6

I'm trying to use the eval() function like that :

$foo = 'eval';
$bar = 'echo 1;';
$foo($bar);

But i'm getting an error : Fatal error: Call to undefined function eval()

That's strange because the following code is working

$foo = 'base64_encode';
$bar = 'foobar';
echo $foo($bar);

Can anyone help about it ?

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  • 1
    It's because it's evil !
    – adeneo
    Apr 17, 2015 at 19:33

1 Answer 1

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From the eval documentation:

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

Following the link in the note you will also find:

Variable functions won't work with language constructs such as echo, print, unset(), isset(), empty(), include, require and the like. Utilize wrapper functions to make use of any of these constructs as variable functions.

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  • 1
    @ficuscr There can be extremely practical and useful uses for eval. The problem is that it is abused.
    – Anonymous
    Apr 17, 2015 at 19:35
  • Grudgingly agree... Though they are few and far between. And not in this way - pretty sure the variable function isn't for readability. Seen more valid use cases for goto...
    – ficuscr
    Apr 17, 2015 at 19:37

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