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This question already has an answer here:

When I was looking at answers to this question, I found I didn't understand my own answer.

I don't really understand how this is being parsed. Why does the second example return False?

>>> 1 in [1,0]             # This is expected
True
>>> 1 in [1,0] == True     # This is strange
False
>>> (1 in [1,0]) == True   # This is what I wanted it to be
True
>>> 1 in ([1,0] == True)   # But it's not just a precedence issue!
                           # It did not raise an exception on the second example.

Traceback (most recent call last):
  File "<pyshell#4>", line 1, in <module>
    1 in ([1,0] == True)
TypeError: argument of type 'bool' is not iterable

Thanks for any help. I think I must be missing something really obvious.


I think this is subtly different to the linked duplicate:

Why does the expression 0 < 0 == 0 return False in Python?.

Both questions are to do with human comprehension of the expression. There seemed to be two ways (to my mind) of evaluating the expression. Of course neither were correct, but in my example, the last interpretation is impossible.

Looking at 0 < 0 == 0 you could imagine each half being evaluated and making sense as an expression:

>>> (0 < 0) == 0
True
>>> 0 < (0 == 0)
True

So the link answers why this evaluates False:

>>> 0 < 0 == 0
False

But with my example 1 in ([1,0] == True) doesn't make sense as an expression, so instead of there being two (admittedly wrong) possible interpretations, only one seems possible:

>>> (1 in [1,0]) == True
share|improve this question

marked as duplicate by Veedrac python Nov 10 '14 at 6:58

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

1  
Operator precedence... the == binds tighter than in, so [1,0] == True gets evaluated first, then the result of that gets fed to 1 in other_result. – Marc B Feb 14 '12 at 21:26
    
I've removed the Python-2.7 tag, since Python 3.2 behaves the same way. – lvc Feb 14 '12 at 21:27
1  
@Marc B: Doesn't explain the second expression – Scott Hunter Feb 14 '12 at 21:28
30  
@MarcB, the question included a test using parentheses to disprove that interpretation. – Mark Ransom Feb 14 '12 at 21:29
up vote 168 down vote accepted

Python actually applies comparison operator chaining here. The expression is translated to

(1 in [1, 0]) and ([1, 0] == True)

which is obviously False.

This also happens for expressions like

a < b < c

which translate to

(a < b) and (b < c)

(without evaluating b twice).

See the Python language documentation for further details.

share|improve this answer
32  
Additional proof for this, 1 in [1, 0] == [1, 0] evaluates to True. – Andrew Clark Feb 14 '12 at 21:29
7  
I've long thought of this as a language wart. I would have preferred that the in operator have a higher precedence than other comparison operators and that it not chain. But perhaps I'm missing a use case. – Steven Rumbalski Feb 14 '12 at 21:54
3  
nice catch, I didn't even think of that. It doesn't make much sense to allow chaining of in - after all x < y < z makes sense, but not so much with x in y in z – BlueRaja - Danny Pflughoeft Feb 14 '12 at 22:00
6  
@Sven Useful: maybe. Readable: definitely not. Python purports to emulate common mathematical typography with this convention, but when used with in this is simply no longer the case and makes it quite counter-intuitive. – Konrad Rudolph Feb 15 '12 at 0:42
5  
@KonradRudolph: I've seen thinks like "1 ≤ x ∈ ℝ" in mathematical texts more than once, but I basically agree with you. – Sven Marnach Feb 15 '12 at 1:00

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