Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Code speaks better than words:

namespaces.php:

<?php

namespace foo;

use foo\models;

class factory
{
    public static function create($name)
    {
        /*
         * Note 1: FQN works!
         * return call_user_func("\\foo\\models\\$name::getInstance");
         *
         * Note 2: direct instantiation of relative namespaces works!
         * return models\test::getInstance();
         */

        // Dynamic instantiation of relative namespaces fails: class 'models\test' not found
        return call_user_func("models\\$name::getInstance");
    }
}

namespace foo\models;

class test
{
    public static $instance;

    public static function getInstance()
    {
        if (!self::$instance) {
            self::$instance = new self;
        }

        return self::$instance;
    }

    public function __construct()
    {
        var_dump($this);
    }
}

namespace_test.php:

<?php

require_once 'namespaces.php';

foo\factory::create('test');

As commented, if I use the full-qualified name inside call_user_func() it works as expected, but if I use relative namespaces it says the class was not found – but direct instantiations works. Am I missing something or its weird by design?

share|improve this question
1  
I believe this is by design. The same rule applies for functions like defined(), constant(), etc. Check out this comment. –  Passerby Feb 4 '13 at 7:52

2 Answers 2

up vote 4 down vote accepted

You have to use the fully qualified classname in callbacks.

See Example #3 call_user_func() using namespace name

<?php

namespace Foobar;

class Foo {
    static public function test() {
        print "Hello world!\n";
    }
}

call_user_func(__NAMESPACE__ .'\Foo::test'); // As of PHP 5.3.0
call_user_func(array(__NAMESPACE__ .'\Foo', 'test')); // As of PHP 5.3.0

I believe this is because call_user_func is a function from the global scope, executing the callback from the global scope as well. In any case, see first sentence.

Also see the note aboveExample #2 Dynamically accessing namespaced elements which states

One must use the fully qualified name (class name with namespace prefix).

share|improve this answer
1  
I'd seen this manual entry before ask but I thought it was just an example, now it's clear that's a rule... Sometimes they lacks better documentation comments. Thank you! :) –  Paulo Freitas Feb 4 '13 at 8:11
    
I've to confess that I totally missed the section "Namespaces and dynamic language features" from the manual... Thanks again for pointing it out, next time I'll take more attention when I read the manual! :) –  Paulo Freitas Feb 5 '13 at 22:27

In current versions of PHP, the way you have it is the way it is -- when using a string to reference a classname, it needs to be fully qualified with it's complete namespace. It's not great, but that's the way it is.

In the forthcoming PHP v5.5, they will include a feature to address this, by providing a new Classname::class syntax, which you can use instead of putting the FQN classname in a string.

For more info on this, please see the relevant PHP RFC page here: https://wiki.php.net/rfc/class_name_scalars

Your code would look something like this:

return call_user_func([models\$name::class,"getInstance"]);

That may not be exact; I don't have a copy of 5.5 to test with to confirm. But either way, the new syntax will make things a lot better for use cases like yours.

share|improve this answer
    
It's great to know that they are aware that and making things better to us, thanks for that info! :) –  Paulo Freitas Feb 4 '13 at 21:39

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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