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I know 2 is a prime number, but when this code is ran it doesn't match the if statement condition if n % x == 0. but 2 % 2 == 0 so it should be a equal:

for n in range(2, 10):
    for x in range(2, n):
        if n % x == 0:
           print(n, 'equals', x, '*', n//x)
           break
    else:
    # loop fell through without finding a factor
         print(n, 'is a prime number')
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  • docs.python.org/2/tutorial/…
    – Andrew Li
    Commented Sep 15, 2016 at 1:22
  • @AndrewL.It's ironic that you're posting a link to the same place where the OP got the code for his/her question :-) Which the OP should have mentioned.
    – aneroid
    Commented Sep 15, 2016 at 1:44
  • What makes you think it ever tests 2 % 2? Commented Sep 15, 2016 at 1:44
  • @KevinJ.Chase well at the time i thought that n was the iteration from 2 to 9 in for x in range(2,n) and x = 2 and n = 2 would be excuted in the if statement condition
    – bgallday
    Commented Sep 15, 2016 at 4:21

1 Answer 1

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From the Python documentation of range()

For a positive step, the contents of a range r are determined by the formula r[i] = start + step*i where i >= 0 and r[i] < stop.

A range object will be empty if r[0] does not meet the value constraint.

So when n = 2, range(2, n) is an empty range, because r[0] is 2 and that doesn't meet the constraint 2 < 2. Therefore for loop never runs, so it never breaks, and as a result, the else: block is executed and reports that it's prime.

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  • The second parameter is called "stop" and the value used here is n. So I'd say it does stop at n. And since this is about Python 3, range(2, n) is not a list. Commented Sep 15, 2016 at 1:45

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