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I have this code:

class A
{
 public $db
}

class B
{
 public $cssA 

 public function __construct()
 {
  $this->cssA = new A();
 }
}

The question is, how can I call a method in class B from class A?

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2  
I don't understand the question at the end, could you rephrase it? –  Sean Jun 4 '11 at 10:41

2 Answers 2

up vote 3 down vote accepted

You can't as there is no reference to the object of class B.

class A {
   public $db;

   private $b;

   public function __construct(B $b) {
       $this->b = $b;
   }
}

class B {
   private $a;

   public function __construct() {
       $this->a = new A($this);
   }
}

Methods of object of class B can be now accessed through $this->b->doSomething() within object of class A.

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1  
This will create a copy of $this on the class A-object, which is impreferable. You can better use 'pass-by-reference' instead, so $this->a = new A(&$this);. I know this is not PHP's best aspect, but it's the best way to go about this in this case. –  KilZone Jun 4 '11 at 10:57
3  
Objects are always passed-by-reference in PHP5+. –  Crozin Jun 4 '11 at 10:59
    
Not a total reference, but good enough for the example (and BTW: even scalars/non-objects are only copied under the hood if you change one of them, until then PHP will just let multiple varnames point to the same value in memory, test: '$a=5;$b=$a;debug_zval_dump($a);debug_zval_dump($b);$a=6;debug_zval_dump($b);de‌​bug_zval_dump($a);) –  Wrikken Jun 4 '11 at 13:33
    
@Kilzone that's only in PHP4 OOP, which this is not compatible with. The use of the magic method __construct(), access levels (public/protected/private) indicates that this is PHP5 OOP in use. –  damianb Jun 4 '11 at 14:26
    
You're right, ignore my comment, my mistake. I've not done this construction for quite some time (usually use the same technique as CodeIgniter implements, got it from studying their code), so a little out of practise, again my appologies. –  KilZone Jun 4 '11 at 15:10

You would have to instantiate class b within class a and then call the method...

$this->aProp = new A();
$this->aProp->classAfunction();
$aVal = $this->aProp->publicProperty;

Basic oo programming stuff.

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your code snippet lacks context for $this -- is it supposed to be in class A? class B? You don't say directly, which will confuse those new to OO design. –  damianb Jun 4 '11 at 14:28
    
The question sets up the context for the answer to your comment. The question specifically states that he wants to access class a methods from class b; so, the location of this code should be in class b based on such context. –  Scott Harwell Jun 4 '11 at 14:32

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