-1

I'm really stuck with references in php. In my programm i've got something similiar to this:

  1. Programm

    class Test
    {
        private $_property;
    
        function __construct($property)
        {
            $this->_property = $property;
        }
    
        public function setProperty($property)
        {
            $this->_property = $property;
        }
    
        public function getProperty()
        {
            return $this->_property;
        }
    }
    
    function doSmth(Test $var)
    {
        $newVar = new Test('test');
    
        //I need to do something here...
    }
    
    $var = new Test('original');
    
    doSmth($var);
    
    var_dump($var);
    
  2. Question

What should i do to copy all contents of $newVar variable to my $var variable so that i will be able to see it after using var_dump() function that is outside of function doSmth(). And i can't use getters and setters in my programm because i've got a lot of them and it will be a lot of code. Is it possible to solve this problem with my limitations?

UPDATE: I can't return value in my function doSmth() and i also tried __clone but nothing works. Can someone show me how can i do it with __clone()?

1

3 Answers 3

4

It is possible to create a copy of object by using a clone keyword. It will help you to create full replica of source object. OR, what I think also might be useful for you, you can try to pass Test object by reference:

function doSmth(Test &$var)
{
    // Here you can do something with your var
}
0
2

$newVar only exists in the context of the function.

What you want to do is to create a return value like this:

function doSmth(Test $var)
{
    $newVar = new Test('test');

    //I need to do something here...

    return $newVar;
}

and call the function like this instead:

$myNewShinyVar=doSmth($var);

This way, your function returns the object of the class Test as a a return value.

var_dump($myNewShinyVar);

Edit: If you cannot return a value, you can pass by reference instead:

function doSmth(&$var)
{
    $var = new Test('test');
}

This will modify the variable itself that is passed as a parameter to it (rather than passing a copy of it)

doSmth($var);
var_dump($var);
3
  • why can't you? it is not said in the question.
    – artragis
    Commented Sep 18, 2012 at 15:10
  • Sorry, i forgot to mention this. Commented Sep 18, 2012 at 15:15
  • Thanks your edits helped me. But i always thought that objects in php are copied by reference, correct me if i am wrong? Commented Sep 18, 2012 at 15:28
0

If I read your question a number of times I think is this what you are after:

function doSmth(Test $var)
{
  $newvar = clone $var;
  // do some stuff on a copy of $var, leaving $var intact
}

$var = new Test('original');

doSmth($var);

var_dump($var);

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