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For some reason I can't get this to work:

<?php 
class Number{
    public $number;
    public $number_added;


    public function __construct(){
        $this->number_added = $this->add_two();
    }

    public function add_two(){
        return $this->number + 2;
    }
}   
?>

$this->number is set from Database, $this->number_two should be DB value + 2. However, when I echo $this->number_added, it returns two. The $number value was initialized correctly. This is a simplified example of my problem just to see if what I am trying to do possible? PHP OOP beginner.

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closed as too localized by PeeHaa, cryptic ツ, NullPoiиteя, X.L.Ant, Sudarshan Feb 24 '13 at 11:37

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well your class methods are outside of your actual class, for one.. –  David Harris Feb 5 '13 at 0:10
    
Sorry, typo, you responded while I was editing! :) Thanks!. –  Jursels Feb 5 '13 at 0:11
    
You told that you are getting the class from db.. means with PDO using fetchClass? –  hek2mgl Feb 5 '13 at 0:13

1 Answer 1

up vote 3 down vote accepted

You aren't setting the $number property anywhere prior to its use in add_two() (via the constructor), therefore PHP evaluates it as 0 during the addition.

You should pass in initial state during object construction, for example

public function __construct($number) {
    $this->number = $number;

    $this->number_added = $this->add_two();
}

Update

Allow me to illustrate the problem. Here's your current code and how I imagine you're using it

$number = 2;

$obj = new Number();
// right here, $obj->number is null (0 in a numeric sense)
// as your constructor calls add_two(), $obj->number_added is 2 (0 + 2)

$obj->number = $number;
// now $obj->number is 2 whilst $obj->number_added remains 2

Using my updated constructor, here is what happens

$number = 2;

$obj = new Number($number);
// $obj->number is set to $number (2) and a call to add_two() is made
// therefore $obj->number_added is 4
share|improve this answer
    
he said $number is set from the database, probably somewhere we can't see since it is a public variable. –  David Harris Feb 5 '13 at 0:13
    
@DavidHarris He isn't setting it before the call to add_two() in the constructor though, therefore it is undefined. –  Phil Feb 5 '13 at 0:14
    
oh, yeah -- I didn't really think about that lol. –  David Harris Feb 5 '13 at 0:15
    
I am initializing $number straight from the DB result. If I echo it there is a value associated with it. –  Jursels Feb 5 '13 at 0:16
1  
@Jursels When are you setting it? If it's after object creation (via new Number()), then it's too late to be used in the constructor –  Phil Feb 5 '13 at 0:17

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