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Lets say I have

class Super():
  def method1():
    pass

class Sub(Super):
  def method1(param1, param2, param3):
      stuff

Is this correct? Will calls to method1 always go to the sub class? My plan is to have 2 sub classes each override method1 with different params

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4 Answers 4

Python will allow this, but if method1() is intended to be executed from external code then you may want to reconsider this, as it violates LSP and so won't always work properly.

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Is the violation of LSP on the fact that Sub.method1 takes 3 arguments while Super.method1 takes none making them in fact different interfaces? –  Unode May 18 '11 at 16:59
    
@Unode: Correct. This could be solved by having the arguments of the subclass's method all have default values, but then you get into which defaults would be appropriate. –  Ignacio Vazquez-Abrams May 18 '11 at 17:02
1  
I see. But then just to clarify. If the parent method1 was defined as Super.method1(param1=None, param2=None, param3=None) it would still violate LSP if on subclasses it's defined as Sub.method1(param1, param2, param3) right? As attributes are mandatory in one case but not the other. Hence to my understanding without changing the subclass interface, the only way to not violate LSP would be having the parameters without default values on the parent. Am I correct on this or over-interpreting the LSP? –  Unode May 18 '11 at 18:44
1  
@Unode: Also correct. Having the contract become less restrictive in the subclass violates LSP. –  Ignacio Vazquez-Abrams May 18 '11 at 18:47

In python, all class methods are "virtual" (in terms of C++). So, in the case of your code, if you'd like to call method1() in super class, it has to be:

class Super():
    def method1(self):
        pass

class Sub(Super):
    def method1(self, param1, param2, param3):
       super(Sub, self).method1() # a proxy object, see http://docs.python.org/library/functions.html#super
       pass

And the method signature does matter. You can't call a method like this:

sub = Sub()
sub.method1() 
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It will work:

>>> class Foo(object):
...   def Bar(self):
...     print 'Foo'
...   def Baz(self):
...     self.Bar()
... 
>>> class Foo2(Foo):
...   def Bar(self):
...     print 'Foo2'
... 
>>> foo = Foo()
>>> foo.Baz()
Foo
>>> 
>>> foo2 = Foo2()
>>> foo2.Baz()
Foo2

However, this isn't generally recommended. Take a look at S.Lott's answer: Methods with the same name and different arguments are a code smell.

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Yes. Calls to "method1" will always go to the subclass. Method signature in Python only consist of the name and not the argument list.

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False answer. Method signature always matters, because there is no function overloading as it happens C/C++. –  BasicWolf May 17 '11 at 17:33
    
What I mean, is Python doesn't consider the argument list to decide what method to call, but I guess you're right when looking at it from that angle! –  Elektito May 17 '11 at 17:38

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