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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, Vincent van der Weele 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, Vincent van der Weele
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

3 Answers 3

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

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 :)

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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

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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