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class Works(type):
    def __new__(cls, *args, **kwargs):
        print([cls,args]) # outputs [<class '__main__.Works'>, ()]
        return super().__new__(cls, args)

class DoesNotWork(type):
    def __new__(*args, **kwargs):
        print([args[0],args[:0]]) # outputs [<class '__main__.doesNotWork'>, ()]
        return super().__new__(args[0], args[:0])

Works() # is fine
DoesNotWork() # gets "RuntimeError: super(): no arguments"

As far as I can see, in both cases super._new__ receives the class literal as first argument, and an empty tuple as the 2nd.

So why does one give an error and the other not?

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  • 1
    You're not using cls from __new__ in your DoesNotWork... (also - you really should be using *args in super() as well to keep signatures correct...
    – Jon Clements
    Sep 4, 2016 at 0:39
  • Im not explicitly giving __new__ in DoesNotWork a concrete 1st argument, but the arguments super() is being passed are identical, so I dont understand the error. Using *args gives me TypeError: type() takes 1 or 3 arguments error though thats a seperate question.
    – Luken
    Sep 4, 2016 at 0:53
  • Is there any particular reason you're using __new__ and not __init__ - it looks like you're really trying to use the later...
    – Jon Clements
    Sep 4, 2016 at 1:15
  • No reason, I just to know why I get an error in one case and not the other.
    – Luken
    Sep 4, 2016 at 1:19
  • In its other form (in non-classmethods), super(cls) is the same as super(cls, the_first_argument_passed_to_this_function). I suspect something similar is happening here - super() is trying to default to super(first_argument_passed_to_this_function), but *args and **kwargs don't count as a arguments (because they're a special case), so it fails.
    – Aran-Fey
    Sep 4, 2016 at 2:52

1 Answer 1

21

The zero-argument form of super requires that the method containing it have an explicit (i.e., non-varargs) first argument. This is suggested by an older version of the docs (emphasis added):

The zero argument form automatically searches the stack frame for the class (__class__) and the first argument.

For some reason this note was removed in later versions of the docs. (It might be worth raising a doc bug, because the docs are quite vague about how zero-argument super works and what is required for it to work.)

See also this Python bug report (which is unresolved, and not clearly accepted as even a bug). The upshot is that zero-argument super is magic, and that magic fails in some cases. As suggested in the bug report, if you want to accept only varargs, you'll need to use the explicit two-argument form of super.

4
  • 2
    Thanks for providing an answer, Python is so unfinished at times.
    – mins
    Jan 13, 2019 at 13:35
  • in my case, my class init function has the first parameter with self and the super() was working. then i added 3-10 lines of code before the call to super() and somehow that broke the super(). FWIW: my python class is running in a browser via skulpt... so my application is not traditional. Apr 8, 2021 at 13:30
  • @TrevorBoydSmith: If you want help with that you should ask a separate question.
    – BrenBarn
    Apr 8, 2021 at 19:44
  • @BrenBarn no i fixed the issue. i was reporting that i got the same issue... but in a different way. Apr 9, 2021 at 17:33

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