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I have been working on a Project Euler problem which is to find the 10001st prime number. I made the project in java and it gave me the correct answer. I couldn't help but notice that it had taken 17 seconds to find the answer. I am fairly new to java and I would appreciate feedback on how to improve the efficiency of my Java program - at the moment it is bruteforce.

static boolean isPrime;  
static int primeCount;  
static int forI = 1;  
static int latestPrime;  

public static void main(String[] args){  
    long startTime = System.currentTimeMillis();  
    while(primeCount < 10001){  
        isPrime = true;  
        for(int i = forI - 1; i > 1; i--){  
            //If forI is divisible by another number < forI, it is not prime  
            if(forI % i == 0){  
                isPrime = false;  
            latestPrime = forI;  
    long endTime = System.currentTimeMillis() - startTime;  
    System.out.println(primeCount+" "+latestPrime);  
    System.out.println("Time taken: " + endTime / 1000 + " seconds");  
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a) you don't abort your for() loop when you do find a divisor, so you keep testing all OTHER possible divisors, wasting time. b) you're testing too large of a range for each number - you only need to test up to sqrt(number_being_tested). You're testing ALL possible divisors, including even ones. c) Since 2 is the only even prime, all other even divisors are impossible. –  Marc B Mar 7 '14 at 20:05
To clarify @MarcB's "a)": Change the for-loop header to for(int i = forI - 1; i > 1 && isPrime; i--){...I think isPrime, and not !isPrime... –  aliteralmind Mar 7 '14 at 20:06
Please remove the answer to the project euler question! Also, this question seems off-topic for stackoverflow - but would likely be on-topic for the codereview stack. –  Elliott Frisch Mar 7 '14 at 20:06
@MarcB Thank you, I was planning to break out of the for loop, but forgot, I will add that in. Is there a better, non-bruteforce way of doing this, or would this be considered the 'good practise'? –  Cj1m Mar 7 '14 at 20:07
Also you can check the forum on the problem 7 (at the right of the question (if you solved it)). A lot of smart and useful optimizations are discussed. –  Alexis C. Mar 7 '14 at 20:07

1 Answer 1

You'll want to check out the Sieve of Eratosthenes.

Basically, for each number you are checking whether or not its prime by checking every single number less than it divides it evenly, this is very inefficient.

For an easy improvement, you only need to check all divisors less than the square root of the number.

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