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My goal is to Turn off, or set to false, all array spots that are not prime. Array is provided as a parameter.

public static boolean[] sieveOfEratosthenes(boolean [] a){

    int increment= 2;

    for(int n = 0; n < 9; n++){
        for(int i = increment; i < a.length; i += increment){
            a[i] = false;
        }
        increment += 1;
    }   
    a[2] = true;
    a[3] = true;
    a[5] = true;
    a[7] = true;
    return a;
}

Code works fine, I'm just wondering if there is a more efficient way than using:

a[2] = true;
a[3] = true;
a[5] = true;
a[7] = true;

to reset those array items as true.

Thanks in advance!

share|improve this question
    
by definition all spots that are not false should be true, correct? So initialize the entire array to true, then set the positions that can't be prime to false. –  Hunter McMillen Aug 31 '12 at 21:30
    
It is a homework assignment, I am not able to alter the array, and they are all set to true. I am assuming the array provided is full of an array of number from 0-infinity –  user1172534 Aug 31 '12 at 21:33
    
@HunterMcMillen wouldn't it be less operations to just set true to true after initializing to false?? Many more primes than not primes. –  Mitch Connor Aug 31 '12 at 21:34
    
You might want to start by reading about the Sieve of Eratosthenes. –  Don Roby Aug 31 '12 at 21:39
    
When it's homework, please tag as such. –  digitaljoel Aug 31 '12 at 22:10

1 Answer 1

up vote 2 down vote accepted

A good way to do this is to start your loop at iteration * 2. So your loop looks like this

int increment= 2;

for(int n = 0; n < 9; n++){
    for(int i = increment*2; i < a.length; i += increment){
        a[i] = false;
    }
    increment += 1;
}  

This way you skip the first one.

Second modify your outer loop so that it ignores values that are already false because its prime factors took care of its products. Now your loop looks like this

int increment= 2;

for(int n = 0; n < 9; n++){
    if(a[increment]) {
      for(int i = increment*2; i < a.length; i += increment){
          a[i] = false;
      }
      increment += 1;
    }
}

Third to handle any size array loop over your array for your increment value

int count = a.length;

for(int increment = 2; increment < count; increment++){
    if(a[increment]) {
      for(int i = increment*2; i < count; i += increment){
          a[i] = false;
      }          
    }
}

This current loop assumes one and zero are considered prime. So set a[0] = a[1] = false; to reflect the fact that 0 and 1 are not prime.

share|improve this answer
    
Excellent answer! Thanks! –  user1172534 Sep 1 '12 at 4:50
    
An even better way to do this is to start your loop at int i = increment * increment, and increase by i += 2*increment for all odd increments. Then also change last loop's stop condition to for(...; increment <= count/increment; ...). I think you've got a typo right in the ending sentence (missing "not" there). Fixed it for you! :) –  Will Ness Sep 3 '12 at 6:36

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