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How can I call a method of an object passed as a parameter in PHP?

This is the first class defined in thefirstclass.php

class TheFirstClass {

    private $_city='Madrid';

    public function city() {
        return $_city
    }   
}

This is the second class defined in thesecondclass.php

class TheSecondClass {

    public function myMethod($firstClassObject) {

        echo "City: " . $firstClassObject->city(); // <- Why This method doesn´t work?      

    }
}

And finally, this is include_once "class/thefirstclass.php"; include_once "class/thesecondclass.php";

$firstClassObject = new TheFirstClass();
$secondClassObject = new TheSecondClass();

$secondClassObject->myMethod($firstClassObject);
share|improve this question
2  
Could you explain what you mean by does not work? Maybe I'm too drunk but it should. –  kapa Nov 25 '11 at 11:08
    
@jlb I don't see method chaining here. –  kapa Nov 25 '11 at 11:11
    
This is a simplification of the code to explain the problem clearly with a short example. The $_city var really has a value, but the method city() returns nothing when I call $firstClassObject->city() in the second object method maybe because I'm doing something wrong passing the parameters. –  Jimmy Nov 25 '11 at 11:12
    
@bazmegakapa i swear i saw it in there.. my bad! –  jlb Nov 25 '11 at 11:14
2  
What about return $this->_city? :) –  Quasdunk Nov 25 '11 at 11:15

1 Answer 1

up vote 1 down vote accepted

The problem doesn't lie in the call to TheFirstClass::city within TheSecondClass::myMethod, but rather that TheFirstClass::city returns a local variable ($_city) rather than an instance variable ($this->_city). Unlike in languages such as C++, in PHP instance variables must always be accessed through an object, even in methods.

This is the working code:

class TheFirstClass {
    private $_city = "a";

    public function city() {
        return $this->_city;
    }   
}

class TheSecondClass {
    public function myMethod($firstClassObject) {
        echo "City: " . $firstClassObject->city(); // <- Why This method doesn´t work?
    }
}

$test = new TheFirstClass();
$test2 = new TheSecondClass();
$test2->myMethod($test);
share|improve this answer
    
A good example why it's a good reason to enable error reporting in dev environments and pay attention (even to notices). I believe this would have been picked up if you had... –  liquorvicar Nov 25 '11 at 13:49

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