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I want to use a global variable setup where they are all declared, initialized and use friendly syntax in PHP so I came up with this idea:

<?
error_reporting(E_ERROR | E_WARNING | E_PARSE | E_NOTICE);

$GLOBALS['debugger'] = 1;                   // set $GLOBALS['debugger'] to 1 
DEFINE('DEBUGGER','$GLOBALS["debugger"]');  // friendly access to it globally

echo "1:" . DEBUGGER . ":<br>";
echo "2:" . ${DEBUGGER}. ":<br>";
echo "3:" . $GLOBALS['debugger'] . ":<br>";
if (DEBUGGER==1) {echo "DEBUG SET";}
?>

generates the following:

1:$GLOBALS["debugger"]:

Notice: Undefined variable: $GLOBALS["debugger"] in /home/tra50118/public_html/php/test.php on line 8

2::

3:1:

How can there be an error with 2: when clearly $GLOBALS["debugger"] IS defined? And then not generate a similar notice with the test at line 10?

I think what I am trying to do is to force PHP to interpret a string ($GLOBALS["debugger"]) as a variable at run time i.e. a constant variable variable

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9  
Suggestion: Stop. Don't do it. Forget about globals. Seriously. –  rdlowrey May 8 '12 at 4:38
    
You're not supposed to use globals because globals are not nice. –  Simeon Visser May 8 '12 at 4:39
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4 Answers

Disclaimer: I agree with the comments, globals are generally a bad idea.

That said, there's a few questions here that are worth answering, and the concept of indirection is useful, so here goes.

${'$GLOBALS["debugger"]'} is undefined. You don't include the leading '$' when using indirection. So, the correct version would be define('DEBUGGER', 'GLOBALS["debugger"]').

But, this doesn't work either. You can only access one level down via indirection. So you can access the array $GLOBALS, but you can't access keys in that array. Hence, you might use :

define('DEBUGGER', 'debugger');
${DEBUGGER};

This isn't useful, practically. You may as well just use $debugger directly, as it's been defined as a global and will be available everywhere. You may need to define global $debugger; at the start of functions however.

The reason your if statement is not causing notices is because you defined DEBUGGER to be a string. Since you aren't trying to use indirection in that line at all, it ends up reading as:

if ("$GLOBALS['debugger']"==1) {echo "DEBUG SET";}

This is clearly never true, though it is entirely valid PHP code.

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I think you may have your constants crossed a bit.

DEFINE('DEBUGGER','$GLOBALS["debugger"]'); sets the constant DEBUGGER to the string $GLOBALS["debugger"].
Note that this is neither the value nor the reference, just a string.

Which causes these results:

1: Output the string $GLOBALS["debugger"]
2: Output the value of the variable named $GLOBALS["debugger"]. Note that this is the variable named "$GLOBALS["debugger"]", not the value of the key "debugger" in the array $GLOBALS. Thus a warning occurs, since that variable is undefined.
3: Output the actual value of $GLOBALS["debugger"]

Hopefully that all makes sense.

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OK, thanks to all who answered. I think I get it now, I am new to PHP having come form a C++ background and was treating the define like the C++ #define and assuming it just did a string replace in the precompile/run phase.

In precis, I just wanted to use something like

DEBUGGER = 1;

instead of

$GLOBALS['debugger'] = 1;

for a whole lot of legitimate reasons; not the least of which is preventing simple typos stuffing you up. Alas, it appears this is not doable in PHP. Thanks for the help, appreciated.

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1  
Constants are already global in php. You just need to use DEFINE('DEBUGGER', 1); –  gview May 9 '12 at 23:52
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You can not use "variable variables" with any of the superglobal arrays, of which $GLOBALS is one, if you intend to do so inside an array or method. To get the behavior you would have to use $$, but this will not work as I mentioned.

Constants in php are already global, so I don't know what this would buy you from your example, or what you are going for.

Your last comparison "works" because you are setting the constant to a string, and it is possible with PHP's typecasting to compare a string to an integer. Of course it evaluates to false, which might be surprising to you, since you expected it to actually work.

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Actually, I don't know about the other superglobals, but when I was running some tests for my own answer, the following did work: $foo = 'GLOBALS'; var_dump(${$foo});. You just can't index into the array, so it's somewhat useless. –  Matthew Scharley May 9 '12 at 23:49
    
@Matthew: Yes, that will work, but not inside a function or method. That's such a severe limitation I pretty much discount its use, but I should have been more clear. –  gview May 9 '12 at 23:54
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