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Helo everybody, i have a very noob question about python precedence. I have the following code:

def gcdIter(a, b):
   ans = min(a,b)
   while ((a%ans is not 0) and (b%ans is not 0)):
       ans -= 1
   return ans

My question is about the while logical statement. I added several parenthesis just to make sure that the expression would be evaluated the way i was thinking, but is not. The while loop is being breaked before the both expressions are true. Were i'm wrong?

I found a way to do the same thing without using two expressions, in:

def gcdIter(a, b):
   ans = min(a,b)
   while ((a%ans + b%ans is not 0)) :
       ans -= 1
   return ans

But i still wanna know why the first code isn't running the way i think it should. Thanks in advance.

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"The while loop is being breaked before the both expressions are true" maybe you're confused about how while loops work..? –  thebjorn Mar 3 '13 at 12:05
    
The while loop will break when either condition is False. If you want them both to have to be False, use or. –  sapi Mar 3 '13 at 12:11
    
Problem solved. I used and whe i should used for. Thanks to everybody for such a warm welcome in my first question here! –  Lucas Ribeiro Mar 3 '13 at 13:35

1 Answer 1

Do not use identity testing (is or is not) to test for numerical equality. Use == or != instead.

while a%ans != 0 and b%ans != 0:

is tests for object identity (that both operators are the same python object), which is not the same thing as testing if the values are equivalent.

Since 0 is also considered False in a boolean context, you can even omit the != in this case:

while a % ans and b % ans:

The fractions module already has a gcd() function that implements the greatest common divisor algorithm correctly:

from fractions import gcd

print gcd(a, b)

It uses the Euclidian algorithm, python style:

def gcd(a, b):
    """Calculate the Greatest Common Divisor of a and b.

    Unless b==0, the result will have the same sign as b (so that when
    b is divided by it, the result comes out positive).
    """
    while b:
        a, b = b, a%b
    return a
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