UVa11105 - Semi-prime H-numbers(sieve的思想)
This problem is based on an exercise of David Hilbert, who pedagogically suggested that one study the theory of 4n+1 numbers. Here, we do only a bit of that.
An H-number is a positive number which is one more than a multiple of four: 1, 5, 9, 13, 17, 21,... are the H-numbers. For this problem we pretend that these are the only numbers. The H-numbers are closed under multiplication.
As with regular integers, we partition the H-numbers into units, H-primes, andH-composites. 1 is the only unit. An H-number h is H-prime if it is not the unit, and is the product of two H-numbers in only one way: 1 × h. The rest of the numbers are H-composite.
For examples, the first few H-composites are: 5 × 5 = 25, 5 × 9 = 45, 5 × 13 = 65, 9 × 9 = 81, 5 × 17 = 85.
Your task is to count the number of H-semi-primes. An H-semi-prime is an H-number which is the product of exactly two H-primes. The two H-primes may be equal or different. In the example above, all five numbers are H-semi-primes. 125 = 5 × 5 × 5 is not an H-semi-prime, because it's the product of three H-primes.
Each line of input contains an H-number ≤ 1,000,001. The last line of input contains 0 and this line should not be processed.
For each inputted H-number h, print a line stating h and the number of H-semi-primes between 1 and hinclusive, separated by one space in the format shown in the sample.
Sample input
21 85 789 0
Output for sample input
21 0 85 5 789 62
import java.io.FileInputStream;
import java.io.BufferedInputStream;
import java.io.OutputStreamWriter;
import java.io.PrintWriter;
import java.util.Scanner;
public class Main implements Runnable
{
private static final boolean DEBUG = false;
private static final int N = 1000002;
private PrintWriter cout;
private Scanner cin;
private int h;
private int[] vis;
private int[] semi;
private void init()
{
try {
if (DEBUG) {
cin = new Scanner(new BufferedInputStream(new FileInputStream("d:\\OJ\\uva_in.txt")));
} else {
cin = new Scanner(new BufferedInputStream(System.in));
}
cout = new PrintWriter(new OutputStreamWriter(System.out));
preprocess();
} catch (Exception e) {
e.printStackTrace();
}
}
private void preprocess()
{
vis = new int[N];
for (int i = 5; i * i < N; i += 4) {
if (vis[i] == 0) {
for (int j = i + i; j < N; j += i) vis[j] = i;
}
}
semi = new int[N];
for (int i = 5; i < N; i += 4) {
semi[i] = semi[i - 4];
if (vis[i] != 0 && vis[i / vis[i]] == 0) semi[i]++;
}
}
private boolean input()
{
h = cin.nextInt();
if (h == 0) return false;
return true;
}
private void solve()
{
int ans = semi[h];
cout.println(h + " " + ans);
cout.flush();
}
public void run()
{
init();
while (input()) {
solve();
}
}
public static void main(String[] args)
{
new Thread(new Main()).start();
}
}