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I did

 $query ="CREATE TABLE '{$uname}'
    (id int(11) NOT NULL auto_increment,
    fname varchar(255) NOT NULL,
    lname varchar(255) NOT NULL,
    pass varchar(255) NOT NULL,
    subj varchar(255) NOT NULL,
    test1 int(11) NOT NULL,
    test2 int(11) NOT NULL,
    exam int(11) NOT NULL,
    PRIMARY KEY (id))";
    $result2 = mysql_query($query, $connection);
    if(!$result2){echo mysql_error();}

and the error I get is:

You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near ''nelo' (id int(11) NOT NULL auto_increment, fname varchar(255) NOT NULL, l' at line 1

when I did a vardump of $query, I got:

string 'CREATE TABLE 'nelo'
(id int(11) NOT NULL auto_increment,
fname varchar(255) NOT NULL,
lname varchar(255) NOT NULL,
pass varchar(255) NOT NULL,
subj varchar(255) NOT NULL,
test1 int(11) NOT NULL,
test2 int(11) NOT NULL,
exam int(11) NOT NULL,
PRIMARY KEY (id))' (length=277)

which seems cool to me. Am I missing something?

share|improve this question
1  
reformat your code , or I may need to see an optician –  Poomrokc The 3years Apr 9 at 11:05
1  
remove the quotes from the table name –  gbestard Apr 9 at 11:06
    
Use backticks, not quotes for table and/or column names –  Mark Baker Apr 9 at 11:06
    
I'm sure I did that @poomrokc –  brown.cn Apr 9 at 11:07
    
Just remove single codes from table name and delete (length=277) at end of your SQL command –  Ajitha Ms Apr 9 at 11:15

4 Answers 4

You need to write your query like this:

 $query ="CREATE TABLE `".$uname."`
    (id int(11) NOT NULL auto_increment,
    fname varchar(255) NOT NULL,
    lname varchar(255) NOT NULL,
    pass varchar(255) NOT NULL,
    subj varchar(255) NOT NULL,
    test1 int(11) NOT NULL,
    test2 int(11) NOT NULL,
    exam int(11) NOT NULL,
    PRIMARY KEY (id))";

This will work for you properly.

share|improve this answer
$query ="CREATE TABLE `$uname` 
    (id int(11) NOT NULL auto_increment,
    fname varchar(255) NOT NULL,
    lname varchar(255) NOT NULL,
    pass varchar(255) NOT NULL,
    subj varchar(255) NOT NULL,
    test1 int(11) NOT NULL,
    test2 int(11) NOT NULL,
    exam int(11) NOT NULL,
    PRIMARY KEY (id))";

You are enclosing the table name with '' which was the issue.

share|improve this answer

Either this-

CREATE TABLE `nelo`
(id int(11) NOT NULL auto_increment,
fname varchar(255) NOT NULL,
lname varchar(255) NOT NULL,
pass varchar(255) NOT NULL,
subj varchar(255) NOT NULL,
test1 int(11) NOT NULL,
test2 int(11) NOT NULL,
exam int(11) NOT NULL,
PRIMARY KEY (id))

or this -

CREATE TABLE nelo
(id int(11) NOT NULL auto_increment,
fname varchar(255) NOT NULL,
lname varchar(255) NOT NULL,
pass varchar(255) NOT NULL,
subj varchar(255) NOT NULL,
test1 int(11) NOT NULL,
test2 int(11) NOT NULL,
exam int(11) NOT NULL,
PRIMARY KEY (id))
share|improve this answer

Try this,

 $query ="CREATE TABLE ".$uname."
    (id int(11) NOT NULL auto_increment,
    fname varchar(255) NOT NULL,
    lname varchar(255) NOT NULL,
    pass varchar(255) NOT NULL,
    subj varchar(255) NOT NULL,
    test1 int(11) NOT NULL,
    test2 int(11) NOT NULL,
    exam int(11) NOT NULL,
    PRIMARY KEY (id))";
    $result2 = mysql_query($query, $connection);
    if(!$result2){echo mysql_error();}
share|improve this answer

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