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for (long long j = factored_num / 3; j > 2 || factored_num != 1; j -= 2) {

On a 64-bit computer, I'm trying to factor a number. This code works perfectly fine when long long j = factored_num, but when I do integer division, cout << j shows that j is negative -- I'm assuming it overflows. How can I fix this?

I've tried 3LL, j-= 2LL, etc. in case it was a type problem. Again, it definitely has to do with the division part, but I'm not familiar enough with data types to immediately get the problem.

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What is the type of factored_num? –  unwind Dec 20 '11 at 10:41
    
and factored_num initial value? Did you initialized it? –  Tio Pepe Dec 20 '11 at 10:44
2  
You have to show us the whole loop. By the way, it is better to look for factors in increasing order, because each factor found decreases factored_num, and small factors can be found faster than large factors. Also, you only have to search up to the square root of factored_num (j * j <= factored_num), not factored_num / 3. –  TonyK Dec 20 '11 at 10:45
    
Hm, if the divisor is 3LL, than the division should be done in long long no matter what type factored_num is. –  Jan Hudec Dec 20 '11 at 10:47
    
And regardless of the types (as long as they are integral), factored_num / 3 cannot overflow, and will be positive if factored_num is positive. Supposing his description of the problem is correct, the only way j can be negative is if factored_num is an unsigned integral type, and factored_num / 3 is not representable in a long long. –  James Kanze Dec 20 '11 at 10:51

1 Answer 1

up vote 2 down vote accepted

The problem could be the final condition. You loop while j is more than 2 or factored_num is not 1, so if factored_num does not become one, the loop will not end and j will continue to decrement to negative numbers.

I'd expect the condition to be j > 2 && factored_num != 1, that is you want to end if j is 2 or less (why 2; 2 is a valid factor) or factored_num is 1 (and therefore does not have any more factors).

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