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Following the answer from @neal aise here to get prime factors: I did:

/*neal aise's  code*/
printPrimeFactors(int num) {
  int i;
  for (i = 2; i < sqrt(num); i=next_prime(i)) {
     if (num %i){
        printf("%d", i);
     }
  } 
}

/*my code*/
int next_prime(int p){
   int prime_found = 0; 
   while (!prime_found){
    if (p <= 1)/* if low number comes in, then */
       p = 2; /* next prime is always 2 (first prime) */
    else
          if ((p % 2) == 0) /* no even primes */
              p++;      /* make the number odd before test */
          else
              p += 2;       /* get next odd numero to test */
    prime_found = is_prime(p); /*check if number is prime*/
    }
    return (p);
}


int is_prime(int p){
    int curr_num = 2;                  /* start divisor at 2 */
    float stop_num = sqrt((float) p);  /* no divisor > sqrt of number needed */    
    while(curr_num <= stop_num){
        if ((p % curr_num) == 0)      /* not prime if evenly divisible */
            return (0);
        else
            curr_num++;              /* increment divisor */
    }
    return(1);                         /* not evenly divisible, return prime */
}

How do I moddify the code in function

printPrimeFactors()

so it works as desired?

share|improve this question
    
Try adding some cout << statements into your code. They always helped me debug things like this. – Blender Jun 22 '11 at 2:38
    
What does your is_prime() function do? – bdares Jun 22 '11 at 2:39
    
can you post your code for is_prime()? Also, input/output code... – Jon Jun 22 '11 at 2:40
    
First bug: if(num%i) will activate only when num is not divisible by i. If you want the prime factors of num, then you should negate this, or more meaningfully change it to if(num%i!=0) – bdares Jun 22 '11 at 2:44
    
Edited c code, is_prime, tells if number is a prime – cMinor Jun 22 '11 at 2:48
up vote 1 down vote accepted

If you want "prime number generator", interfaces is ok to me. But your code limit the number of prime numbers.

meaningless interfaces is not valuable. it can write more simply.

#include <stdio.h>

int main() {
  int n, m;
  for (n = 1; n < 1000 /* specify your max */; n++) {
    for (m = n-1; m > 1; m--)
      if (n % m == 0) break;
    if (m == 1)
      printf("%d\n", n);
  }
  return 0;
}
share|improve this answer
    
and what about the prime factors?, Dou you see the code feasible? – cMinor Jun 22 '11 at 3:00

There are a couple of logic errors:

if (num%i) // Change this to...
if ((num%i)==0) // num%i == 0 when i divides num, this 'i' is a prime factor.

Also, you will only print out roughly half of the prime factors by stopping at <sqrt(num). Either change the exit condition of the for loop to be i <= num:

for (i = 2; i <= num; i=next_prime(i)) { // note the <=
  if (num %i){
     printf("%d ", i);
  }
}

Or the alternative, more efficient method. Note the factors will not be in order:

for (i = 2; i <= sqrt(num); i=next_prime(i)) {
  if (num %i){
     printf("%d %d ", i, num/i); // Print out the pair, since we stop at i<=sqrt(num)
  }
}
share|improve this answer

Instead of x = sqrt(n_limit) and if(n < x), you can do it like if(n*n < n_limit). No need for expensive sqrt(), floats or casts.

share|improve this answer

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