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function test(&$a)
{
    $a = $a + 3;

}

If I assign the variable first and call it: $a = 3; test($a); echo $a; //it will output 6

but if I do this test($a = 3); echo $a; //it will return 3

Why is that? Doesnt' the reference variable in the second function call modify it to be 6 as well?

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This behaviour is clearly documented in the manual (see that last example). In a nutshell, $a = 3 is an expression, not a variable, so no this does not work. If you crank error reporting up this produces a Strict Standards error. –  DaveRandom Oct 8 '12 at 22:40
    
Don't use references, unless you explicitely want it's "in-out"-behaviour. In your case the muuuch cleaner solution is a simple function test($a) { return $a+3; }; $a = test($a); –  KingCrunch Jan 2 '13 at 11:45

2 Answers 2

up vote 1 down vote accepted

Turn on strict standards to see:

Only variables should be passed by reference

You should not expect your second example to work at all. The fact that it does seems to be a coincidence, though PHP does document it.

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<?php
function test(&$a)
{
    echo $a;
    $a = $a + 3;
}

test($q = 3);
?>

This outputs 3. I'm a bit surprised there, I expected to see true as $q = 3 will usually succeed and thus return true.

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1  
$q = 3 when used as an expression in this way will return 3 (the value assigned to $q), not a TRUE or FALSE (unless you were actually assigning a boolean value). The value passed to the function isn't passed by reference because it isn't a variable; but the result of the expression, but the result of the expression (the value 3) is still passed to the function; hence the echo statement displays 3. $a is then treated as a local variable in the function, and assigned the value passed in (3). –  Mark Baker Oct 8 '12 at 22:55
    
I figured, I just thought it would work like $x = mysql_fetch_array($record) does (which is deprecated, I know). Learned something new today :) –  Laoujin Oct 8 '12 at 22:59

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