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Why I can't redefine the __and__ operator?

class Cut(object):
      def __init__(self, cut):
         self.cut = cut
      def __and__(self, other):
         return Cut("(" + self.cut + ") && (" + other.cut + ")")

a = Cut("a>0") 
b = Cut("b>0")
c = a and b
print c.cut()

I want (a>0) && (b>0), but I got b, that the usual behaviour of and

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b = cut("b>0") should be Cut (uppercase) –  joaquin Apr 19 '10 at 15:35

2 Answers 2

up vote 8 down vote accepted

__and__ is the binary (bitwise) & operator, not the logical and operator.

Because the and operator is a short-circuit operator, it can't be implemented as a function. That is, if the first argument is false, the second argument isn't evaluated at all. If you try to implement that as a function, both arguments have to be evaluated before the function can be invoked.

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Note that you could allow overloading of and with short circuiting by providing a more complex interface, as has been suggested for Python (python.org/dev/peps/pep-0335), though it is not supported. –  Mike Graham Apr 19 '10 at 15:55
    
Interesting, I hadn't seen that PEP. –  Ned Batchelder Apr 19 '10 at 16:32

because you cannot redefine a keyword (that's what and is) in Python. __add__ is used to do something else:

These methods are called to implement the binary arithmetic operations (...&...

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1  
According to this weird distinction of keyword and operator, it shouldn't be possible to redefine in. But __contains()__ is perfectly valid... –  glglgl Jun 25 '13 at 16:47

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