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Currently I have this code, and it works.

#include <stdio.h>

int isFactor(long number1, long number2)
{
  int isitFactor = (number2 % number1 == 0)?1:0;
  return isitFactor;
}

int isPerfect(int number)
{
   int counter;
   int sum;
   for (counter = 1; counter < number; counter++) 
      if (isFactor(counter, number)) 
         sum += counter;
   return (sum == number);
}

int main()
{
   int counter = 1;
   for (counter = 1; counter <= 100; counter++)
   {
      printf("", isPerfect(counter));
      if (isPerfect(counter)) 
         printf("%d\n", counter);
   }
}

However, if I take out the unnecessary line with the printf in main(), it fails to produce any numbers.... Possible causes?!

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Where is isFactor()? –  mouviciel Mar 1 '11 at 5:50
    
in a separate library, sorry –  tekknolagi Mar 1 '11 at 5:54
    
"Probable causes?": not enabling compiler warnings for use of an uninitialized variable, or ignoring such warnings if you did receive them. –  David Gelhar Mar 1 '11 at 5:57
    
how do i enable those warnings on gcc? –  tekknolagi Mar 1 '11 at 5:58
    
man gcc –  Jim Balter Mar 1 '11 at 6:24
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2 Answers

up vote 12 down vote accepted

Variable sum in function isPerfect is not initialized.

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initialized? however, why does that fix my error? im so confused... –  tekknolagi Mar 1 '11 at 5:58
1  
@tekknolagi printf probably zeros the stack location where sum happens to end up. –  Jim Balter Mar 1 '11 at 6:29
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You had two problems with that code, the first is that sum is not initialised and will generally be set to whatever rubbish happened to be on the stack at the time the function was called. Automatic variables are not guaranteed to be initialised to zero (or anything, for that matter) so, if you need them to start with a specific value, you have to initialise them yourself.

The second problem (now fixed with your edit) was that isFactor is missing. Although you probably want it as a function, the following code works, producing the two perfect numbers less than 100, 6 and 28:

#include "stdio.h"

#define isFactor(c,n) ((n % c) == 0)

int isPerfect (int number) {
    int counter;
    int sum = 0;  // <-- note initialisation here.
    for (counter = 1; counter < number; counter++)
        if (isFactor(counter, number)) sum += counter;
    return (sum == number);
}

int main (void) {  // try to use one of the two canonical forms.
    int counter = 1;
    for (counter = 1; counter <= 100; counter++)
        if (isPerfect(counter)) printf("%d\n", counter);
    return 0;
}

And, looking into why it might be working with that extra printf, here's a viable explanation.

When calling a function, the local variables are allocated on the stack simply by reducing the stack pointer. Your isPerfect asembly code probably just has a prolog like:

sub %esp,8

and then you use the memory at %esp for counter and %esp + 4 for sum. Without initialising sum, it starts with whatever happened to be at that memory location, which is probably not zero.

Now think about what happens when you call printf first. It no doubt has its own local variables so it uses the part of the stack that you will later be relying on to be initialised to zero. When the printf returns, it doesn't set those memory locations back to their previous values, it just increments the stack pointer to skip over them.

Then, when you call isPerfect, there's a good chance that those memory locations will be different to what they were before you called printf, simply because printf has been using them for its own purposes.

If you're lucky (or unlucky, depending on your viewpoint), the memory location where sum will be may even be zero. But it's undefined behaviour nonetheless and you should not rely on it - initialise sum explicitly and your (immediate) problems will be over.


If this is homework, feel free to ignore this bit (in fact, actively ignore it since you may get caught out for plagiarism). This is how I would implement the isPerfect function as a first cut. It doesn't call functions to work out factors since, while they're generally quite fast, they're not without cost, and something that simple can be done in a single line of C anyway.

int isPerfect (int num) {
  int i, left;
  for (i = 1, left = num; i < num; i++)
    if ((num % i) == 0)
      left -= i;
  return (left == 0);
}

There's no doubt it could be made faster but the return on investment drops away pretty quickly after a certain point.

share|improve this answer
    
Your macro is dangerous. It should be (((n) % (c)) == 0) –  Jim Balter Mar 1 '11 at 6:26
    
@Jim. macro functions are inherently dangerous, I was just providing that as a sample. But, the way I'd write it would include macros or probably even a function for checking a factor - see the final bit. –  paxdiablo Mar 1 '11 at 6:28
    
@paxdiablo C'mon ... that macro is only dangerous the way you wrote it. Parenthesizing parameters is common practice to avoid the danger inherent in not doing so. How you would or wouldn't write it is irrelevant, only how you wrote it, which serves as a bad example. –  Jim Balter Mar 1 '11 at 6:33
    
Sorry, I meant in my earler comment, wouldn't include macros rather than would. And, if you don't like it, @Jim, downvote it. It's irrelevant to the question at hand since I explicitly stated you'd be better off with a function but your vote is your vote to cast as you see fit. Macros are inherently dangerous but that can be mitigated by usage. Provided you use a single variable, my version is fine. And even parenthesised versions won't protect you from everything (double usage of a single n-- parameter within a macro for example). –  paxdiablo Mar 1 '11 at 6:44
    
@paxdiablo I simply said it's dangerous and pointed out an improvement. I'm not going to waste my time on intellectual dishonesty. Neither parameter gets used more than once in that macro, which is what I explicitly referred to. –  Jim Balter Mar 1 '11 at 7:24
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