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I implement Sieve of eratosthenes and it works fine. But if I increase the MAX value to something like 50000 the Application crash with a unhandled win32 exception. I think this happened because of a stackoverflow.

Now my Question is how do I prevent this?

#define MAX 50000
void Sieb_des_Eratosthenes()
{
    char Zahlen[MAX + 1] = {0};
    int i, j, x;

    for(i = 2; i <= MAX; i++)
    {
       if(Zahlen[i] == 0)     
       {
           Zahlen[i] = 1;
           for(j = i * i; j <= MAX; j += i)
           {
                 Zahlen[j] = -1;
           }      
       }
    }
}

My idea was to allocate memory but this doesn't work

#define MAX 50000
int Sieb_des_Eratosthenes()
{
    int i, j, x;
    char *array;
    array = malloc((MAX + 1) * sizeof(*array));
    if (array==NULL) {
       printf("Error allocating memory!\n");
       return -1; //return with failure
    }

    for(i = 2; i <= MAX; i++)
    {
       if(array[i] == 0)     
       {
           array[i] = 1;
           for(j = i * i; j <= MAX; j += i)
           {
                 array[j] = -1;
           }      
       }
    }
}
share|improve this question
1  
but this doesn't work - can you be more specific? Do you get a compile error? A runtime error? Unexpected results? – Andreas Fester Apr 24 '13 at 7:29
    
@Andreas I got the same error as before a unhandled win32 exception – Sir l33tname Apr 24 '13 at 7:32
2  
Add printf("%d\n", j); inside the inner for-loop. You will see that j gets a value of -2146737495 after some iterations which is out of bounds for the array. Also, someone advised (answer has been deleted meanwhile) to use calloc() instead of malloc(), so that your array is initialized - this is a very good advice, but does not fix the array index issue – Andreas Fester Apr 24 '13 at 7:36
up vote 1 down vote accepted

While all the other answers are true wrt. the actual cause (integer overflow), you simply missed some implementation details provided by the pseudo code in the wiki. The following works:

  • Use calloc to allocate the memory. Then, all values are initialized to 0 which means true in the sense of the wiki pseudo code.
  • In the outer loop, only loop until sqrt(MAX) - see the pseudo code in the wiki article.
  • In the inner loop, mark all multiples of i with 1 (false in the sense of the wiki pseudo code).
for(i = 2; i <= sqrt(MAX); i++) {
   if(array[i] == 0) { // "true"
       for(j = i*i; j <= MAX; j += i) {
             array[j] = 1;  // "false"
       }      
   }
}
  • Then, all elements which are still 0 are prime numbers.

In addition, it is not necessary to use (signed) int - all numbers are positive, so you should use unsigned int.

With this approach, you should be able to use the whole range of an unsigned int for the MAX value (up to 4294967295 if unsigned int is 32 bit)

share|improve this answer
    
you can't do sqrt(MAX) i don't exactly understand the wikipedia why but it's wrong – Sir l33tname Apr 24 '13 at 8:37
    
Why? I think it is correct - you are again starting with i^2 in the inner loop, so if i is sqrt(MAX) in the last iteration, you start with MAX in the inner loop. Your condition in the inner loop is j <= MAX, so you wont get any numbers larger than MAX anyway - but what you will get is an integer overflow on i*i if you use larger numbers .... Do you have a concrete example when it does not work? – Andreas Fester Apr 24 '13 at 8:41
    
codepad.org/G4MTqxOS try it, with sqrt(MAX) you just find all primes to 10 – Sir l33tname Apr 24 '13 at 8:54
    
You can not print the resulting prime numbers like that. You need to check the array afterwards to get the result. See ideone.com/10eDP1 – Andreas Fester Apr 24 '13 at 9:01
    
sorry you're right, but is not much faster because you need to go a second time to through array – Sir l33tname Apr 24 '13 at 9:10

The original problem in your function failing is in this for loop.

for(j = i * i; j <= MAX; j += i)

when i gets equal or larger than 46349 the result i * i overflows and j gets the value of -2146737495 and then fails at Zahlen[j] = -1;

share|improve this answer
    
Is i^2 even correct? Dont we need to start with 2*i? I saw that the wikipedia pseudo code uses i^2 for the inner loop, but would that not skip some numbers to mark? – Andreas Fester Apr 24 '13 at 7:45
    
@Andreas I didn't take the time to analyze what the algorithm does, i only checked for possible errors. – user1944441 Apr 24 '13 at 7:47
    
Just had a closer look - the numbers below i^2 have already been marked before, so even though 2*i should also work, starting with i^2 saves some unnecessary iterations. Also, it is not necessary to loop until j <= MAX, but only until j <= sqrt(MAX) - with that, the overflow should also be avoided – Andreas Fester Apr 24 '13 at 7:51

an int can only hold a max of -2^31 to 2^31: http://en.wikipedia.org/wiki/Integer_(computer_science)

your overflowing the int

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