12

When using Python's super() to do method chaining, you have to explicitly specify your own class, for example:

class MyDecorator(Decorator):
    def decorate(self):
        super(MyDecorator, self).decorate()

I have to specify the name of my class MyDecorator as an argument to super(). This is not DRY. When I rename my class now I will have to rename it twice. Why is this implemented this way? And is there a way to weasel out of having to write the name of the class twice(or more)?

6

The BDFL agrees. See Pep 367 - New Super for 2.6 and PEP 3135 - New Super for 3.0.

  • Link to the current version of the PEP: python.org/dev/peps/pep-3135 – sth Jan 21 '09 at 19:50
  • super() without arguments does not work on Python 2.6.1 – jfs Jan 21 '09 at 20:53
  • PEP 367 appears to have been "superceded". I see no evidence that this was added to 2.7. I think it's a 3.x-only feature. – Vultaire Jun 12 '15 at 19:54
  • @Vultaire: it's one of those things you have to from __future__ import. I think this is true for all 2.x, where x >= 6, but it's builtin for 3.x. – Peter Rowell Jun 12 '15 at 23:39
  • @PeterRowell Are you sure? In 2.7.8, "from __future__ import new_super" (the form in PEP 367) does not seem to work for me. Did the syntax get changed post-PEP367? ...I see no mention of this in the docs or anything; I only see it in that PEP. I really doubt it's in 2.7. (Unless someone can provide a working example.) – Vultaire Jun 13 '15 at 15:37
11

Your wishes come true:

Just use python 3.0. In it you just use super() and it does super(ThisClass, self).

Documentation here. Code sample from the documentation:

class C(B):
    def method(self, arg):
        super().method(arg)    
        # This does the same thing as: super(C, self).method(arg)
3

This answer is wrong, try:

def _super(cls):
    setattr(cls, '_super', lambda self: super(cls, self))
    return cls

class A(object):
    def f(self):
        print 'A.f'

@_super
class B(A):
    def f(self):
        self._super().f()

@_super
class C(B):
    def f(self):
        self._super().f()

C().f() # maximum recursion error

In Python 2 there is a way using decorator:

def _super(cls):
    setattr(cls, '_super', lambda self: super(cls, self))
    return cls

class A(object):
    def f(self):
        print 'A.f'

@_super
class B(A):
    def f(self):
        self._super().f()

B().f() # >>> A.f
0

you can also avoid writing a concrete class name in older versions of python by using

def __init__(self):
    super(self.__class__, self)
    ...
  • 4
    No, that won't work because class will give you the most specific subclass for the instance, not necessarily the one in the context of the class we are writing. – airportyh Jan 21 '09 at 21:59
  • 2
    I feel it's unfair to the author to down-vote this answer. This answer makes a naive but common misconception. It deserves stating here, along with toby's explanation of why this fails to work. There's worth in reporting methods which DON'T work, too. – gotgenes Jan 22 '09 at 4:58

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