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I get this error when I try to use autoload and namespaces:

Fatal error: Class 'Class1' not found in /usr/local/www/apache22/data/public/php5.3/test.php on line 10

Can anyone tell me what I am doing wrong?

Here is my code:

Class1.php:

<?php

namespace Person\Barnes\David
{
    class Class1
    {
        public function __construct()
        {
            echo __CLASS__;
        }
    }
}

?>

test.php:

<?php

function __autoload($class)
{
    require $class . '.php';
}

use Person\Barnes\David;

$class = new Class1();

?>
share|improve this question

5 Answers 5

up vote 41 down vote accepted
+100

Class1 is not in the global scope.

See below for a working example:

<?php

function __autoload($class)
{
    $parts = explode('\\', $class);
    require end($parts) . '.php';
}

use Person\Barnes\David as MyPerson;

$class = new MyPerson\Class1();

Edit (2009-12-14):

Just to clarify, my usage of "use ... as" was to simplify the example.

The alternative was the following:

use Person\Barnes\David;

$class = new Person\Barnes\David\Class1();
share|improve this answer
    
Thanks, I didn't realize I had to to "use ... as". –  David Barnes Dec 11 '09 at 21:24
    
No worries David. Also see the edit for a clarification. –  enbuyukfener Dec 14 '09 at 3:58
1  
You don't have to use AS. That's not why this solution works. You could just as easily do: use Person\Barnes\David\Class1; (which is equivalent to use Person\Barnes\David\Class1 as Class1;). –  cartbeforehorse Oct 2 '13 at 13:35
1  
Thanks ,this works. But I cant understand why we can just use $class = new Class1(); when we have already defined "use Person\Barnes\David; " before ? –  user346665 Feb 18 at 13:13
2  
@user346665 you must use use Person\Barnes\David\Class1; in order to do $class = new Class1();. With use Person\Barnes\David; you must do $class = new David\Class1();. The use keyword by itself is the equivalent of use Person\Barnes\David\Class1 as Class1; or use Person\Barnes\David as David;, respectively for each example. –  Justin C Feb 22 at 23:30

had the same issue and just found this :

When you create a subfolder structure matching the namespaces of the containing classes, you will never even have to define an autoloader.

    spl_autoload_extensions(".php"); // comma-separated list
    spl_autoload_register();

It worked like a charm

More info here : http://www.php.net/manual/en/function.spl-autoload-register.php#92514

EDIT: this causes problem on Linux because of backslash... See here for working solution by immeëmosol

Namespace Autoload works under windows, but not on Linux

share|improve this answer

I see that the autoload functions only receive the "full" classname - with all the namespaces preceeding it - in the following two cases:

[a] $a = new The\Full\Namespace\CoolClass();

[b] use The\Full\Namespace as SomeNamespace; (at the top of your source file) followed by $a = new SomeNamespace\CoolClass();

I see that the autoload functions DO NOT receive the full classname in the following case:

[c] use The\Full\Namespace; (at the top of your source file) followed by $a = new CoolClass();

UPDATE: [c] is a mistake and isn't how namespaces work anyway. I can report that, instead of [c], the following two cases also work well:

[d] use The\Full\Namespace; (at the top of your source file) followed by $a = new Namespace\CoolClass();

[e] use The\Full\Namespace\CoolClass; (at the top of your source file) followed by $a = new CoolClass();

Hope this helps.

share|improve this answer

As mentioned Pascal MARTIN, you should replace the '\' with DIRECTORY_SEPARATOR for example:

$filename = BASE_PATH . DIRECTORY_SEPARATOR . str_replace('\\', DIRECTORY_SEPARATOR, $class) . '.php';
include($filename);

Also I would suggest you to reorganize the dirrectory structure, to make the code more readable. This could be an alternative:

Directory structure:

ProjectRoot
 |- lib

File: /ProjectRoot/lib/Person/Barnes/David/Class1.php

<?php
namespace Person\Barnes\David
class Class1
{
    public function __construct()
    {
        echo __CLASS__;
    }
}
?>
  • Make the sub directory for each namespace you are defined.

File: /ProjectRoot/test.php

define('BASE_PATH', realpath(dirname(__FILE__)));
function my_autoloader($class)
{
    $filename = BASE_PATH . '/lib/' . str_replace('\\', '/', $class) . '.php';
    include($filename);
}
spl_autoload_register('my_autoloader');

use Person\Barnes\David as MyPerson;
$class = new MyPerson\Class1();
  • I used php 5 recomendation for autoloader declaration. If you are still with PHP 4, replace it with the old syntax: function __autoload($class)
share|improve this answer

Your __autoload function will receive the full class-name, including the namespace name.

This means, in your case, the __autoload function will receive 'Person\Barnes\David\Class1', and not only 'Class1'.

So, you have to modify your autoloading code, to deal with that kind of "more-complicated" name ; a solution often used is to organize your files using one level of directory per "level" of namespaces, and, when autoloading, replace '\' in the namespace name by DIRECTORY_SEPARATOR.

share|improve this answer
1  
This is not what I found. When I did put the statement die($class); in the __autoload function, it printed out 'Class1"', not 'Person\Barnes\David\Class1' –  David Barnes Dec 2 '09 at 6:02
    
True. $class parameter of autoload is the class name as written in constructor call. –  tishma Feb 6 '13 at 12:29
    
Downvote for "Your __autoload function will receive the full class-name, including the namespace name" - this is only true if you have explicitly used the class you're trying to reference, not if you've merely used the namespace it belongs to. The OP's mistake was that he'd used the namespace containing a class and was then expecting his autoload function to magically get passed the full classpath somehow. This answer doesn't really address the OP's mistake. –  Mark Amery Nov 30 at 19:45

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