43
$ php --version
PHP 5.5.4 (cli) (built: Sep 19 2013 17:10:06) 
Copyright (c) 1997-2013 The PHP Group
Zend Engine v2.5.0, Copyright (c) 1998-2013 Zend Technologies

The following code (similar to example at https://bugs.php.net/bug.php?id=49543):

class Foo
{
    public function bar()
    {
        return function() use ($this)
        {
            echo "in closure\n";
        };
    }
}

fails with:

PHP Fatal error:  Cannot use $this as lexical variable

Yet according to the PHP docs and a comment on that bug report from Rasmus Lerdorf, using $this in anonymous functions was added as of PHP 5.4. What am I doing wrong?

3
  • Check to make sure you're using the same version of PHP from the web server. It's often different than whatever is first in your path in Bash. Use phpinfo().
    – Brad
    Oct 17, 2013 at 15:54
  • According to a quick test in 3v4l.org/G28oE that’s still the same in 5.5.5 even … maybe Rasmus was just wrong on this one …? Edit: Or maybe it was intended to be in 5.4 at the time he stated this (too lazy to look up know if 5.4 was already out by then), but they removed it again because it caused additional problems the way they implemented it.
    – CBroe
    Oct 17, 2013 at 15:55
  • @Brad Worth mentioning, but I tested this with the cli.
    – tjbp
    Oct 17, 2013 at 16:55

8 Answers 8

63

So it seems $this can be used simply if it isn't specified via the "use" keyword.

The following echoes 'bar':

class Foo
{
    private $foo = 'bar';

    public function bar()
    {
        return function()
        {
            echo $this->foo;
        };
    }
}

$bar = (new Foo)->bar();

$bar();

This was reported in the php-internals mailing list and is apparently overhang from 5.3's lack of support for this functionality:

http://marc.info/?l=php-internals&m=132592886711725

2
  • 16
    FYI for PHP 7 users, this answer still holds absolutely true.
    – wally
    May 15, 2017 at 9:05
  • this answer should be at the top! although still present 7
    – MR_AMDEV
    Oct 24, 2018 at 21:04
9

In PHP 5.3 if you are using a Closure inside of a class, the Closure will not have access to $this.

In PHP 5.4, support has been added for the usage of $this in Closures.

2
  • Great answer, would you be able to provide the source?
    – Peeech
    Sep 18, 2016 at 15:26
  • only in 5.4, that means that 5.3 doesn't support $this inside enclosures? thanks Aug 12, 2017 at 3:44
7

I don't know the answer to your actual question (ie Why can't you do it), but I can give you a work around: Use a temporary copy of $this and use() that instead:

class Foo
{
    public function bar()
    {
        $that = $this;
        return function() use($that)
        {
            print_r($that);
        };
    }
}

I've just tested it, and this does work.

1
  • 1
    Assigning object to variables are done via reference, so temporary copy of $this is actually $that is reference of $this. But then again, why can't we use $this in use statement, but we can use variables assigned by reference? Nov 25, 2014 at 11:55
7

The issue is that including $this in the use() statement is not allowed.

However if you don't include it then it will work fine.

So the issue isn't whether the use statement is present, it's whether $this is present in the use statement.

This should work (@see https://3v4l.org/smvPt):

class Foo{
    private $a;
    function getAnon(){
        $b = 1;
        return function() use ($b) { 
            echo $b;
            echo $this->a;
        };
    }
}

This shouldn't:

class Foo{
    private $a;
    function getAnon(){
        $b = 1;
        return function() use ($this, $b) { 
            echo $b;
            echo $this->a;
        };    
    }
}

I suppose essentially $this is implicitly captured.

5

You can use this:

class Foo
{
  public function bar()
  {
    $obj = $this;
    return function() use ($obj)
    {
        //$obj->DoStuff();
        echo "in closure\n";
    };
  }
 }
4

I know, this is an old question, but maybe someone from google find this:

The reason why you get the error is, because you can't use an already defined variable name as lexical variable in the same closure.

Since in PHP 5.5 and above you can access $this inside the closure, a variable with the name $this already exists.

Here is another example, where you would get the same error:

$item = "Test 1";
$myFnc = function($item) use ($item) {
    ...
}
$myFnc("Test 2");

As you can see, the $item is already used as closure parameter, so you can't us it lexical variable.

3

It may be a bug, but there is no sense in explicit binding $this to a function anyway as it is automatically bound:

PHP documentation says

As of PHP 5.4.0, when declared in the context of a class, the current class is automatically bound to it, making $this available inside of the function's scope.

Thus, fatal error is thrown in today's version of PHP:

From PHP 7.1, these variables must not include superglobals, $this, or variables with the same name as a parameter.

1

I'm using PHP 5.4.25 and actually I am able to use class variables in a closure also with the use keyword as shown below:

class Foo
{
    private $_privateBar = 'private bar';
    protected $_protectedBar = 'protected bar';
    public $_publicBar = 'public bar';

    public function bar()
    {
        $prefix = 'I am a ';

        return function() use ($prefix) {
            echo $prefix . $this->_privateBar . "\n";
            echo $prefix . $this->_protectedBar . "\n";
            echo $prefix . $this->_publicBar . "\n";
        };
    }
}

$foo = new Foo();
$bar = $foo->bar();

$bar();

Output:

I am a private bar
I am a protected bar
I am a public bar
3
  • The issue is not that the use keyword implicitly prevents use of $this - rather why use ($prefix, $this), if used in your example, would be unnecessary/invalid.
    – tjbp
    Jul 20, 2014 at 11:15
  • 1
    Cristiano's answer looks to me like a will to highlight your inaccurate statement where you wrote: "So it seems this $this can be used if the "use" keyword is simply not specified". According to Cristiano's code (that I've personally tried and it works like a charm) your answer is simply wrong. You should consider flagging this one as the right answer. Jul 21, 2014 at 10:26
  • Ah, I didn't realise he was responding to my answer rather than my question. Indeed that opening sentence was potentially misleading - it was specific to the original question, in which $this was the only variable being passed, and function() use () is not valid. Fixed.
    – tjbp
    Aug 12, 2014 at 22:51

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.