dynamic Controls

.aspx

<form id="form1" runat="server">
<asp:ScriptManager ID="ScriptManager1" runat="server">
</asp:ScriptManager>
<div style="text-align: center">
    <div style="background-color: Aqua; width: 250px;">
    <br />
    <asp:UpdatePanel ID="UpdatePanel1" runat="server">
        <ContentTemplate>
            <asp:PlaceHolder runat="server" ID="myPlaceHolder"></asp:PlaceHolder>
        </ContentTemplate>
        <Triggers>
            <asp:AsyncPostBackTrigger ControlID="btnAddTextBox" EventName="Click" />
        </Triggers>
    </asp:UpdatePanel>
    <br />
    </div>
    <br />
    <asp:Button ID="btnAddTextBox" runat="server"  Text="Add TextBox" OnClick="btnAddTextBox_Click" />
    <br /><br />
    <asp:UpdatePanel ID="UpdatePanel2" runat="server">
        <ContentTemplate>
            <asp:Button runat="server" ID="MyButton" Text="Get Values." OnClick="MyButton_Click" />
            <br /><br />
            <asp:Label runat="server" ID="MyLabel"></asp:Label>
        </ContentTemplate>
    </asp:UpdatePanel>
 </div>
</form>

.aspx.cs

static int myCount = 0;
    private TextBox[] dynamicTextBoxes;

    protected void Page_PreInit(object sender, EventArgs e)
    {
        Control myControl = GetPostBackControl(this.Page);

        if ((myControl != null))
        {
            if ((myControl.ClientID.ToString() == "btnAddTextBox"))
            {
                myCount = myCount + 1;
            }
        }
    }

    protected override void OnInit(EventArgs e)
    {
        base.OnInit(e);
        dynamicTextBoxes = new TextBox[myCount];
        int i;
        for (i = 0; i < myCount; i += 1)
        {
            TextBox textBox = new TextBox();
            textBox.ID = "myTextBox" + i.ToString();
            myPlaceHolder.Controls.Add(textBox);
            dynamicTextBoxes[i] = textBox;
            LiteralControl literalBreak = new LiteralControl("<br />");
            myPlaceHolder.Controls.Add(literalBreak);
        }
    }

    protected void btnAddTextBox_Click(object sender, EventArgs e)
    {
        // Handled in preInit due to event sequencing.
    }

    protected void MyButton_Click(object sender, EventArgs e)
    {
        MyLabel.Text = "";
        foreach (TextBox tb in dynamicTextBoxes)
        {
            MyLabel.Text += tb.Text + " :: ";
        }
    }

    public static Control GetPostBackControl(Page thePage)
    {
        Control myControl = null;
        string ctrlName = thePage.Request.Params.Get("__EVENTTARGET");
        if (((ctrlName != null) & (ctrlName != string.Empty)))
        {
            myControl = thePage.FindControl(ctrlName);
        }
        else
        {
            foreach (string Item in thePage.Request.Form)
            {
                Control c = thePage.FindControl(Item);
                if (((c) is System.Web.UI.WebControls.Button))
                {
                    myControl = c;
                }
            }
        }
        return myControl;
    }
1
1

When you are working with dynamic controls they will not able to maintain its state during postback and their data lost Cause they dont have any viewstate to maintain their data.

You only need to maintain the created controls data into ViewState dynamically and loads the data into page at the time of postback and you done.

public Dictionary<Guid, string> UcList
{
    get { return ViewState["MyUcIds"] != null ? (Dictionary<Guid, string>)ViewState["MyUcIds"] : new Dictionary<Guid, string>(); }
    set { ViewState["MyUcIds"] = value; }
}

public void InitializeUC()
{
    int index = 1;
    foreach (var item in UcList)
    {
        var myUc = (UserControls_uc_MyUserControl)LoadControl("~/UserControls/uc_MyUserControl.ascx");
        myUc.ID = item.Value;
        pnlMyUC.Controls.AddAt(index, myUc);
        index++;
    }
}

protected void Page_Load(object sender, EventArgs e)
{
    if (!IsPostBack)
        LoadControl();
    else
        InitializeUC();
}

enter image description here

0

Actually, I have used Javascript for accomplishing my task. and it goes like this :

<form id="form1" runat="server" enctype="multipart/form-data" method="post">
        <span style="font-family: Arial">Click to add files</span>&nbsp;&nbsp;
        <input id="Button1" type="button" value="add" onclick="AddFileUpload()" />
        <br />
        <br />
        <div id="FileUploadContainer">
            <!--FileUpload Controls will be added here -->
        </div>
        <asp:HiddenField ID="HdFirst1" runat="server" Value="" />
        <br />
        <asp:Button ID="btnUpload" runat="server" Text="Upload" OnClick="btnUpload_Click" />
    </form>

Script :

 <script type="text/javascript">
        var counter = 0;

        function AddFileUpload() {

            var div = document.createElement('DIV');
            div.innerHTML = '<input id="file' + counter + '"name = "file' + counter + '"type="text"/><input id="file' + counter + '" name = "file' + counter + '" type="file" /><input id="Button' + counter + '" type="button" value="Remove" onclick = "RemoveFileUpload(this)" />';

            document.getElementById("FileUploadContainer").appendChild(div);
            counter++;
        }
        function RemoveFileUpload(div) {
            document.getElementById("FileUploadContainer").removeChild(div.parentNode);
        }

        function mydetails(div) {
            var info;
            for (var i = 0; i < counter; i++) {
                var dd = document.getElementById('file' + i).value;
                info = info + "~" + dd;
            }
            document.getElementById('<%= HdFirst1.ClientID %>').value = info;
        }
    </script>

and In the Upload_Click Button :

for (int i = 0; i < Request.Files.Count; i++)
        {           
           string strname = HdFirst1.Value;
           string[] txtval = strname.Split('~');
            HttpPostedFile PostedFile = Request.Files[i];
            if (PostedFile.ContentLength > 0)
            {
                string FileName = System.IO.Path.GetFileName(PostedFile.FileName);
               // string textname=
                //PostedFile.SaveAs(Server.MapPath("Files\\") + FileName);
            }
        }
1
  • Never save uploaded files in a normal directory like that. A bad user could for example upload an aspx file and... Nov 13, 2018 at 14:46

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