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I need to open a new form if the user name and the password is correct but I can't get this code to work, if I enter a correct username or a password it does nothing.

private void login_Click(object sender, EventArgs e)
{
   try
   {
      string connection = @"Data Source=DX-PC;Initial Catalog=login;Integrated Security=True";
      SqlConnection cn = new SqlConnection(connection);

      cn.Open();

      string userText = user.Text;
      string passText = pass.Text;

      SqlCommand cmd = new SqlCommand("SELECT ISNULL(Username, '') AS Username, ISNULL(Password,'') AS Password FROM log WHERE Username = @username and Password = @password", cn);
      cmd.Parameters.Add(new SqlParameter("username", userText));
      cmd.Parameters.Add(new SqlParameter("password", passText));

      SqlDataReader dr = cmd.ExecuteReader();

      try
      {
          dr.Read();
          if (dr["Username"].ToString().Trim() == userText && dr["Password"].ToString().Trim() == passText)
          {
              MessageBox.Show("This message won't Display");
          }
      }
      catch
      {
          MessageBox.Show("Invalid Username or Password");
      }

      dr.Close();
      cn.Close();
   }
   catch (Exception ex)
   {
       MessageBox.Show(ex.Message);
   }
} 
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closed as off-topic by marc_s, Gert Arnold, rene, Tushar Gupta, Heuster Aug 18 '13 at 13:18

This question appears to be off-topic. The users who voted to close gave this specific reason:

  • "Questions asking for code must demonstrate a minimal understanding of the problem being solved. Include attempted solutions, why they didn't work, and the expected results. See also: Stack Overflow question checklist" – Gert Arnold, rene, Tushar Gupta, Heuster
If this question can be reworded to fit the rules in the help center, please edit the question.

    
Are you getting any error? –  Ramesh Sivaraman Aug 18 '13 at 5:31
    
Could be a dozen reasons. You Initial Catalog=login does not exist. You make typos. You have added weird values to your database, why else would you use trim on a string that came from database? It is more likely to use trim on the text that came from the textbox. –  Mike de Klerk Aug 18 '13 at 5:33
1  
Don't join this club: plaintextoffenders.com –  Tom Aug 18 '13 at 5:37
1  
Surely you have some kind of a sign something is not working. An error? Exception? Please do share... –  Avi Turner Aug 18 '13 at 5:50
    
No errors,and the connection works perfectly if i type a wrong username or a password the invalid messagebox comes up, the only issue is that if i type the correct details the " MessageBox.Show("This message won't Display");" will not be displayed. sorry if i am not clear, i am still new to c# –  Adax Aug 18 '13 at 6:04
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3 Answers

up vote 1 down vote accepted

I believe the issue is in the:

                if (dr["Username"].ToString().Trim() == userText && dr["Password"].ToString().Trim() == passText)
                {

                    MessageBox.Show("This message won't Display");



                }

section of your code. Try adding an else as follows:

                if (dr["Username"].ToString().Trim() == userText && dr["Password"].ToString().Trim() == passText)
                {

                    MessageBox.Show("This message won't Display");



                } else {
                    MessageBox.Show(string.Format("{0}!={1}, {2}!={3}"
                        ,dr["Username"].ToString().Trim(),userText,
                         dr["Password"].ToString().Trim(),passText
                    );
                } 

and you will probably find your issue.

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Thank you very much !! –  Adax Aug 18 '13 at 7:00
add comment

Try This Code

        cn.open
        MySqlDataAdapter LoginAdapter = new MySqlDataAdapter();
        dynamic CommandQuerry = @"SELECT * From users WHERE Username='" + UsernameField.Text + "'AND Password='" + PasswordField.Text + "';";
        MySqlCommand LoginCommand = new MySqlCommand(); //The Login Command
        MySqlDataReader LoginDataReader = default(MySqlDataReader); //Create a reader variable to check login details.

        if (cn.State == ConnectionState.Open)
        {
              LoginCommand.Connection = SelectedSchoolDB;
              LoginCommand.CommandText = CommandQuerry;
              LoginAdapter.SelectCommand = LoginCommand;

              LoginDataReader = LoginCommand.ExecuteReader();

              if (Convert.ToInt32(LoginDataReader.HasRows) == 0)
              {
                     DialogResult a = MessageBox.Show(@"Invalid username/password, please try again", "Error", MessageBoxButtons.OK, MessageBoxIcon.Error);
              }
              else
              {
                     LoginDataReader.Close(); // Close The reader
                     This.FormName.Hide(); //Close the login form
                     Newform.ShowDialog(); //Show the new form
              }
cn.close()
}

Hope This code helps :)

share|improve this answer
    
If You need the explanation of each code let me know. –  Muhand Jumah Aug 18 '13 at 5:50
1  
warning: sql injection hazard above –  spender Aug 18 '13 at 7:00
    
@spender Can you explain this more please? how is it possible? and how to prevent it? plus I think sql injections works for websites not C# application –  Muhand Jumah Aug 18 '13 at 7:14
    
SQL injection is a problem wherever you have unfiltered user input going in as inline SQL. As in xkcd.com/327 you can have someone enter SQL in through the UsernameField or the PasswordField which will be run. Try adding typing the following in the UserNameField text box: '; CREATE TABLE [dbo].[InjectionRules]([UserID] [int] NOT NULL); -- –  Larry Smithmier Aug 23 '13 at 15:17
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Though the Code you provided is vulnerable to SQL Injection & XSS, but to answer your question, string comaprision on filter criterion at SQL queries are case insensitive where as on .NET code above would be case sensitive.

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