For example, if I do this:

function bar(&$var)
{
    $foo = function() use ($var)
    {
        $var++;
    };
    $foo();
}

$my_var = 0;
bar($my_var);

Will $my_var be modified? If not, how do I get this to work without adding a parameter to $foo?

  • no, it will not be modified .. this is covered in the manual – tereško Jun 3 '12 at 12:49
up vote 44 down vote accepted

No, they are not passed by reference - the use follows a similar notation like the function's parameters. You can validate that on your own with the help of the debug_zval_dump function (Demo):

<?php
header('Content-Type: text/plain;');

function bar(&$var)
{
    $foo = function() use ($var)
    {
        debug_zval_dump($var);
        $var++;
    };
    $foo();
};

$my_var = 0;
bar($my_var);
echo $my_var;

Output:

long(0) refcount(3)
0

A full-through-all-scopes-working reference would have a refcount of 1. As written you achieve that by defining the use as pass-by-reference:

    $foo = function() use (&$var)

It's also possible to create recursion this way:

$func = NULL;
$func = function () use (&$func) {
    $func();
}
  • 1
    I noticed I forgot to mark this as best answer.. – elite5472 Jul 8 '13 at 18:40
  • thanks for the heads-up! – hakre Jul 8 '13 at 18:41
  • 1
    Better a year later than never! – elite5472 Jul 8 '13 at 18:47

Closures are, almost by definition, closed by value, not by reference. You may "use by reference" by adding an & in the argument list:

function() use (&$var)

This can be seen in example 3 in the anonymous functions manual page.

No, they are not passed by reference.

function foo(&$var)
{
    $foo = function() use ($var)
    {
        $var++;
    };
    $foo();
}

$my_var = 0;
foo($my_var);
echo $my_var; // displays 0

function bar(&$var)
{
    $foo = function() use (&$var)
    {
        $var++;
    };
    $foo();
}

$my_var = 0;
bar($my_var);
echo $my_var; // displays 1

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