3

I'm trying to create a table whose name is the value of what is stored inside the variable $name. I have tried numerous different methods but none seem to work for me. Here is the code I am using currently:

 mysql_connect("localhost", "peltdyou_admin", "123456") or die(mysql_error()); 
 mysql_select_db("peltdyou_orders") or die(mysql_error()); 
 mysql_query("CREATE TABLE '" .$_POST['name']. "' ( name VARCHAR(30), age INT, car VARCHAR(30))");

I know it is something to do with '" .$_POST['name']. "' but I can't work out what. I have tried '$name' in its place which gets it's value from further up in the code.

Any help would be great!

8
  • 1
    Have you tried outputting the SQL you're generating, so you can be sure it contains what you think it contains?
    – andrewsi
    Jun 12 '12 at 19:48
  • 3
    Never use POST data directly in any mySQL queries.
    – Hidde
    Jun 12 '12 at 19:48
  • 1
    To my knowledge, MySQL does not require quotes around the table name. Have you tried removing the single quotes? Jun 12 '12 at 19:48
  • @Hidde, or GET, or COOKIE, or any data that cannot be trusted.
    – Brad
    Jun 12 '12 at 19:49
  • Check privileges for your sql user
    – scriptin
    Jun 12 '12 at 19:49
8

Use backticks around table name, not quotes. And escape the input! Also, while this works on localhost, make sure that the user running on your production server has the privilege to CREATE tables (usually it's not, AFAIK, on shared hostings of course).

A word of warning: are you really sure you want to create a table on a user input?? how many tables are you going to create in this way? Can't you just redesign the whole thing so that you insert values instead?

$name = mysql_real_escape_string($_POST['name']);
mysql_query("CREATE TABLE `".$name."` ( name VARCHAR(30), age INT, car VARCHAR(30))");
4
  • Perfect! Works like a charm, thank you. I will accept the answer in 4 minutes Jun 12 '12 at 19:56
  • The tables will be created by an administrator when adding new clients to the database. So it won't be spammed Jun 12 '12 at 20:03
  • I'd suggest adding a client in a "client" table, as a new row, not creating a new table... Jun 12 '12 at 20:08
  • mysql_real_escape_string is absolutely useless here. May 5 '20 at 21:29
1

Put it in another variable and it will work, there's a conflict with the "'" character in the POST variable and in the mysql_query.

<?php
mysql_connect("localhost", "peltdyou_admin", "123456") or die(mysql_error()); 
mysql_select_db("peltdyou_orders") or die(mysql_error()); 
$name = mysql_real_escape_string($_POST['name']);
mysql_query("CREATE TABLE '$name' ( name VARCHAR(30), age INT, car VARCHAR(30))");
?>

I posted this code to help you in your code but you should not use the mysql_* functions you should use the mysqli_* functions. You can read more about them here: http://php.net/manual/en/book.mysqli.php

3
  • Do prepared statements work with identifiers? I thought they worked only for binding values Jun 12 '12 at 19:56
  • You are right they don't! If you look at php.net/manual/en/mysqli.prepare.php it tell you :P I will edit that out. That was a mistake sorry!!! Jun 12 '12 at 20:02
  • mysql_real_escape_string is absolutely useless here. May 5 '20 at 21:30
1

You should really be using PDO or MySQLi instead of mysql_* functions. mysql_* functions are in the process of being deprecated and they are full of security holes.

With that said you don't need to quote your table name and instead should use nothing or backticks.

5
  • How do you bind a variable to an identifier using PDO or mysqli? Jun 12 '12 at 20:00
  • Your query would look like CREATE TABLE :name (name VARCHAR(30), age INT, car VARCHAR(30) and then $stmt->bindParam(":name", $_POST['name']); For a full example you will want to find a good PDO tutorial that will give you all the basics.
    – Cody Covey
    Jun 12 '12 at 20:29
  • Are you really sure? The docs say otherwise. ALso, read this: stackoverflow.com/questions/182287/… Jun 12 '12 at 20:39
  • Oh yeah you are right identifiers cannot be done with bindParam. I am unsure why you down voted my answer however since the answer makes no mention of binding parameters...
    – Cody Covey
    Jun 12 '12 at 21:05
  • You're right, I misread your answer :). I made a small edit so I could revert my downvote, again sorry! Jun 12 '12 at 21:08
0

Using the newest Mysqli connector, you can do something like this: 1. Create a variable from the user's input like so $variable=$_POST['name'] 2. Use the variable in your query as shown in the complete code below here

$variable=$_POST['name']; mysqli_connect("localhost", "peltdyou_admin", "123456") or die(mysql_error()); mysqli_select_db("peltdyou_orders") or die(mysqli_connect_error()); mysqli_query("CREATE TABLE $variable ( name VARCHAR(30), age INT, car VARCHAR(30))");

0
$query = "CREATE TABLE $name" . '(
    id INT(6) UNSIGNED AUTO_INCREMENT PRIMARY KEY,
    age INT,
    name  varchar(30),
    car VARCHAR(30)
)';
2
  • 1
    I wanted to know how to use variable as column name.
    – Anusha
    Dec 1 '16 at 10:05
  • can we write create query in foreach loop and how to use.please guide me
    – Anusha
    Dec 1 '16 at 10:06
0
CREATE TABLE IF NOT EXISTS `products` (
  `id` int(11) NOT NULL AUTO_INCREMENT,
  `name` varchar(128) NOT NULL,
  `description` text NOT NULL,
  `price` double NOT NULL,
  `created` datetime NOT NULL,
  `modified` timestamp NOT NULL DEFAULT CURRENT_TIMESTAMP ON UPDATE CURRENT_TIMESTAMP,
  PRIMARY KEY (`id`)
) ENGINE=InnoDB  DEFAULT CHARSET=latin1 AUTO_INCREMENT=9 ;

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