This question already has an answer here:

Is there a more idiomatic way to accomplish the following in Python3?

if i%1 == 0 and i%2 == 0 and i%3 == 0 and i%4 == 0 and i%5 == 0 and i%6 == 0 and i%7 == 0 and i%8 == 0 and i%9 == 0 and i%10 == 0 and i%11 == 0 and i%12 == 0 and i%13 == 0 and i%14 == 0 and i%15 == 0 and i%16 == 0 and i%17 == 0 and i%18 == 0 and i%19 == 0 and i%20 == 0:

I'm trying to find the smallest positive number that is evenly divisible by all of the numbers from 1 to 20. I'm not looking for a new solution. I'm looking for a neater way to express what I am doing above.

marked as duplicate by Josh Caswell, pilcrow, Community Oct 17 '16 at 22:39

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  • Try using a for loop. Also, please format your code. – Balthazar Oct 17 '16 at 22:23
up vote 6 down vote accepted

Yes use all with range:

if all(i % j == 0 for j in range(1, 21)): # python2 -> xrange(2, 21) 
   # do whatever

If all i % j == 0, it will return True otherwise it will short circuit and return False if there is any remainder for i % j. Also, checking if i % 1 is redundant so you can start at 2.

Or conversly, check if there is not any i % j with a remainder.

if not any(i % j for j in range(2, 21)):

Or if you prefer functional:

if not any(map(i.__mod__, range(2, 21)))
  • 1
    Or on Py2, for mild perf benefits, xrange. Not a big deal either way though, given the range is small. – ShadowRanger Oct 17 '16 at 22:26
  • @ShadowRanger, true, added a comment. – Padraic Cunningham Oct 17 '16 at 22:29

You can use the all function combined with a list comprehension - or better yet - a generator expression:

if all(i%(1 + j) == 0 for j in range(20)):

Use a for loop in a while loop.

num = 1;
while(True): #keeps going until it finds the number
    b = True #remains true as long as it is divisible by div
    for div in range(1,21):
        if not (num % div == 0):
            b = False #number was not divisible, therefore b is now false
            num += 1
            break
    if(b): #b means num was divisible by all numbers.
        break
print(num)

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