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I need to test whether each number from 1 to 1000 is a multiple of 3 or a multiple of 5. The way I thought I'd do this would be to divide the number by 3, and if the result is an integer then it would be a multiple of 3. Same with 5.

How do I test whether the number is an integer?

here is my current code:

n = 0
s = 0

while (n < 1001):
    x = n/3
    if isinstance(x, (int, long)):
        print 'Multiple of 3!'
        s = s + n
    if False:
        y = n/5
        if isinstance(y, (int, long)):
            s = s + n

    print 'Number: '
    print n
    print 'Sum:'
    print s
    n = n + 1
share|improve this question
1  
In Python 2.x, integer division always yields an integer. –  Russell Borogove Nov 3 '11 at 22:19
3  
You should be printing "Fizz" and "Buzz" –  wim Nov 3 '11 at 23:21
5  
Project Euler Problem 1 ? –  Ashutosh Dave Jan 30 '13 at 13:56

4 Answers 4

up vote 33 down vote accepted

You do this using the modulus operator, %

n % k == 0

evaluates true if and only if n is an exact multiple of k. In elementary maths this is known as the remainder from a division.

In your current approach you perform a division and the result will be either

  • always an integer if you use integer division, or
  • always a float if you use floating point division.

It's just the wrong way to go about testing divisibility.

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1  
@Taimur answered updated –  David Heffernan Nov 3 '11 at 21:40
    
perfect, thanks a lot! –  Taimur Nov 3 '11 at 21:42
    
Great tip! Thanks –  sidonaldson Sep 3 at 11:21

For small numbers n%3 == 0 will be fine. For very large numbers I propose to calculate the cross sum first and then check if the cross sum is a multiple of 3:

def is_divisible_by_3(number):
    if sum(map(int, str(number))) % 3 != 0:
        my_bool = False
    return my_bool
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1  
Is calculating the cross sum and using the modulus operation really faster than directly using the modulus operation? If so, shouldn't you call your function recursively until the number is "small" enough? –  honk Aug 9 at 6:43

The simplest way is to test whether a number is an integer is int(x) == x. Otherwise, what David Heffernan said.

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public class Check {

    public void check(int x){
        StringBuilder sb = new StringBuilder();
        sb.append(x);
        if(x%3==0)
            sb.append("#");
        if(x%5==0)
            sb.append("*");
        System.out.println(sb);     
    }
    public static void main(String[] args) {
        Check test=new Check();     
        for(int i=0;i<=1000;i++)
            test.check(i);
    }
}
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