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I have some confusion about $this and &$this, please describe this point .

Update:

Thanks for reply. I know about pass by value and pass by reference. Please see the following program.

/////////////////////////////////////////////////////
class my_class
{
    var $my_var;
    function my_class ($var)
    {
        global $obj_instance;
        $obj_instance = $this;
        $this->my_var = $var;
    }
}
$obj = new my_class ("something");
echo $obj->my_var;
echo $obj_instance->my_var;
////////////////////////////////////

In this program $obj_instance = $this; is copy the variable but output of this somethingsomething but when I am using $obj_instance = &$this; the output is somethings. Why is it different?

Thank you.

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hi thanks to see by question please can any describe the program and resolve by confusion i am very thank to you. –  rupesh kumar singh May 5 '11 at 7:22
    
hi thanks to reply it not a matter of accessibility i only want to know about program $obj_instance = $this; is copy the variable but output of this somethingsomething but when i am using $obj_instance = &$this; out put is somethings why? –  rupesh kumar singh May 5 '11 at 7:34
    
my php error on but i am not getting any notice and warning try to run this script. you defiantly get whats a problem and easy to understand –  rupesh kumar singh May 5 '11 at 7:43
    
what @Gordon says answers your question - the reference to &$this that you pass to $object_instance will be valid only for as long as the function runs. Outside it, it will expire. You should be getting a warning. –  Pekka 웃 May 5 '11 at 8:01
    
but i am not getting any notice and warning while running a script please run it and confirm. –  rupesh kumar singh May 5 '11 at 9:02

1 Answer 1

This is expected behavior. Quoting http://php.net/manual/en/language.references.whatdo.php:

If you assign a reference to a variable declared global inside a function, the reference will be visible only inside the function. You can avoid this by using the $GLOBALS array.

and thus the result of your code is just "something". It will also emit a notice about "Trying to get property of non-object" (when error reporting is enabled).

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