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Say I have a class in Python that has an eq method defined for comparing attributes for equality:

class Foo(object):
    # init code...

    def __eq__(self, other):
        # usual eq code here....

How can I then compare two instances of Foo for reference equality (that is test if they are the same instance)? If I do:

f1 = Foo()
f2 = Foo()
print f1 == f2

I get True even though they are different objects.

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Nevermind, figured it out, the "is" operator: f1 = Foo() f2 = Foo() print f1 is f2 returns false. Reference: tutorialspoint.com/python/python_basic_operators.htm –  Adam Parkin Sep 1 '11 at 17:30
    
Nice work finding the answer yourself. Even though you solved the problem yourself, it's still apropriate to place the solution as a regular answer, not a comment to the question. –  IfLoop Sep 1 '11 at 17:32
    
is is correct, but you can also use id(f1) == id(f2). –  agf Sep 1 '11 at 17:32
    
Which I tried to do, but don't have the rep yet for doing so. –  Adam Parkin Sep 1 '11 at 17:32
    
@agf: nice idea, but that sounds suspicously like an answer to the question. Consider adding it as such. –  IfLoop Sep 1 '11 at 17:33
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3 Answers

up vote 7 down vote accepted

Thats the is operator

print f1 is f2
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Yeah I figured that out almost right after posting. :) Will accept this answer in a few mins. Thanks. –  Adam Parkin Sep 1 '11 at 17:31
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Use the is keyword.

print f1 is f2

Some interesting things (that are implementation dependent I believe, but they are true in CPython) with the is keyword is that None, True, and False are all singleton instances. So True is True will return True.

Strings are also interned in CPython, so 'hello world' is 'hello world' will return True (you should not rely on this in normal code).

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Just to note another wart of the CPython implementation: ids of ints are not always the same... x=123123; ...some code...; x is 123123 will sometimes fail. This is because int "objects" are dynamically allocated, so sometimes duplicates are created. To my knowledge, only ints and strings are dynamically created this way, so they're the only time one has to worry about is behaving like this. –  Eli Collins Sep 1 '11 at 17:38
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f1 is f2 checks if two references are to the same object. Under the hood, this compares the results of id(f1) == id(f2) using the id builtin function, which returns a integer that's guaranteed unique to the object (but only within the object's lifetime).

Under CPython, this integer happens to be the address of the object in memory, though the docs mention you should pretend you don't know that (since other implementation may have other methods of generating the id).

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