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I'm reading a book about PHP, and having a problem with this example:

<?php
function dbConnect() {
    $host = 'localhost';
    $db = 'learnphp';
    $user = 'phplearner';
    $pwd = 'wxyz1234';
    return new mysqli($host, $user, $pwd, $db) or die("Can't open database");
}
$conn = dbConnect();
$sql = 'SELECT * FROM images';
$result = $conn->query($sql);
$numRows = $result->num_rows;
?>
<p>A total of <?php echo $numRows; ?> records were found.</p>

It doesn't run in my local server (XAMPP 1.8.1; PHP 5.4.7; mysqlnd 5.0.10 - 20111026; MySQL 5.5.27) - with this error message:

Fatal error: Call to a member function query() on a non-object in D:\xampp\htdocs\learnphp\mysql\mysqli.php on line 11

However, when I changed this line:

    return new mysqli($host, $user, $pwd, $db) or die("Can't open database");

to:

    $mysqliobj = new mysqli($host, $user, $pwd, $db) or die("Can't open database");
    return $mysqliobj;

It works normally:

A total of 8 records were found.

Why can't I use return new mysqli(...) like the example? Is this a new coding requirement for PHP 5.4+ ?

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2 Answers 2

up vote 5 down vote accepted

The [..] or die() construct leads to funny behaviour in conjunction with the return statement: The whole thing is interpreted as a boolean expression.

And because new mysqli will never be false, the "die" is never processed, and thus, your function returns true instead of a newly created instance of mysqli.

EDIT:

If you still would like to use or die(), do this:

$result = new mysqli($host, $user, $pwd, $db) ;
if (!$result) die ("Can't open database.");
return $result;
share|improve this answer
    
I removed the or die(..) and it works! From the example, what should we use instead of or die(..)? –  weeix Aug 7 '13 at 7:56
    
check my edited post. –  dinsdale Aug 7 '13 at 7:57
    
@weeix The reason for this behavior is the operator precedence. = is evaluated before or, but return is evaluated after both. So $foo = $bar or die(). Results in the same boolean true value for the expression overall, but as part of that operation $bar has been assigned to $foo and nobody cares about the expression value here. –  deceze Aug 7 '13 at 10:32

change this...

return new mysqli($host, $user, $pwd, $db) or die("Can't open database");

to this..

return mysqli_connect($host, $user, $pwd, $db) or die("Can't open database");
share|improve this answer
    
Didn't work. It produce the same error message. –  weeix Aug 7 '13 at 8:00
    
I actually stumble to this kind of error. I just quit using query() and proceed to use mysqli_query(). –  shark Aug 7 '13 at 8:04

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