Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I have a function in PHP, which has some arguments default to null, so that I can easily call it with less than the full number of arguments. The problem is, that when I use a null-defaulted argument directly, I get the given argument, but when I try to copy that value to another variable, the variable only gets the default value of null. It looks like this:

// inside my MySQLI wrapper class...
public function bind(&$stmt, $types = "", &$arg1, &$arg2 = null, &$arg3 = null /* this goes up to 20; it's auto-generated by another script */)
{
    echo "dumping...";
    var_dump($arg1); // var_dump shows value from function call (string(0))
    var_dump($arg2); // ditto
    echo "...dumped";
    if ($arg2 != null) $foo = $arg2; var_dump($foo); echo "foo"; // var_dump shows that $foo is NULL
    /* ... */
}

I call the function like this, from another script: (It's a dummy script dealing with trucks and cars.)

$make = "";
$model = "";
$year = 0;
$license = "";
list($error, $message) = $mysql->bind($stmt, "", $make, $model, $year, $license);

My bind() function is a wrapper to MySQLI's bind_param() and bind_result() functions. I've only included the top couple lines, because it's failing at that point already, before it even gets to the actual logic.

Right now, it just looks like it's a bug in PHP, because this doesn't follow what I know about how variables, arguments, default arguments, and references work. Furthermore, this problem only appears to manifest itself in my real code, and doesn't appear in my simple php file that I coded up to test this.

Further info:

$foo gets assigned NULL, when $arg2 is an empty string, "", and properly gets assigned when it is a non-empty string. Empty strings are still valid strings, so why is PHP doing this?

share|improve this question
2  
I've tried it, and I have no problem: codepad.org/9cioWS04 –  A. Rodas Feb 11 '13 at 19:45
1  
Can you show the code that's actually producing the problem? If the code you posted doesn't produce it, then there must be a difference between the two (or their contexts) even if you believe they should be functionally identical. It might also help to see how you're calling the function. –  octern Feb 11 '13 at 19:46
    
Oh, also: null is probably a bad default value for testing, because lots of things can result in a variable being set to null. I recommend changing the default value in your code to something else. If the variable still ends up as null, then your problem isn't related to the default value. –  octern Feb 11 '13 at 19:47
    
Updated with actual code. @octern: My parameters are set to sensible values (e.g. strings of length zero) and immediately get nullified by the function in question. –  E.T. Feb 11 '13 at 20:17

1 Answer 1

up vote 1 down vote accepted

The problem is the != comparison. What happens is that PHP type-juggles at least one of your variables, and as such, "" != null evaluates to false. The table part-way down this page shows what will happen for comparisons between different types. A type-strict form !== is needed:

if ($arg2 !== null)
    $foo = $arg2;
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.