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I'm changing my mysql functions to mysqli ones and have come across an interesting problem.

I want to echo out specific user data. I created a function where I insert multiple arguments (each argument represents a column in the database) and then echo whichever column I want with a simple line of code.

My code below will further explain it if what I just said was confusing. It is in it's entirety.

My problem is is that it is not working.

It's returning an error that says, Notice: Undefined index: last_name in... which occurs on the very last line of code, echo $user_data['last_name'];.

What is causing the error? Is it the function? If so, where is the problem? This is my first day working with mysqli.

$mysqli = new mysqli("localhost", "user", "password", "database");

Here is the function:

function user_data ($mysqli, $user_id) {
    $data = array();
    $user_id = (int)$user_id;
    $func_num_args = func_num_args();
    $func_get_args = func_get_args();
    if ($func_num_args > 1) {
        unset($func_get_args[0]);
        unset($func_get_args[1]);
        $fields ='`' .  implode ('`, `', $func_get_args) . '`';
        //here I am starting the mysqli prepared statement              
        if ($stmt = $mysqli->prepare("SELECT ? FROM `users` WHERE `user_id` = ?")) {
            $stmt->bind_param('si', $fields, $user_id);
            $stmt->execute();
            //here I am trying to convert the result into an array
            $meta = $stmt->result_metadata();
            while ($field = $meta->fetch_field()) {
                $parameters[] = &$row[$field->name];
            }
            call_user_func_array(array($stmt, 'bind_result'), $parameters);
            while ($stmt->fetch()) {
                foreach($row as $key => $val) {
                        $x[$key] = $val;
                }
                $results[] = $x;
            }
            return $results;
            $stmt->close(); 
            }
    }
}

Testing out the function to see if it works:

$session_user_id = 1;
$user_data = user_data($mysqli, $session_user_id, 'username', 'password', 'first_name', 'last_name', 'email');
echo $user_data['last_name'];

A var_dump() for the variable $user_data returns with this.

array(1) { [0]=> array(1) { ["?"]=> string(58) "`username`, `password`, `first_name`, 
`last_name`, `email`" } } 
share|improve this question
1  
You can't use ? in prepare for a table or column name. See the documentation. –  uınbɐɥs Sep 2 '12 at 20:28
    
Would that then make the purpose of prepared statements invalid since I'm not injecting any data into the database, and simply just calling it? –  jason328 Sep 2 '12 at 20:35
1  
Prepared statements are good, but you might want to create an array like $valid = array('username', 'password', ...);, then check the input with in_array. –  uınbɐɥs Sep 2 '12 at 20:48
    
Thanks. Will do. –  jason328 Sep 2 '12 at 20:56

1 Answer 1

up vote 3 down vote accepted

You can't use ? in prepare for a table or column name. See the documentation.

Instead, create an array like

$valid = array('username', 'password', ...);

then check the input with in_array:

$fields = array();
foreach($func_get_args as $arg) {
    if(in_array($arg, $valid)) $fields[] = $arg;
}
$fields = '`' . implode ('`, `', $fields) . '`';
if($stmt = $mysqli->prepare("SELECT $fields FROM `users` WHERE `user_id` = ?")) {
    // ...
share|improve this answer
    
If I follow the former instructions I receive Parse error: syntax error, unexpected ''user_id'' (T_CONSTANT_ENCAPSED_STRING and if I follow with the latter I receive Notice: Undefined index: last_name. This function worked before with mysql, so I know that user_data can accept more arguments even if it appears it only accepts two –  jason328 Sep 2 '12 at 19:33
    
@jason328 Okay, what line? You have got two single quotes on each side of user_id somewhere. –  uınbɐɥs Sep 2 '12 at 19:35
    
For the former, the error is caught on the first line that creates the function function user_data($mysqli, $user_id, 'username'... and for the latter, when I echo out 'lastname' with echo $user_data['last_name']; –  jason328 Sep 2 '12 at 19:41
    
@jason328 Somewhere in your code that you haven't posted, the is something like $user = $user_data[''user_id''];. It should be $user = $user_data['user_id'];. –  uınbɐɥs Sep 2 '12 at 19:44
    
What's in the question is my code in its entirety. There are is no other calls with $user_data['some_column'] except for the very last line of code seen in my question. –  jason328 Sep 2 '12 at 19:50

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