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class Person{

     var $name = "Omer";

     function get_name(){
         return $this->name;//Why not $this->$name ?
     }
}

Thanks

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2 Answers 2

up vote 4 down vote accepted

If you use $this->$name it will actually look for a property in $this with the name of whatever $name is equal to. So, in your example, $this->$name would look for $this->Omer.

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To illustrate what @Aaron has so eloquently answered, the following would compile:

class Person{
     var $name = "Omer";
     function get_name(){
         $varname = 'name';
         return $this->$varname;
     }
}
$Person = new Person;
echo $Person->get_name(); // output = Omer
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