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Pretty simple stuff, I know, but am getting an error

<?php  
session_start();  

$dbhost = "###"; // this will ususally be 'localhost', but can sometimes differ  
$dbname = "###"; // the name of the database that you are going to use for this project  
$dbuser = "###"; // the username that you created, or were given, to access your database  
$dbpass = "###"; // the password that you created, or were given, to access your database  

mysql_connect($dbhost, $dbuser, $dbpass) or die("MySQL Error: " . mysql_error());  
mysql_select_db($dbname) or die("MySQL Error: " . mysql_error());  

mysql_select_db("###", $con);

$safe_email = mysql_real_escape_string($_POST['email']);
$sql="INSERT INTO register (email) VALUES ('{$safe_email}')";

if (!mysql_query($sql,$con))
  {
  die('Error: ' . mysql_error());
  }
echo "1 record added";

mysql_close($con)
?>
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1  
What error, on what line? –  CodeCaster Sep 29 '11 at 15:11
    
What's the error? –  Brendan Bullen Sep 29 '11 at 15:12
1  
Also, some suggested reading: en.wikipedia.org/wiki/SQL_injection –  Brendan Bullen Sep 29 '11 at 15:13
1  
-0.49 for still using mysql_query. As it is, you have an SQL injection vulnerability that wouldn't even be possible if you were using prepared statements (well, using them properly). –  cHao Sep 29 '11 at 15:15
    
No error displayed. I am admittedly a hack at this and have really only used some plug and play php for sending emails. This is just too simple a script to find, so I took a swing and missed. –  Adam Sep 29 '11 at 15:20
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3 Answers

up vote 1 down vote accepted

Assuming the following:

  1. You don't have a lot of experience with PHP
  2. The information that has been provided to you is correct
  3. This is an example script and you know the values that need to be substituted for $dbname, $dbhost, $dbuser and $dbpass

Please try the following and report back if you get any output at all to screen:

    <?php  
    session_start();  

    print "Connecting and inserting email: ".$_POST['email']."...";

    $dbhost = "###"; // this will ususally be 'localhost', but can sometimes differ  
    $dbname = "###"; // the name of the database that you are going to use for this project  
    $dbuser = "###"; // the username that you created, or were given, to access your database  
    $dbpass = "###"; // the password that you created, or were given, to access your database  

    $con = mysql_connect($dbhost, $dbuser, $dbpass) or die("MySQL Error: " . mysql_error());  
    mysql_select_db($dbname) or die("MySQL Error: " . mysql_error());  

    $safe_email = mysql_real_escape_string($_POST['email']);
    $sql="INSERT INTO register (email) VALUES ('{$safe_email}')";

    if (!mysql_query($sql,$con))
    {
        die('Error: ' . mysql_error());
    }
    print "success! Inserted email with row id: ".mysql_insert_id();

    mysql_close($con)
    ?>
share|improve this answer
    
got the following: Connecting and inserting email: ...success! I guess I can get rid of the 'print' command line? –  Adam Sep 29 '11 at 15:55
    
@Adam I made a small change just to confirm it is working. In your original post you said there was an auto increment on the table. Try running a few tests and make sure the number output in the success message is in fact increasing. Then you know for definite it's working and you can remove the print statements... –  Brendan Bullen Sep 29 '11 at 16:22
    
I was able to talk with the client and he has confirmed that the records are being added. Thanks again from a PHP noob. I promise to learn more... –  Adam Sep 29 '11 at 17:07
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$con is not defined anywhere in your code, before you use it in the query call. You should have:

$con = mysql_connect(...) or die(mysql_error());

Beyond that, your code is WIDE open to SQL injection attacks. You should have:

$safe_email = mysql_real_escape_string($_POST['email']);
$sql="INSERT INTO register (email) VALUES ('{$safe_email}')";
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this may just be me but you should but strings on a single line or use the concatenation (.) for the strings

$sql="INSERT INTO register (email) VALUES ('$_POST[email]')";

Other than that you should clean the information before adding it into the database otherwise your asking for sql injection attacks.

now to the actual problem. your using a variable that is undefined called conn. i am assuming your referencing the connection made, but you never set that variable to the connection like so

$conn = mysql_connect($dblocal,$dbuser,$dbpass) or die(xxx);
share|improve this answer
    
I prefer strings on multiple lines (without .) for non-trivial SQL. Otherwise, PHP's grammar gets in my way. –  cHao Sep 29 '11 at 15:33
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