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this is the function:

public function func(&$parameters = array())
{
}

now I need to do this:

$x->func (get_defined_vars());

but that fails. Another way:

$x->func (&get_defined_vars());

it drops an error: Can't use function return value in write context in ...

Then how to do it?

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You can't return an argument you've passed by reference, that's probably the error. Also, it should be public function func(... and not public func function(.... Give us the code for the whole method. –  Second Rikudo Nov 11 '11 at 8:01

3 Answers 3

up vote 5 down vote accepted

get_defined_vars() returns an array, not a variable. As you can only pass variables by reference you need to write:

$definedVars = get_defined_vars();
func($definedVars);

Though I don't really see a reason to pass the array by reference here. (If you are doing this for performance, don't do it, as it won't help.)

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yea, Im doing it for performance, no help? I thought a reference is less sized than arrays... –  user893856 Nov 11 '11 at 8:14
1  
References in 99% of cases have nothing to do with size. It's just a way to pass a variable, so you can change it inside a function, see php.net/manual/en/language.references.return.php and php.net/manual/en/language.references.pass.php –  hakre Nov 11 '11 at 8:24
    
@user893856 PHP is smarter when you think in most cases. If you don't change the $array in the function it will never get copied. The reference might actually make the code slower ;) –  NikiC Nov 11 '11 at 14:01
public  function func(&$parameters = array())
{
}

Not defined correctly.

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ok, I was writing it from scratch, but that didnt solve the problem –  user893856 Nov 11 '11 at 8:02
1  
The answer by @NikiC should solve the problem. –  abhinav Nov 11 '11 at 8:10

Try this way:-

call_user_func_array( 'func', $parameters );

See the notes on the call_user_func_array() function documentation for more information.

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