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I have strange problem. This is just constructor method of class, not worth to show other code, anyway, look at this code:

Class xy {
    public $x = 10;
    public $y = 10; 

    public function __construct($x = NULL, $y = NULL) {
        if(isset($x) || isset($y)){
            $this->x = $x;      // assign center coords
            $this->y = $y;      // assign center coords
        }
        $this->area = $this->area();
        echo $this->x . " " . $this->y . " " . $this->area;
    }

}

Since now, I thought that this code should echo $this->x and $this->y WITHOUT if(isset($x) || isset($y)){, if its not passed in on object making with this code: $newObj = new xy; But it doesn't. It works only if this line looks like this $newObj = new xy(10,10);

I need help and clarification :)

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1  
Will changing isset() to !is_null() help? –  Passerby Oct 19 '12 at 10:08
    
$x === NULL || $this->x = $x; same for the second argument. Only set if not default. You need to do that per argument. –  hakre Oct 19 '12 at 16:26
    
@Passerby, isset is logically equivalent to !is_null (their return values are identical for all inputs). –  goat Oct 19 '12 at 16:29

2 Answers 2

I haven`t use php for years, but I think it should looks like $newObj = new xy();

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1  
Just tried your code with $newObj = new xy(); It works fine. –  Alexey Sidorov Oct 19 '12 at 13:39
    
The point is, that I think, it should work without 6th and 9th row in code, shouldn't it? –  RobertR Oct 20 '12 at 14:10
change $newObj = xy(10,10); to $newObj = new xy(10,10);
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