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Consider the following example:

// does not work
foo( func_num_args() );

// works
$args = func_num_args();
foo( $args );

Why specifically does the former fail and the latter work?

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1 Answer

up vote 4 down vote accepted

Note:

Because this function depends on the current scope to determine parameter details, it cannot be used as a function parameter in versions prior to 5.3.0. If this value must be passed, the results should be assigned to a variable, and that variable should be passed.

http://php.net/func_num_args

In other words: because of the way this function works internally. The runtime is in a different state when it's inside a regular function body and when it's evaluating expressions to be used as parameters to another function. This was changed in 5.3.

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+1 Nice catch. I was about about to post a comment saying "works for me". (But I'm using the newest version of php...) –  Ben Lee Feb 23 '12 at 3:30
    
I understand that, what I don't understand is how assigning the value to a variable and passing the variable is different from just passing the function. –  Moses Feb 23 '12 at 3:33
    
@Moses Just added my interpretation of it. Realize that this function is pretty much an internal hack of the runtime. Until 5.3 it wasn't even a very good hack. –  deceze Feb 23 '12 at 3:34
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