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I'm attempting to implement basic login functionality for an iPhone application using Xcode (personal project, so I don't need to consider security at this point).

I started off with static functionallity, whereby I posted the data to an URL on my local host (using NAMP) to check that the username & password parameters match those designated in my php file.

This worked fine - so I have tried to edit the php file so that it connects to a MySQL database hosted on NAMP, and checks in the 'Customer' table for a username and password that match those posted. It returns a count, if the count is 1 I want the login to be successful.

Here's the code in my 'login' button:

- (IBAction)login:(id)sender {

    NSInteger success = 0;
    @try {

        if([[self.txtEmail text] isEqualToString:@""] || [[self.txtPassword text] isEqualToString:@""] ) {

            [self alertStatus:@"Please enter Email and Password" :@"Sign in Failed!" :0];

        } else {
            NSString *post =[[NSString alloc] initWithFormat:@"username=%@&password=%@",[self.txtEmail text],[self.txtPassword text]];
            NSLog(@"PostData: %@",post);

            NSURL *url=[NSURL URLWithString:@"http://localhost:8888/jsonlogin2.php"];

            NSData *postData = [post dataUsingEncoding:NSASCIIStringEncoding allowLossyConversion:YES];

            NSString *postLength = [NSString stringWithFormat:@"%lu", (unsigned long)[postData length]];

            NSMutableURLRequest *request = [[NSMutableURLRequest alloc] init];
            [request setURL:url];
            [request setHTTPMethod:@"POST"];
            [request setValue:postLength forHTTPHeaderField:@"Content-Length"];
            [request setValue:@"application/json" forHTTPHeaderField:@"Accept"];
            [request setValue:@"application/x-www-form-urlencoded" forHTTPHeaderField:@"Content-Type"];
            [request setHTTPBody:postData];

            //[NSURLRequest setAllowsAnyHTTPSCertificate:YES forHost:[url host]];

            NSError *error = [[NSError alloc] init];
            NSHTTPURLResponse *response = nil;
            NSData *urlData=[NSURLConnection sendSynchronousRequest:request returningResponse:&response error:&error];

            NSLog(@"Response code: %ld", (long)[response statusCode]);

            if ([response statusCode] >= 200 && [response statusCode] < 300)
            {
                NSString *responseData = [[NSString alloc]initWithData:urlData encoding:NSUTF8StringEncoding];
                NSLog(@"Response ==> %@", responseData);

                NSError *error = nil;
                NSDictionary *jsonData = [NSJSONSerialization
                                          JSONObjectWithData:urlData
                                          options:NSJSONReadingMutableContainers
                                          error:&error];

                success = [jsonData[@"success"] integerValue];
                NSLog(@"Success: %ld",(long)success);

                if(success == 1)
                {
                    NSLog(@"Login SUCCESS");
                } else {

                    NSString *error_msg = (NSString *) jsonData[@"error_message"];
                    [self alertStatus:error_msg :@"Sign in Failed!" :0];
                }

            } else {
                //if (error) NSLog(@"Error: %@", error);
                [self alertStatus:@"Connection Failed" :@"Sign in Failed!" :0];
            }
        }
    }
    @catch (NSException * e) {
        NSLog(@"Exception: %@", e);
        [self alertStatus:@"Sign in Failed." :@"Error!" :0];
    }
    if (success) {
        [self performSegueWithIdentifier:@"login_success" sender:self];
    }
}

- (void) alertStatus:(NSString *)msg :(NSString *)title :(int) tag
{
    UIAlertView *alertView = [[UIAlertView alloc] initWithTitle:title
                                                        message:msg
                                                       delegate:self
                                              cancelButtonTitle:@"Ok"
                                              otherButtonTitles:nil, nil];
    alertView.tag = tag;
    [alertView show];
}

Here's my php file:

<?php
ob_start();
$host="localhost"; // Host name 
$username="root"; // Mysql username 
$password="root"; // Mysql password 
$db_name="coffee"; // Database name 
$tbl_name="Customer"; // Table name


// Connect to server and select database.
mysql_connect("$host", "$username", "$password") or die(mysql_error());
echo "Connected to MySQL";
mysql_select_db("$db_name") or die(mysql_error());
echo "Connected to Database";

// Define $username and $password 
$username=$_POST['username']; 
$password=md5($_POST['password']);


// To protect MySQL injection (more detail about MySQL injection)
//$username = stripslashes($username);
//$password = stripslashes($password);
//$username = mysql_real_escape_string($username);
//$password = mysql_real_escape_string($password);

$sql="SELECT * FROM $tbl_name WHERE username='$username' and password='$password'";
$result=mysql_query($sql);
echo "returned $result";
// Mysql_num_row is counting table row
$count=mysql_num_rows($result);
// If result matched $username and $password, table row must be 1 row
if ($count=="1") {
   echo '{"success":1}';
} else {
echo "Unsuccessful! $count";
}

ob_end_flush();




 ?>

This is the error code I get in the Xcode debugger, regardless of whether the user credentials entered match records in the db or not.

[38992:a0b] PostData: username=francis&password=pass
[38992:a0b] Response code: 200
TheCoffeeHouse[38992:a0b] Response ==> Connected to MySQLConnected to   Databasereturned Resource id #2Unsuccessful! 0
[38992:a0b] Success: 0

As you can see in the php file, I've put used: 'echo "returned $result";' to try and find out what's happened. No idea what the 'Resource id #2' it returns is about.

I've also logged into PhpMyAdmin, opened up the db and carried out a simple SELECT query on the records, which works fine. So I'm deducting that the database and application are not communicating properly.

Finally I should point out that I'm very new to objective-C.

Thank you in advance for any help.

Kind Regards,

Francis

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