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This is a question about unclear documentation.

Consider the following example code:

class Foo(object):
    def __eq__(self, other):
        print('eq')

f = Foo()

result = None <= f
print result
>>> True

The official documentation says:

If no __cmp__(), __eq__() or __ne__() operation is defined, class instances are compared by object identity (“address”).

Foo implements __eq__, so according to the documentation, the default strategy of comparing object id should not be invoked. I'm guessing that, in fact, comparison of object id is exactly what's going on, and that the documentation is buggy. Is this correct?

Should the documentation say

If __cmp__() would be invoked but is not defined, then the two objects are compared by their ids.

?

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You’re right; congratulations. –  U2744 SNOWFLAKE Jul 16 at 3:36
    
@minitech: Is that sarcasm? I can't tell if you're actually suggesting that this is a documentation bug. If so I will report. –  DanielSank Jul 16 at 3:37
    
No, but I’m not sure what else to say. It’s not really much of a bug, and it’s gone in Python 3, since __cmp__ doesn’t exist. Strictly speaking, it’s not wrong, since it doesn’t say “if and only if”. =) –  U2744 SNOWFLAKE Jul 16 at 3:39
    
@minitech: Indeed. It is confusing, however. –  DanielSank Jul 16 at 3:41
    
Your __eq__ is called for None == f, but not for <= or >=', __le__` and __ge__ not being implemented in your class. If you define __le__ and __ge__ they will be called for the corresponding operator. The documentation still seems wrong though. –  mhawke Jul 16 at 4:01

1 Answer 1

I think this is because The None have not define __le__ method:

class Foo(object):
        def __eq__(self, other):
            print('eq')

f = Foo()

test1 = None
id( test1 )
id( f )
test1 <= f # id( test1 ) <= id( f ), equals to test1.__le__(f), output  True in my machine
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