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In file config.php

$_CONFIG = array();
require_once("config.inc.php");
var_dump($_CONFIG);

In file config.inc.php

$_CONFIG = array('x' => 'y', ...);
var_dump($_CONFIG);

The output of this code, when run from the command line is:

array(15) {
  ["x"]=>
  string(1) "y"
  ...
}
array(0) {
}

If I remove the first line of config.php which initializes the empty $_CONFIG array, the script works, and the var_dumps are identical.

Note that this is a script run from a command line. Any idea why this is happening? I've tried this on two separate machines, one with PHP 5.3.3 and the other with PHP 5.3.5.

Update - This only seems to be an issue with the command line. When run from a browser, it seems fine. Also, there is a third file I forgot to mention, which is including config.php

test.php

require_once("/path/to/config.php");

When running test.php, not config.php from the command line, I get the output above.

share|improve this question
    
I created the same files and see expected result - the same array twice. Could you reproduce it with 2 small files? –  zerkms Feb 28 '12 at 20:33
    
Works exactly as expected for me.. PHP 5.3.10. –  spencercw Feb 28 '12 at 20:33
    
Works for me :-) –  PeeHaa Feb 28 '12 at 20:34
    
are you sure you told us everything what's in those files? php --version ? –  Karoly Horvath Feb 28 '12 at 20:35
    
When you define $_CONFIG inside config.inc.php, do you do it inside a function? The problem can to be related to global variables not being accessible, so, the "redefinition" is taken as a different local variable (i.e. a problem with the scope of the variables). –  jap1968 Feb 28 '12 at 20:36

1 Answer 1

The situation you describe does not produce the output you describe. There is something else going on in; there is additional code not placed in the question.

From a very simple test:

$ ls -la
-rw-rw-r--   1 jon jon    59 2012-02-28 20:37 config.inc.php
-rw-rw-r--   1 jon jon    83 2012-02-28 20:37 config.php

$ cat config.*
<?php
$_CONFIG = array('x' => 'y');
var_dump($_CONFIG);
?>
<?php

$_CONFIG = array();
require_once('config.inc.php');
var_dump($_CONFIG);

?>
$ php config.php
array(1) {
  ["x"]=>
  string(1) "y"
}
array(1) {
  ["x"]=>
  string(1) "y"
}

Possible causes of the output you see:

  • config.inc.php uses a namespace, defining a new copy of $_CONFIG not in the global namespace
  • require_once('config.inc.php'); is checking your include path first and is including a different config.inc.php to the one you are expecting
share|improve this answer
    
It is not including a different config.inc.php file, because otherwise there would be no var_dump (i.e. any edits I made to that file were immediately evident in the output). I forgot to mention though that there is a third file including config.php. So I would run that 3rd file from the command line, not config.php itself. –  andrewtweber Feb 28 '12 at 20:46

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