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I'm new to php and am making a simple login system. When someone wants to register, they go to register.html, then insert.php. The code below should add the data from the form to the table but is doesn't come up in it. I suspect it is probably the line: $sql=INSERT INTO... The only thing appearing is the echo statement at the bottom of the code I know there probably is a simple answer to this, but I still can't find it. Thanks, any help is really appreciated!

The code for insert.php

<?php
$email=$_POST['email'];
$name=$_POST['name'];
$password=$_POST['password'];
$con = mysql_connect("localhost","user","p@ssword");
mysql_select_db("database", $con);
$sql="INSERT INTO table_name (email, name, password)
VALUES ('$email', '$name', '$password')";  
echo"Thank you, you are now registered and can login on our homepage";
mysql_close($con);
?>

Thanks again!

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<?php $email=$_POST['email']; $name=$_POST['name']; $password=$_POST['password']; $con = mysql_connect("localhost","username","password"); mysql_select_db("database", $con); $sql="INSERT INTO table (email, name, password) VALUES ('$email', '$name', '$password')"; echo"Thank you, you are now registered and can login on our homepage"; mysql_close($con); ?> –  Niall Jan 1 '11 at 20:23
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2 Answers

up vote 6 down vote accepted

You established the connection and prepared the query, but you didn't actually execute it! You need to call mysql_query(), passing in the SQL and the connection handle, to instruct the database to perform the statement.

<?php
$email=$_POST['email'];
$name=$_POST['name'];
$password=$_POST['password'];
$con = mysql_connect("localhost","user","p@ssword");
mysql_select_db("database", $con);
$sql="INSERT INTO table_name (email, name, password)
VALUES ('$email', '$name', '$password')";
mysql_query( $sql, $con ) or trigger_error( mysql_error( $con ), E_USER_ERROR );
echo"Thank you, you are now registered and can login on our homepage";
mysql_close($con);
?>

Since you say you're new to PHP (and probably database development in general?), let me also point you in the direction of the PHP tutorial on SQL injection, which explains what it is and why you need to guard against it - your example code, for instance, is vulnerable.

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2  
+1 for mentioning SQL injection. –  Mark Byers Jan 1 '11 at 20:26
    
thank you, that sounds right, –  Niall Jan 1 '11 at 20:36
    
That works perfectly thank you! Your help is really appreciated! :) –  Niall Jan 1 '11 at 20:46
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The reason that this code doesn't work is that you haven't got the call to mysql_query that actually makes the query:

mysql_query($sql);

However a bigger problem is that your application is currently highly insecure, because you are not checking the validity of $email, $name or $password, so a malicious user could easily do nasty stuff to your database. At the least, use mysql_real_escape_string to escape them; preferably, use a library such as PDO to help ensure the security of your site.

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Yes thanks, I'm aiming to get the basics right and then add in encrypting and validating. Thanks anyway –  Niall Jan 1 '11 at 20:45
    
@Backslap That's very well, but if you learn with PDO rather than the age-old mysql_ functions, you'll get security built in by default; I'd urge you to explore those functions. –  lonesomeday Jan 1 '11 at 20:47
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