Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I know I cannot overload methods in PHP. And, as far as I know, private methods in a class are invisible to classes that extend the base class. So why this does not work?

class Base {
  private function foo($arg) {
     print "Base $arg";
  }
}

class Child extends Base {
  public function foo() {
     print "Child";
  }
}

$c = new Child;
print $c->foo();

The error:

PHP Strict Standards: Declaration of Child::foo() should be compatible with Base::foo($arg) in /var/www/boludo.php on line 17

I assumed that foo($arg) method is invisible in Child class because is private. So, I'm not overloading foo, I'm just creating a method called foo.

share|improve this question
    
you are calling a property, not a method –  bivoc Aug 17 '13 at 12:25
    
@Simon_eQ sorry, now its fixed (I was trying another code, if you look at the error Child:foo() is called :P) –  enrmarc Aug 17 '13 at 12:26
2  
They are not invisible at core level. They are unaccessible. –  Royal Bg Aug 17 '13 at 12:27
3  
What do you expect to get if some other method in Base calls $this->foo(), and that method gets called in an object of type Child? You have overwritten the method, but the original code has not to expect it, because the method was private. –  Sven Aug 17 '13 at 12:42
2  
@enrmarc actually I found it practically, very roughly said: you cannot hide anything from PHP. If you extend a class, the PHP core does know each method in the Base class, no matter it's private, public, protected, static, etc... And it's its job to prevent you from accessing them. So, once PHP is aware of that, at compiling time it blocks your access to the private method. It's not about visibility, it's about accessibility. If you read, for example, the C# manual for the same thing, you will never see the word "visibility": msdn.microsoft.com/en-us/library/st6sy9xe.aspx –  Royal Bg Aug 17 '13 at 12:54

2 Answers 2

up vote 3 down vote accepted

To fix the Notice, simply change foo() in the Child to

public function foo($arg = null) {

As to the question "why does this not work":

Visibility in PHP is strictly about runtime access. It doesn't affect how you can extend/compose/overload classes and methods. Loosening the visibility of a private method from a Supertype in a Subtype will add a separate method in the subtype with no access to the same named method in the supertype. However, PHP will assume a parent-child relationship for these. That didn't cause the Notice though. At least, not on it's own.

The reason why you get the Notice, is that you are then also trying to change the method signature. Your foo() does no longer require $arg to be passed to it. When you assume a parent-child relationship between the methods, this is a problem because the Liskov Substitution Principle states that "if S is a subtype of T, then objects of type T may be replaced with objects of type S" without breaking the program. In other words: if you have code that uses Base, you should be able to replace Base with Child and the program should still work as if it was using Base.

Assume your Base also has a public method bar().

class SomeClientUsingBase
{
    public function doSomethingWithBase(Base $base)
    {
        $result = $base->bar();
        // …

Now imagine Child changes bar() to require an argument. If you then pass Child for Base into the client, you will break the client, because the client calls $base->bar(); without an argument.

Obviously, you could change the client to pass an argument, but then the code really depends on how Child defined the method, so the Typehint is wrong. In fact, Child is not a Base then, because it doesn't behave like a Base. It's broken inheritance then.

Now the funny thing is, if you remove that $arg from foo(), you are technically not violating LSP, because the client would still work. The Notice is wrong here. Calling $base->foo(42) in a client that previously used Base will still work with a Child because the Child can simply ignore the argument. But PHP wants you to make the argument optional then.

Note that LSP also applies to what a method may return. PHP just doesn't include the return type in the signature, so you have take that into account yourself. Your methods have to return what the Supertype returned or something that is behaviorally equivalent.

share|improve this answer
    
Thanks, now it makes sense to me. –  enrmarc Aug 17 '13 at 16:07
    
The original question was not violating LSP, since the author wanted to add a method to the public interface, not change its signature. It's a limit of the language: if a method is private, it should be completely ignored by the deriving classes. That said, I wouldn't add an ignored field to a public method just to work around this limit, changing the private method's name would be an option. –  Iacopo Aug 22 '13 at 10:27
    
@lacopo Changing the visibility alone would have worked. But also changing the signature is what caused the Notice. And the notice is due to PHP's interpretation of LSP. It's actually two things at play here and my answer explains both. You might want to call that a bug or a limit of the language, but I think it's more helpful to the OP to explain how the language works than ramble how it should work. On a side note: deriving a child shouldn't necessitate changing the parent. –  Gordon Aug 22 '13 at 10:54
    
The story about LSP isn't relevant to private functions, to be honest. Actually, PHP realizes this and doesn't have the child function overwrite the parent function. However, for some reason it does require the signatures to be the same (on penalty of a strict error) which I would say is an error on PHP's part. –  Jasper Sep 4 '13 at 17:46
    
@Jasper I agree, but it's not irrelevant then. PHP assumes LSP here. Correctly or not, the "for some reason" is why it makes the explanation about LSP relevant. –  Gordon Sep 4 '13 at 19:59

You can do function overloading in PHP using __call function: http://www.php.net/manual/en/language.oop5.overloading.php#object.call

Apart from that, your problem is that in that way, you violate the Substitutability principle: http://en.wikipedia.org/wiki/Liskov_substitution_principle

Something that PHP uses. In that way, if you replace an object of Base class type to one with a Child class type, Substitutability is violated. You are changing the interface of the base class in the derived one, removing the argument of method foo(...) and in this way, objects of Base class type can not be replaced with objects of Child class type without breaking the program, thus violating Liskov's Substitutability Principle (LSP).

share|improve this answer
    
Thanks Nick, I wish I could accept the two answers. –  enrmarc Aug 17 '13 at 16:10
    
You are welcome enrmarc, I hope I helped you!! –  Nick L. Aug 17 '13 at 17:53

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.