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ListBox and Database issue

What's the best way to INSERT data into a database?

This is what I have but it's wrong..

cmd.CommandText = "INSERT INTO klant(klant_id,naam,voornaam) VALUES(@param1,@param2,@param3)";

cmd.Parameters.Add(new SqlParameter("@param1", klantId));
cmd.Parameters.Add(new SqlParameter("@param2", klantNaam));
cmd.Parameters.Add(new SqlParameter("@param3", klantVoornaam));

The function add data into the listBox

http://www.pictourl.com/viewer/37e4edcf

but not into the database..

http://www.pictourl.com/viewer/4d5721fc

The full function:

private void Form1_Load(object sender, EventArgs e)
    {            
        conn2 = new SqlConnection();
        conn2.ConnectionString = ConfigurationManager.ConnectionStrings["connSpionshopString"].ConnectionString;
    }

 private void button2_Click(object sender, EventArgs e)
    {         
        string sqlCmd = "SELECT naam,voornaam,klant_id FROM klant;";
        SqlCommand cmd = new SqlCommand(sqlCmd, conn2);

        conn2.Open();

        using(SqlDataReader reader = cmd.ExecuteReader())
        {
           while (reader.Read())
            {
                listBox2.Items.Add(reader.GetString(0) + " " + reader.GetString(1) + "  (" + reader.GetInt16(2) + ")");
            }  
        }

        conn2.Close();
    }



private void button4_Click(object sender, EventArgs e)
    {
        int klantId = Convert.ToInt32(textBox1.Text);
        string klantNaam = textBox2.Text;
        string klantVoornaam = textBox3.Text;

        conn2.Open();

        SqlCommand cmd = new SqlCommand();
        cmd.Connection = conn2;
        cmd.CommandText = "INSERT INTO klant(klant_id, naam, voornaam)   VALUES(@param1,@param2,@param3)";

        cmd.Parameters.AddWithValue("@param1", klantId);
        cmd.Parameters.AddWithValue("@param2", klantNaam);
        cmd.Parameters.AddWithValue("@param3", klantVoornaam);

        cmd.ExecuteNonQuery(); 

        conn2.Close();
    }
share|improve this question
4  
"It's wrong" is about as vague as you can be about what's happening. Please explain what you're observing. Note that you do need to actually execute the command... –  Jon Skeet Oct 17 '12 at 17:02
1  
Can you give more details? What do you mean it's wrong? –  Shane Andrade Oct 17 '12 at 17:02
3  
This is duplicate of a question that has already been closed. And it still does not even have a try catch block that was the first comment in the closed question. –  Blam Oct 17 '12 at 17:20
2  
Your question is essentially the same as before: stackoverflow.com/questions/12936345/listbox-and-database-issue. Same code, and same lack of precision as to what you are asking. I would advise maybe to think of it as if writing a bug report: what is happening with your code, what you would like to happen, and where/how you see the problem happening. –  Mathias Oct 17 '12 at 17:33
1  
So this is not the actual code? I bet ExecuteNonQuery throw an exception or returns a 0. Your code does zero error checking. -1 –  Blam Oct 17 '12 at 17:33

6 Answers 6

you can use implicit casting AddWithValue

cmd.Parameters.AddWithValue("@param1", klantId);
cmd.Parameters.AddWithValue("@param2", klantNaam);
cmd.Parameters.AddWithValue("@param3", klantVoornaam);

sample code,

using (SqlConnection conn = new SqlConnection("connectionString")) 
{
    using (SqlCommand cmd = new SqlCommand()) 
    { 
        cmd.Connection = conn;
        cmd.CommandType = CommandType.Text;
        cmd.CommandText = @"INSERT INTO klant(klant_id,naam,voornaam) 
                            VALUES(@param1,@param2,@param3)";  

        cmd.Parameters.AddWithValue("@param1", klantId);  
        cmd.Parameters.AddWithValue("@param2", klantNaam);  
        cmd.Parameters.AddWithValue("@param3", klantVoornaam);  

        try
        {
            conn.Open();
            cmd.ExecuteNonQuery(); 
        }
        catch(SqlException e)
        {
            MessgeBox.Show(e.Message.ToString(), "Error Message");
        }

    } 
}
share|improve this answer
    
I tried this one too but the data won't store in the database.. –  KevinDW Oct 17 '12 at 17:05
    
@KevinDW did you call cmd.ExecuteNonQuery();? –  John Woo Oct 17 '12 at 17:06
    
Yes, i added the full code –  KevinDW Oct 17 '12 at 17:10
    
@KevinDW can you create another instance of your connection? see my updated answer. –  John Woo Oct 17 '12 at 17:12

You should avoid hardcoding SQL statements in your application. If you don't use ADO nor EntityFramework, I would suggest you to ad a stored procedure to the database and call it from your c# application. A sample code can be found here: How to execute a stored procedure from c# program and here http://msdn.microsoft.com/en-us/library/ms171921%28v=vs.80%29.aspx.

share|improve this answer

Use AddWithValue(), but be aware of the possibility of the wrong implicit type conversion.
like this:

cmd.Parameters.AddWithValue("@param1", klantId);
    cmd.Parameters.AddWithValue("@param2", klantNaam);
    cmd.Parameters.AddWithValue("@param3", klantVoornaam);
share|improve this answer
using (SqlConnection connection = new SqlConnection(connectionString)) 
{
    connection.Open(); 
    using (SqlCommand command = connection.CreateCommand()) 
    { 
        command.CommandText = "INSERT INTO klant(klant_id,naam,voornaam) VALUES(@param1,@param2,@param3)";  

        command.Parameters.AddWithValue("@param1", klantId));  
        command.Parameters.AddWithValue("@param2", klantNaam));  
        command.Parameters.AddWithValue("@param3", klantVoornaam));  

        command.ExecuteNonQuery(); 
    } 
}
share|improve this answer
    
How can I use my existing code to work with code-behind: stackoverflow.com/questions/23616987/… –  SiKni8 May 12 at 19:31

You can use dapper library:

conn2.Execute(@"INSERT INTO klant(klant_id,naam,voornaam) VALUES (@p1,@p2,@p3)", 
                new { p1 = klantId, p2 = klantNaam, p3 = klantVoornaam });

BTW Dapper is a Stack Overflow project :)

UPDATE: I believe you can't do it simpler without something like EF. Also try to use using statements when you are working with database connections. This will close connection automatically, even in case of exception. And connection will be returned to connections pool.

private readonly string _spionshopConnectionString;

private void Form1_Load(object sender, EventArgs e)
{            
    _spionshopConnectionString = ConfigurationManager
          .ConnectionStrings["connSpionshopString"].ConnectionString;
}

private void button4_Click(object sender, EventArgs e)
{
    using(var connection = new SqlConnection(_spionshopConnectionString))
    {
         connection.Execute(@"INSERT INTO klant(klant_id,naam,voornaam) 
                              VALUES (@klantId,@klantNaam,@klantVoornaam)",
                              new { 
                                      klantId = Convert.ToInt32(textBox1.Text), 
                                      klantNaam = textBox2.Text, 
                                      klantVoornaam = textBox3.Text 
                                  });
    }
}
share|improve this answer

Try confirm the data type (SqlDbType) for each parameter in the database and do it this way;

using(SqlConnection connection = new SqlConnection(ConfigurationManager.ConnectionStrings["connSpionshopString"].ConnectionString))
{
    connection.Open();
    string sql =  "INSERT INTO klant(klant_id,naam,voornaam) VALUES(@param1,@param2,@param3)";
        SqlCommand cmd = new SqlCommand(sql,connection);
        cmd.Parameters.Add("@param1", SqlDbType.Int).value = klantId  
        cmd.Parameters.Add("@param2", SqlDbType.Varchar, 50).value = klantNaam;
        cmd.Parameters.Add("@param3", SqlDbType.Varchar, 50).value = klantVoornaam;
        cmd.CommandType = CommandType.Text;
        cmd.ExecuteNonQuery();
}
share|improve this answer
1  
If there was no conn2 then conn2.Open would fail. –  Blam Oct 17 '12 at 17:29
    
In the Form_Load: conn2 = new SqlConnection(); conn2.ConnectionString = ConfigurationManager.ConnectionStrings["connSpionshopString"].ConnectionString; ? –  KevinDW Oct 17 '12 at 17:29
    
@kevinDW you just edited your post, now I have edit mine also. Duh! –  Oluwafemi Oct 17 '12 at 17:34

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