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What I am trying to do is search for a perfect number. A perfect number is a number that is the sum of all its divisors, such as 6 = 1+2+3.

Basically what I do here is ask for 2 numbers and find a perfect number between those two numbers. I have a function that tests for divisibility and 2 nested loops.

My issue is that I don't get any result. I've revised it & can't seem to find anything wrong. The compiler doesn't shoot out any errors.

What can be wrong?

#include <iostream>
using namespace std;

bool isAFactor(int, int);

int main()
{

int startval;
int endval;
int outer_loop;
int inner_loop;
int perfect_number = 0;

cout << "Enter Starting Number: ";
cin >> startval;
cout << "Enter Ending Number: ";
cin >> endval;

for(outer_loop = startval; outer_loop <= endval; outer_loop++)
{
    for(inner_loop = 1; inner_loop <= outer_loop; inner_loop++)
    {
        if (isAFactor(outer_loop, inner_loop) == true)
        {
            inner_loop += perfect_number;
        }
    }

if (perfect_number == outer_loop)
{
    cout << perfect_number << " is a perfect number." << endl;
}

else
{
    cout << "There is no perfect number." << endl;
}

}

system("PAUSE");
return 0;
}

bool isAFactor(int outer, int inner)
{
if (outer % inner == 0)
{
    return true;
}

else
{
    return false;
}
share|improve this question
    
Have you tried using a debugger? – Thomas Matthews Oct 21 '12 at 1:34
    
You are reading a string into an int value. That doesn't work. You have to read into a character array, and convert the first character(s) into an integer. – Seth Battin Oct 21 '12 at 1:37
    
Thanks for the tips guys! – n0de Oct 21 '12 at 1:41
    
@SethBattin: try the questioner's code, you'll see that part of it is fine. – Steve Jessop Oct 21 '12 at 1:43
up vote 2 down vote accepted

inner_loop += perfect_number; should be perfect_number += inner_loop;.

There are other issues -- you need to reset perfect_number to zero in each outer loop, and you should presumably print the message "There is no perfect number." if none of the numbers in range is perfect, rather than printing it once for every number in range that is not perfect.

I'd advise that you rename perfect_number to sum_of_factors, outer_loop to candidate_perfect_number and inner_loop to candidate_factor, or similar.

share|improve this answer
1  
Also, perfect_number will need to get reset each time through the outer loop. – Tom W Oct 21 '12 at 1:38
    
Thank you very much! I will fix the errors. – n0de Oct 21 '12 at 1:41

after the if statement:

cout << perfect_number;
cout << outer_loop;

if (perfect_number == outer_loop)
{
    cout << perfect_number << " is a perfect number." << endl;
}

and see what values they have

Updated:

What is the value of your endval? is 0?, and thats why the loop ends so early

share|improve this answer

Oh, so many issues.

  1. The variable perfect_number never changes. Did your compiler flag this?
  2. The outer loop will be one more than the ending value when it exits; did you know this?
  3. You don't need to compare bool values to true or false.
  4. You could simplify the isAFactor function to return (outer % inner) == 0;.
  5. You could replace the call to isAFactor with the expression ((outer % inner) == 0).
share|improve this answer
    
Thank you, I'll fix them. – n0de Oct 21 '12 at 1:45
    
(1) is an error, (2) is fine (at least, provided endval != INT_MAX, that's a nasty corner case), (3) and (4) are redundant code that should be cleaned up but don't stop the program working, (5) is a matter of whether, philosophically speaking, you feel that subroutines are a good thing :-) Actually I think this code could benefit from more different functions rather than fewer. – Steve Jessop Oct 21 '12 at 1:46
    
Btw, what compiler option do I need to get a warning for perfect_number not being modified? That's a pretty fussy compiler, to nag you to mark it const. Why warn for perfect_number in main and not for (say) outer in isAFactor being non-const but never modified? – Steve Jessop Oct 21 '12 at 1:51

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