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I have a gridview which is pulling some data from a database. One of the columns shows an exchange rate, so 1.54 for example. Above the gridview I have a text box that allows an amount to be entered, 500 for example.

I want to be able to have a column in the gridview that says '500 is' where 500 is taken from the textbox and then the row in the grid to show 500 * 1.54.

My textbox is:

<asp:TextBox id="CustomerAmount" runat="server" value="500" Width="73px"></asp:TextBox>

My gridview value I wish to multiply this by is:

<asp:BoundField DataField="Rate" HeaderText="Rate" SortExpression="Rate" dataformatstring="{0:F4}">
<HeaderStyle BackColor="#1686D6" Font-Bold="True" ForeColor="White" HorizontalAlign="Left" />                  
<ItemStyle HorizontalAlign="Left" />                  
</asp:BoundField>

Any ideas, I'm stuck on this.

share|improve this question
    
server side or client side? –  Amiram Korach Aug 28 '12 at 19:38
    
The site visitor will enter the amount and press 'submit' to cause a postback. –  grn_uk Aug 28 '12 at 19:40

1 Answer 1

up vote 0 down vote accepted

To set the header (suppose 1 is the column index):

protected void GridView1_DataBound(object sender, EventArgs e)
{
    GridView1.Columns[1].HeaderText = CustomerAmount.Text + " is";
}

To set the cells data add a template column:

<asp:TemplateField HeaderText="is">
    <ItemTemplate>
        <asp:Label Text="<%# int.Parse(CustomerAmount.Text) * (decimal)Eval("Rate") %>" runat="server" />
    </ItemTemplate>
</asp:TemplateField>

Make sure the textbox is not empty (has initial int value).

share|improve this answer
    
will try my rate field is <asp:BoundField DataField="Rate" HeaderText="Rate" SortExpression="Rate" dataformatstring="{0:F4}"> <HeaderStyle BackColor="#1686D6" Font-Bold="True" ForeColor="White" HorizontalAlign="Left" /> <ItemStyle HorizontalAlign="Left" /> </asp:BoundField> and my amount textbox is: <asp:TextBox id="CustomerAmount" runat="server" value="500" Width="73px"></asp:TextBox> –  grn_uk Aug 28 '12 at 20:16
    
Add it to your question –  Amiram Korach Aug 28 '12 at 20:24
    
When I try this I get "The server tag is not well formed" –  grn_uk Jul 3 '13 at 9:22

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