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I have the following code

<?php
$f = 'exit';
print "function '$f' \n";
$f();
print "end \n";
?>

that produce this error message:

Fatal error: Call to undefined function exit()

Why can find PHP no exit() function? If I replace the $f(); with a exit(); it works find.

Br

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Why are you thinking this should work? –  ceejayoz Apr 13 '12 at 17:56
1  
Just in general, I think this is a bad idea. This will make the code horribly hard to maintain by developers coming after you. –  uotonyh Apr 13 '12 at 17:58
1  
Why wouldn't you just call the exit function? –  Jordan Apr 13 '12 at 19:24
    
I know this is a bad idea for production systems. This was only a test to explore PHP. Thx for your answers! –  TheFox Apr 13 '12 at 22:13

2 Answers 2

up vote 1 down vote accepted

try this: eval($f."();");

Its not a nice way but have to work

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This is horribly inefficient, and potentially insecure. The PHP manual even recommends that you NEVER use eval(). php.net/manual/en/function.eval.php –  Keith Palmer - consolibyte Jun 14 '12 at 2:38
    
yup, that why i said thas its not a nice way.. But if the only way to do that in the context that he is pointing, of course, there its a logical "problem" if u need to take the eval function as a solution. –  Quaid Jun 14 '12 at 15:50

Straight from the PHP manual:

Note: Because this is a language construct and not a function, it cannot be called using variable functions.

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