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I've recently stumbled over this expression:

True == False in (False,)

It evaluates to False, but I don't understand why. True == False is False and False in (False,) is True, so both (to me) plausible possibilities

True == (False in (False,))

and

(True == False) in (False,)

evaluate to True, as I would have expected. What is going wrong here?

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7  
possible duplicate of Why does (1 in [1,0] == True) evaluate to False? –  agf Mar 27 '12 at 12:15
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1 Answer

up vote 9 down vote accepted

I believe this is a corner case of Python's comparison-operator chaining. It gets expanded to

 (True == False) and (False in (False,))

which evaluates to False.

This behavior was intended to match conventional math notation (e.g. x == y == z meaning that all three are equal, or 0 <= x < 10 meaning x is in the range [0, 10)). But in is also a comparison operator, giving the unexpected behavior.

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Does this make sense in Python, because I can see what is happening but the in operator has a completely different function to == so why does it undergo this comparison operator chaining? –  jamylak Mar 27 '12 at 12:26
    
in is like the others in that it looks at two values and returns a bool, according to the relation between the two values. –  Mechanical snail Mar 27 '12 at 12:28
1  
In addition, it is useful to note that this expression is quivalent to False and True which will evaluate to False, due to short circuit evaluation. –  Burhan Khalid Mar 27 '12 at 12:32
1  
@burhan False and True evaluates to False no matter what -- short circuiting behavior has nothing to do with it. –  agf Mar 27 '12 at 12:42
    
Well how about True and True and False and True? The last value is never evaluated, which is what I think was @burhan's point. –  Droogans Mar 27 '12 at 15:10
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