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Say you are overwriting a method in a subclass with a different arity:

class A
  def foo(arg)          # arity is 1
    # doing something here
  end
end

class B < A
  def foo(arg1, arg2)   # arity is 2
    super(arg1)         # <- HERE
  end
end

Is there a way to get the arity of super on line HERE?

(The real use case: I'm calling super knowing that the superclass doesn't take any arguments. However, if the superclass implementation (in a gem) ever changes, I'd like to issue a warning.)

Thanks for your help!

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2  
Not sure if there's a simpler way.. self.class.superclass.instance_method(__method__).arity __method__ is from 1.9 you can be explicit with a symbol const too –  Lee Jarvis Oct 22 '12 at 12:02

1 Answer 1

up vote 3 down vote accepted

Regarding your real use case: there's no need to check the arguments yourself. Just call

super()

and Ruby will raise an ArgumentError if the argument count doesn't match.

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+1, makes more sense to me. I think he would also like to rescue from ArgumentError and throw a warning there. –  shime Oct 22 '12 at 12:38
1  
Answering the question by saying that the answer is unncessary, are we? –  Boris Stitnicky Oct 22 '12 at 14:51
2  
@BorisStitnicky you don't have to reinvent the wheel if the desired functionality is already built-in, do you? –  Stefan Oct 22 '12 at 17:25
1  
Well, it is certainly imaginable to write a method that determines arity of super() using trial and error. But svoops question is deeper than that. It touches the issue of super() being somwhat 'indirect' method call. It raises more issues than just arity. For example, how do I locate super()? How do I know from which ancestor module is it taken? How do I obtain unbound method from it? A hacky answer cover these issues up. I was looking forward to someone giving a real answer, using #arity method. –  Boris Stitnicky Oct 23 '12 at 17:11

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