要求从满足gcd(x, y) = k的对数,其中x属于[1, n], y属于[1, m]
gcd(x, y) = k
==>gcd(x/k, y/k) =1
x/k属于[1, n/k], y/k属于[1, m/k]
又因为对数不可以重复,所以我可以限制对于gcd(x, y)中,让y>=x,这样就不会重复了,然后问题转化成了对于[1, n/k]区间内的每一个 i ,求 i 与 [i,m]中的数互质的对数,然后对于每一个 i 的答案相加求和
#include<map> #include<set> #include<ctime> #include<cmath> #include<stack> #include<queue> #include<string> #include<vector> #include<cstdio> #include<cstdlib> #include<cstring> #include<iostream> #include<algorithm> #define lowbit(x) (x & (-x)) #define INOPEM freopen("in.txt", "r", stdin) #define OUTOPEN freopen("out.txt", "w", stdout) typedef unsigned long long int ull; typedef long long int ll; const double pi = 4.0*atan(1.0); const int inf = 0x3f3f3f3f; const int maxn = 1e5+50; const int maxm = 1e9+10; const int mod = 1e9+7; using namespace std; int n, m; int T, tol; bool pri[maxn]; vector<int> vec[maxn]; void handle() { memset(pri, true, sizeof pri); for(int i=2; i<maxn; i++) { if(pri[i]) { vec[i].push_back(i); for(int j=2; i*j<maxn; j++) { vec[i*j].push_back(i); pri[i*j] = false; } } } } ll solve(ll x, int k) { ll ans = 0; int len = vec[k].size(); for(int i=1; i<(1<<len); i++) { int cnt = 0; ll tmp = 1; for(int j=0; j<len; j++) { if(i & (1<<j)) { cnt++; tmp *= vec[k][j]; } } if(cnt & 1) ans += x / tmp; else ans -= x / tmp; } return ans; } int main() { handle(); int cas = 1; int T; scanf("%d", &T); while(T--) { int a, b, k; scanf("%d%d%d%d%d", &a, &n, &b, &m, &k); if(k == 0) { printf("Case %d: 0 ", cas++); continue; } n /= k, m /= k, k = 1; if(n > m) swap(n, m); ll ans = 0; //[i, m] for(int i=1; i<=n; i++) { ans += 1ll * (m-i+1) - 1ll * (solve(m, i) - solve(1ll * (i-1), i)); } printf("Case %d: %I64d ", cas++, ans); } return 0; }