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Here is my little script, and from writing it I've learned that I've no idea how PHP handles variables...

<?php 
$var = 1;

echo "Variable is set to $var <br />";

if (!foo()) echo "Goodbye";

function foo()
{
    echo "Function should echo value again: ";

    if ($var == 1)
    {
        echo "\$var = 1 <br />";
        return true;
    }

    if ($var == 2)
    {
        echo "\$var = 0 <br />";
        return false;
    }
}     
?>

So, here is how I thought this script would be interpreted:

  • The statement if (!foo) would run foo(). If the function returned false, it would also echo "Goodbye" at the end.

  • The function foo() would check whether $var == 1 or 2 (without being strict about datatype). If 1 it would echo "Function should echo value again: 1", and if 2, it would echo the same but with the number 2.

For some reason both if statements inside foo() are being passed over (I know this because if I change the first if statement to if ($var != 1), it passes as true, even if I declared $var = 1.

What's happening here? I thought I had all this down, now I feel like I just went backwards :/

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mostly i see scope issues: php.net/manual/en/language.variables.scope.php –  Dagon May 23 '12 at 23:35
    
1  
A lot of people are going to suggest global, as does that link I just pasted, but please, save yourself months of going down the wrong road, and avoid global like the plague. –  Corbin May 23 '12 at 23:36
    
global has its place, but yes not here, and its often used incorrectly. –  Dagon May 23 '12 at 23:37
    
@Dagon I've yet to see it ever used correctly in PHP :p. –  Corbin May 23 '12 at 23:54

2 Answers 2

up vote 5 down vote accepted

The function doesn't know what $var is. You'd have to pass it in, or make it global:

function foo() {
  global $var;
  /* ... */
}

Or

$var = 1;
if ( !foo( $var ) ) echo "Goodbye";

function foo ( $variable ) {
  /* Evaluate $variable */
}

By the way, it's almost always better to avoid global variables. I would encourage you to go the latter route and pass the value into the function body instead.

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1  
Oh my. I'd read about variable scopes and still it completely slipped my mind. –  iDontKnowBetter May 23 '12 at 23:47

I strongly recommend you to read Variable scope manual page. $var is invisible for foo() function, so it is undefined inside of it.

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