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So I decided to learn python this weekend and I started with my default hello world, the prime solver. This code shouldn't work... But for whatever reason it does (for numbers 5 and higher.)

#!/usr/bin/python
a = 2
while a < 65535:
    c = 0
    a = a + 1
    b = 2
    while b != a:
        if a % b == 0:
            #print a, "is not prime. LCD is ", b
            break
        b = b + 1
     if a - 1 == b: c = 1
 if c == 1: print a, " is prime"

The next to the last conditional should always be false, and yet somehow a -1 == b for all primes 5 and up.

Can someone point out this noob's mistake, because I'm obviously missing something easily described.

Answers further below.

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closed as not a real question by Greg Hewgill, yoda, Johnsyweb, John Saunders, Graviton Jun 2 '11 at 3:49

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

    
I copied and pasted this into a file and it prints out prime numbers as described. –  Dietrich Epp May 30 '11 at 22:20
    
its really hard to read code.. could you fix indent? –  FrEaKmAn May 30 '11 at 22:20
    
Actually, shouln't the condition be true also for a=3? When you get there with a=3 (the first time you ever do), b=2. So basically it works for all primes you test for (you don't test for 2...) –  Tomas Lycken May 30 '11 at 22:24
    
Besides being stupid, the above can be made much easier to read: –  Ori May 30 '11 at 22:25
    
For what it's worth, you shouldn't have edited the question to a working state. Doing this would eliminate the usefulness of SO. –  Tim McNamara May 30 '11 at 22:31

2 Answers 2

up vote 1 down vote accepted

If a is not prime, it has atleast two proper divisors, and of one of them must be smaller than the square root (or both are the square root). If b reaches sqrt(a)+1, then a must be prime. So if b reaches a - 1, you can be pretty sure it's prime. You could also replace it by if a - 3 == b, or a / 2 (but this might not work for the smaller primes).

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Yeah, but functionally it reaches the solution, which is why I've tried to keep it as the hello world default. It typically involves a nested loop so it gives me just enough to start doing damage to some cycles, and it's good enough mathematically to solve for primes > 2. –  Ori May 30 '11 at 22:33
    
@Ori - Sorry, I don't understand what you mean. Anyway, I tried to explain why "The next to the last conditional should" be true for primes and primes only. That used to be the question, right? –  Ishtar May 30 '11 at 22:38
    
Yeah it's there now. And you nailed it dead on. –  Ori May 30 '11 at 22:39

It seems to work for me; after changing 65535 to 1024 and removing the " is prime" portion (so I can run the results right into factor(1)), the output looks like this:

$ ./prime.py | xargs -n1 factor > /tmp/list ; wc -l list
170 list
$ head list
5: 5
7: 7
11: 11
13: 13
17: 17
19: 19
23: 23
29: 29
31: 31
37: 37

Are you sure you copy-and-pasted it correctly? I find one-space indents miserable reading, and perhaps you mis-copied or mis-formatted?

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Yeah I fixed it, I was doing something unnecessary, based on my incomplete knowledge of the language. –  Ori May 30 '11 at 22:28
1  
The original problem was that it was indeed working. –  Ishtar May 30 '11 at 22:31
    
Heh, now I see new edits :) got it. Hehe. –  sarnold May 30 '11 at 22:31

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