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>>> [l for l in range(2,100) if litheor(l)!=l in sieve(100)]
[2, 3, 5, 7, 11, 13, 17, 19, 23, 29, 31, 37, 41, 43, 47, 53, 59, 61, 67, 71, 73, 79, 83, 89, 97]
>>> 2 in sieve(100)
True
>>> litheor(2)
True

So litheor(2) is True and 2 in sieve(100) is True, so the if clause in the list comprehension is False. But why is 2 still in the output of the list comprehension?

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up vote 11 down vote accepted

Ok, at first it sounds crazy, but:

>>> True != 2 in [2,3,5]
True
>>> (True != 2) in [2,3,5]
False
>>> True != (2 in [2,3,5])
False

When you realise that this is not a simple precedence issue, looking at the AST is the only remaining option:

>>> ast.dump(ast.parse("True != 2 in [2,3,5]"))
"Module(body=[Expr(value=
Compare(left=Name(id='True', ctx=Load()), ops=[NotEq(), In()], comparators=[Num(n=2), List(elts=[Num(n=2), Num(n=3), Num(n=5)], ctx=Load())])
)])"

And here is a little hint:

>>> ast.dump(ast.parse("1 < 2 <= 3"))
'Module(body=[Expr(value=
Compare(left=Num(n=1), ops=[Lt(), LtE()], comparators=[Num(n=2), Num(n=3)])
)])'

So, it turns out, True != 2 in [2,3,5] is interpreted similar to 1 < 2 <= 3. And your expression

litheor(l) != l in sieve(100)

means

litheor(l) != l and l in sieve(100)

which is True.

share|improve this answer
    
Thanks. 1, however, is not in sieve(100). Is there anything else that may have gone wrong? – Sylvester V Lowell Jun 7 '13 at 0:39
    
@SylvesterVLowell Well, might be one of the following: 1) sieve(100) containing not only integers but also boolean True; 2) litheor(2) returning 2 instead of boolean and sieve(100) containing 0. I can't see any other options. Could you show us your definitions of sieve and litheor, please? – kirelagin Jun 7 '13 at 8:45
    
@SylvesterVLowell Oh wait… You are right… That's totally crazy… – kirelagin Jun 7 '13 at 8:55
1  
@SylvesterVLowell Please see my updated answer. – kirelagin Jun 7 '13 at 9:18

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