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In Python 2.7

When asking the interpreter the following:

(1 or 3) > 2 it returns False

Why is this? What am I effectively asking the interpreter, apparently not if either 1 or 3 is greater than two.

Similarly, asking (1 or 5) in range(2,6) also returns False

I am 100% sure it has to do with my (x or y) part of the statement, but again, why is this? I do not so much need a different way of stating something like this, as I understand I could just ask:

if x in range(2,6) or y in range(2,6):

But I was just wondering why it does not work!

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2  
or doesn't work how you think it does - it takes the left hand side, and right hand side, calls bool() on them both, and checks if either of the resulting values is True, and the first one that is is returned (or False if none do). The best way to do this would be any(x > 2 for x in (1, 3)). –  Lattyware Mar 6 '13 at 8:14
1  
@Lattyware, one small correction, it doesn't try to evaluate the right side if the left side evaluates to True. –  Gil Mar 6 '13 at 8:18
    
@Gil True, I oversimplified it a little in my explanation. –  Lattyware Mar 8 '13 at 1:07

5 Answers 5

up vote 4 down vote accepted

Let's examine (1 or 3) > 2:

The correct way to express what you're trying to express is:

>>> 1 > 2 or 3 > 2
True

Another, more general, way is as follows:

>>> t = (1, 3)
>>> any(el > 2 for el in t)
True

Here, t can be any iterable.

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This makes sense! Thank you! It will not seperately evaluate every integer between parentheses, as for any two integers it will just return the first? –  Rym Mar 6 '13 at 8:16
1  
@Rym unless the first integer is 0 –  Volatility Mar 6 '13 at 8:17
1  
+1 for the link, that is a great link. :) –  Inbar Rose Mar 6 '13 at 8:18
    
Thank you very much, great explanation! –  Rym Mar 6 '13 at 8:46
    
Yet another way would be max(1, 3) > 2 –  Janne Karila Mar 6 '13 at 9:14

1 corresponds to true. Thus the result for

1 or 3

is

1

and

1 > 2

is false.

And you could have known this if you had tried the answer for 1 or 3

in the shell.

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That's not the proper use case for boolean operations. The first should be:

(1 > 2) or (3 > 2)

The expression:

(1 or 3)  > 2

will first work out 1 or 3 then attempt to figure out if that is greater than two.

Similarly:

(1 or 5) in range(2,6)

is probably better expressed as either:

(1 in range(2,6)) or (5 in range(2,6))

or:

((1 >= 2) and (1 < 6)) or ((5 >= 2) and (5 < 6))
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1 (understood as number) is evalued true (all numbers are evaluated to true, except 0), so there isn't the need to evalute 3 (understood as number).
This because you use an OR condition, that "stop" evaluation onto first true value that find.
So, is 1 > 2? The answer is false

You have to decompose or if into two separate condition:

1 > 2 or 3 > 2
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I'm gonna throw my two cents into this question as well.

When Python evaluates your statement

(1 or 3) > 2

This is what it does, Hey! Let's take first number and call bool() on it. Any number here that isn't 0 will be evaluated to True and return that.

You can try (10000 or 3), it will always return the most left hand "variable" as long its not 0

Example of the opposite would be if you had

(0 or 3)

It then goes on to evaluate the rest of the expression, which basically will say in pseudocode:

returned number (wheter its the left or right) is greater than 2

And this is where it gets weird, your expression will always then differ because of how the parenthesis was evaluated. In your case it'll be

1 > 2 == False but (0 or 3) > 2 == True

As for the range part, the same logic applies. In the parenthesis the left hand number will be "returned" and thusly, wont be available in your range check.

(1 or 4) in range(2,5) == False

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If I had any more reputation I'd upvote this answer as well. Thanks a lot for your input! –  Rym Mar 6 '13 at 8:47
    
No worries, mate! Glad to help a bit! :) –  limelights Mar 6 '13 at 8:50

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