I have a question regarding the pass-by-reference in PHP. I've searched online but couldn't see anything specific to this issue. The following function removes the key from the array and returns it's value updating the array:
function array_fetch($k, array &$a){
if(isset($a[$k]) || array_key_exists($k, $a)){
$v = $a[$k];
unset($a[$k]);
return $v;
}
return null;
}
I'm using the code as followed:
function foo(){
return ['a', 'b', 'c'];
}
$a = foo();
echo array_fetch(1, $a);
print_r($a);
b
Array ( [0] => a [2] => c )
So it works like a charm and now I want to make the code a little shorter:
echo array_fetch(1, $a = foo());
print_r($a);
Notice: Only variables should be passed by reference in ...
b
Array ( [0] => a [1] => b [2] => c )
Am I wrong to assume that I give a variable as reference? Apparently so, cause the array is unchanged as well but I don't understand why this happens. Even if I enclose the expression with () it doesn't help.
Update:
A viable work-around is to use a wrapper function like so:
function &ref($var){
return $var;
}
echo array_fetch(1, $a = &ref(['a', 'b', 'c']));
print_r($a);
b
Array ( [0] => a [2] => c )
array_fetch(1, $a = foo()); is not
assign
$aand pass$ato function.
It is
assign
$aand pass the result of assign to function.
And result of assign operation is the value which is assigned.
So, array_fetch(1, $a = foo()); is equivalent to array_fetch(1, ['a', 'b', 'c']) where second argument is not a variable.
So, the only solution is still:
$a = foo();
echo array_fetch(1, $a);