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The following code raises a TypeError :


>>> class X:
...   def a(self):
...     print "a"
...
>>> class Y(X):
...   def a(self):
...     super(Y,self).a()
...     print "b"
...
>>> c = Y()
>>> c.a()
Traceback (most recent call last):
  File "", line 1, in 
  File "", line 3, in a
TypeError: super() argument 1 must be type, not classobj

If , however I replace class X with class X(object) , the same code will work . I am using python 2.5.2 .What's the explanation for this ?

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1  
your "however I replace class X with class X(object)" fixed my problem ! thanx –  AliBZ May 24 '13 at 17:35

3 Answers 3

up vote 108 down vote accepted

The reason is that super() only operates on new-style classes, which in the 2.x series means extending from object.

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2  
From what python version did this become default behaviour ? –  Geo Jan 28 '09 at 20:51
    
@tsunami: version 2.2 –  Triptych Jan 28 '09 at 20:52
4  
2.2 was when new-style classes were introduced, 3.0 is where they became the default. –  Cody Brocious Jan 28 '09 at 20:54
4  
@tsunami if you want to get at the superclass, do "X.a(self)" –  James Brady Jan 28 '09 at 20:54
    
I think you misunderstood me . Triptych . I remember I was using a python version less than 3.0 , and I didn't specifically said that my class inherits from Object , and the call to super worked . Maybe it's default behaviour from 2.6 ? Just saying :) –  Geo Jan 28 '09 at 20:55

In addition, don't use super() unless you have to. It's not the general-purpose "right thing" to do with new-style classes that you might suspect.

There are times when you're expecting multiple inheritance and you might possibly want it, but until you know the hairy details of the MRO, best leave it alone and stick to:

 X.a(self)
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2  
is that correct because in my 6 months of Python/Django I've been using super as the "general right thing to do " ? –  philgo20 Apr 7 '10 at 16:06
    
Well it doesn't hurt you for single inheritance in itself (except that it's a bit slower), but it doesn't get you anything on its own either. You have to design any methods that need to multiply-inherit (most notably __init__) to pass through arguments in a clean and sensible way, otherwise you'll get TypeErrors or worse debugging problems when someone tries to multiply-inherit using your class. Unless you've really designed to support MI in this way (which is quite tricky), it's probably better to avoid the implication super has that the method is MI-safe. –  bobince Apr 7 '10 at 17:36

I tried the various X.a() methods; however, they seem to require an instance of X in order to perform a(), so I did X().a(self), which seems more complete than the previous answers, at least for the applications I've encountered. It doesn't seem to be a good way of handling the problem as there is unnecessary construction and destruction, but it works fine.

My specific application was Python's cmd.Cmd module, which is evidently not a NewStyle object for some reason.

Final Result:

X().a(self)
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