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# GCD calculator using euclidean algorithm
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def euclid_gcd(x,y) :
    new_gcd = y
    remainder = x % y
    print x,y, new_gcd, remainder
    if(remainder != 0) :
        euclid_gcd(y,remainder)   
    else :
        print x,y, new_gcd, remainder
        return new_gcd

print 'x | y | new_gcd | remainder'
print euclid_gcd(252,198)

However, when I run this code it returns this...

x | y | new_gcd | remainder
252 198 198 54
198 54 54 36
54 36 36 18
36 18 18 0
36 18 18 0
None

It should return 18 in this case yet it returns none where did I go wrong everything seems to be following the logical steps??

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2 Answers 2

You should do return euclid_gcd(y,remainder).

You forgot to return the recursion result here:

if(remainder != 0) :
    euclid_gcd(y,remainder)   
share|improve this answer
    
Oh yea? where should I place that please? –  cat Oct 30 '12 at 3:46
    
@cat when remainder != 0 –  iMom0 Oct 30 '12 at 3:47
1  
@cat, see my updated answer:) –  Marcus Oct 30 '12 at 3:47
2  
@cat: Most compiled languages wouldn't let you get away (as in won't compile) with returning something in one part, but not another. The same thing applies here - you have to return the value you get back from the method call, or it won't give you back an answer. –  Makoto Oct 30 '12 at 3:53
1  
@cat, I believe Makoto has described this better than I can :) –  Marcus Oct 30 '12 at 3:54

Another way to solve your problem

def euclid_gcd(x, y):
    new_gcd = y
    remainder = x % y
    print x, y, new_gcd, remainder
    if remainder != 0:
        new_gcd = euclid_gcd(y, remainder)   
    print x, y, new_gcd, remainder
    return new_gcd

I suggested this because it seems strange otherwise to have the variable new_gcd if you only ever initialise it to y

The reason that you were getting None is because Python implicitly returns None if the function doesn't explicitly return anything

share|improve this answer
    
Thank you so much! –  cat Oct 30 '12 at 4:00

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