Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

There are multiple ways I can conceive for achieving the following functionality; however I am hoping for a super elegant solution. Can I use a PHP superglobal variable as the default value for a user defined function parameter?

Example:

function test1($foo=$_SERVER['PATH']) {
   echo $foo;
}

The above code spits out an error. Like I said I know that I can achieve the same thing using the following code (but the above code is more attractive):

function test2($foo) {
   if (!isset($foo)) $foo = $_SERVER['PATH'];
   echo $foo;
}

Thanks for the help!

share|improve this question
    
I believe the first solution wouldn't work because at script evaluation time (similar to compilation for interpreted languages), the $_SERVER['PATH'] value is not yet defined. –  Lior Cohen Jul 11 '13 at 23:45
    
That sounds plausible; The error that the PHP engine is spitting out is "Parse error: syntax error, unexpected T_VARIABLE in M:\test.php on line 2" Do you think that that error agrees with your explanation? –  lja Jul 11 '13 at 23:48
    
I would say it does. A variable (a runtime element) would probably not make sense in a static context (a "compile" time element). –  Lior Cohen Jul 11 '13 at 23:50
    
Thanks Lior, that is a sensible answer to the question and I appreciate it. –  lja Jul 12 '13 at 2:06
add comment

1 Answer

up vote 0 down vote accepted

I would recommend passing in the variable, but if you want to use a global one, you can do this

function test2() {
    global $foo;
    ...
}

at the top of your function and set the value somewhere else, or go with your second idea - but you need to specify a default value in the function parameter to make it optional.

function test2($foo='') {
   if (empty($foo)) $foo = $_SERVER['PATH'];
   echo $foo;
}

Another way to work with variables from outside your function is to pass them in by reference. This passes in a reference to the original variable, not a copy, so any changes you make inside the function will affect the original variable value outside of the scope of the function as well.

$foo = 'bar';
function test2(&$foo) {
   echo $foo;  // this will output "bar"
}
share|improve this answer
add comment

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.