UVA

Given the value of N, you willhave to find the value of G. The definition of G is given below:

Here GCD(i,j) means the greatest common divisor of integer i and integer j.

For those who have troubleunderstanding summation notation, the meaning of G is given in the followingcode:

G=0;

for(i=1;i<N;i++)

for(j=i+1;j<=N;j++)

{

G+=gcd(i,j);

}

/*Here gcd() is a function that finds the greatest common divisor of the two input numbers*/

Input

The input file contains at most 100lines of inputs. Each line contains an integer N (1<N<4000001). Themeaning of N is given in the problem statement. Input is terminated by a linecontaining a single zero.

Output

For each lineof input produce one line of output. This line contains the value of G for thecorresponding N. The value of G will fit in a 64-bit signed integer.

Sample Input Output for SampleInput

100

200000

13015

143295493160

Problemsetter: Shahriar Manzoor

SpecialThanks: Syed Monowar Hossain

题意：输入正整数n,求gcd(1, 2)+gcd(1, 3)+gcd(2, 3)+...+gcd(n-1, n),即全部满足1<=i<j<=n的数对(i, j)所相应的gcd(i,j)之和。

思路：设f(n) = gcd(1, n)+gcd(2, n) + ...+gcd(n-1, n),则答案就为S（n） = f(2)+f(3)+...+f(n)，仅仅需求出f(n),就能够递推出答案：S(n) = S(n-1) + f(n)，

我们再用g(n,i)表示满足gcd(x, n)=i且x<n的正整数x的个数，则f(n)=sum{i*g(n, i)}，注意到gcd(x, n) = i的充要条件是gcd(x/i, n/i) = 1，因此满足条件的有x/i有phi(n/i)，

phi(a) 表示的是不超过x且和x互素的整数个数，我们通过类似筛选法的方法。每次去更新某个数i的倍数。而不是去枚举每一个n的约数。

#include <iostream>
#include <cstdio>
#include <cstring>
#include <algorithm>
#include <cmath>
typedef long long ll;
using namespace std;
const int maxn = 4000001;

int phi[maxn];
ll S[maxn], f[maxn];

void phi_table(int n) {
	for (int i = 2; i <= n; i++)
		phi[i] = 0;
	phi[1] = 1;
	for (int i = 2; i <= n; i++)
		if (!phi[i])
			for (int j = i; j <= n; j += i) {
				if (!phi[j])
					phi[j] = j;
				phi[j] = phi[j] / i * (i-1);
			}
}

int main() {
	phi_table(maxn);

	memset(f, 0, sizeof(f));
	for (int i = 1; i <= maxn; i++)
		for (int n = i*2; n <= maxn; n += i)
			f[n] += i * phi[n/i];

	S[2] = f[2];
	for (int n = 3; n <= maxn; n++)
		S[n] = S[n-1] + f[n];

	int n;
	while (scanf("%d", &n) != EOF && n) 
		printf("%lld
", S[n]);
	return 0;
}