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I have trouble in inserting a new tuple into my table. It doesn't give any error and I don't know why it doesn't work properly. By the way TextBox3 has something like that: C:\Temp\Pic5.jpg. Here is my code:

  protected void Button3_Click(object sender, EventArgs e)
{
    SqlConnection con = new SqlConnection("Data Source=.\\SQLEXPRESS;AttachDbFilename=|DataDirectory|\\MYDB.mdf;Integrated Security=True;User Instance=True");
    byte[] data;

    try
    {
        data = System.IO.File.ReadAllBytes(@"" + TextBox3.Text);
        string val1 = "" + TextBox1.Text;
        string val2 = "" + TextBox2.Text;
        string val3 = "" + TextBox3.Text;
        SqlCommand cmd = new SqlCommand("Insert INTO Books (Book_Name,Author_Name,Image,In_Lib) VALUES (@BN,@AN,@DATA,@LIB)", con);
        cmd.Parameters.AddWithValue("@BN", val1);
        cmd.Parameters.AddWithValue("@AN", val2);
        cmd.Parameters.AddWithValue("@DATA", val3);
        cmd.Parameters.AddWithValue("@LIB", "YES");
        con.Open();
        cmd.ExecuteNonQuery();
        con.Close();
    }

    catch (Exception err)
    {
        Console.WriteLine(err.Message);
    }
}

asp part

Book Name:   
<asp:TextBox ID="TextBox1" runat="server"></asp:TextBox>
<br />
Author Name:&nbsp;
<asp:TextBox ID="TextBox2" runat="server"></asp:TextBox>
<br />
Image Name:&nbsp;&nbsp;
<asp:TextBox ID="TextBox3" runat="server"></asp:TextBox>
<br />
<asp:Button ID="Button3" runat="server" onclick="Button3_Click" Text="Submit" />
<br />

My database is like this:

  • Book_Name varchar(50)
  • Author_Name varchar(50)
  • Image image
  • In_Lib varchar(50)
share|improve this question
    
is the console visible? –  Daniel A. White May 9 '12 at 12:59
1  
can you show you database table? –  Murtaza May 9 '12 at 12:59
1  
What are data types for that parameters? –  levi May 9 '12 at 12:59
2  
What does it doesn't work properly mean? Does nothing get inserted, or just some of the values, or? –  Joshua Drake May 9 '12 at 13:00
1  
Oh you Visual Basic victims... "" + TextBox1.Text doesn't do anything in C# but cause a pointless memory operation... –  Thorsten Dittmar May 9 '12 at 13:02

4 Answers 4

up vote 1 down vote accepted

You're reading the file specified in TextBox3.Text into data and not using it anywhere. Also, you're passing text into the Image field, you probably wanted to do

cmd.Parameters.AddWithValue("@DATA", data);

instead of

cmd.Parameters.AddWithValue("@DATA", val3);
share|improve this answer
    
Ohh thank you mate. It is working now. –  Ahmet Tanakol May 9 '12 at 13:17

As your Image column is of type Image, the correct parameter value would be a byte array, not a string. This may cause an error. If you are not adding an image right now, leave out this parameter or set it to DBNull.Value explicitly.

I presume you're coming from a Visual Basic background (otherwise there's no explanation for the strange "" + TextBox1.Text construct), so as a side note: The values passed to the calls to AddWithValue should match the column types in the database. By that I mean: Passing a string to a parameter which is of type int may work, unless you pass Hello. Errors like that are sometimes hard to find, so please: make sure to match parameter types from the beginning.

share|improve this answer
    
Ok thanks Thorsten. I finally found my error.As pjotr said I have to write cmd.Parameters.AddWithValue("@DATA", data); instead of cmd.Parameters.AddWithValue("@DATA", val3); –  Ahmet Tanakol May 9 '12 at 13:16

I think the following should work

try:

cmd.Parameters.Add("parameter_name", System.Data.SqlDbType.BigInt).Value = 1233;
share|improve this answer
    
Sorry, it didn't work. –  Ahmet Tanakol May 9 '12 at 13:06
1  
This is the same as AddWithValue only that you're passing in the type, instead of having it deferred automatically. –  Thorsten Dittmar May 9 '12 at 13:07

Your Problem is in Image. In database you have database field Image with datatype Image, and you are trying to store string data.

string val3 = "" + TextBox3.Text;
cmd.Parameters.AddWithValue("@DATA", val3);

Make store with SqlDbType.Image.

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