标签:sum lld std com string mes cst += prim
给出\(M\)和\(a数组\),询问每一个\(d\in[1,M]\),有多少组数组满足:正好修改\(k\)个\(a\)数组里的数使得和原来不同,并且要\(\leq M\),并且\(gcd(a_1,a_2,\dots,a_n)=d\)。
对于每一个\(d\),即求\(f(d)\):修改\(k\)个后\(gcd(a_1,a_2,\dots,a_n)=d\)的对数。
那么假设\(F(d)\):修改\(k\)个后\(gcd(a_1,a_2,\dots,a_n)\)是\(d\)倍数的对数。故:
\[
f(k) = \sum_{k|d}\mu(\frac{d}{k})F(d)
\]
打表求\(F(d)\)即可。假设\(num[d]\)为\(a\)中是\(d\)倍数的数量,则
\[
F(d)=(\frac{M}{d})^{n-num[d]}*C_{num[d]}^{k-(n-num[d])}*(\frac{M}{d}-1)^{k-(n-num[d])}
\]
然后\(nlogn\)打出\(num\)数组即可。
这样的打表法是\(nlogn\)的:
证明 O(n/1+n/2+…+n/n)=O(nlogn)
for(int i = 1; i <= n; i++){
scanf("%d", &a[i]);
num[a[i]]++;
}
for(int i = 1; i <= m; i++){
for(int j = i + i; j <= m; j += i){
num[i] += num[j];
}
}
这样是\(n\sqrt n\)的
for(int i = 1; i <= n; i++){
scanf("%d", &a[i]);
for(int j = 1; j <= sqrt(a[i]); j++){
if(a[i] % j == 0){
num[j]++;
if(j * j != a[i]) num[a[i] / j]++;
}
}
}
#include<map>
#include<set>
#include<queue>
#include<stack>
#include<ctime>
#include<cmath>
#include<cstdio>
#include<string>
#include<vector>
#include<cstring>
#include<sstream>
#include<iostream>
#include<algorithm>
using namespace std;
typedef long long ll;
typedef unsigned long long ull;
const int maxn = 3e5 + 5;
const int INF = 0x3f3f3f3f;
const ull seed = 131;
const ll MOD = 1000000007;
using namespace std;
int mu[maxn], vis[maxn];
int prime[maxn], cnt;
ll fac[maxn], inv[maxn];
ll ppow(ll a, ll b){
ll ret = 1;
while(b){
if(b & 1) ret = ret * a % MOD;
a = a * a % MOD;
b >>= 1;
}
return ret;
}
void init(int n){
memset(vis, 0, sizeof(vis));
memset(mu, 0, sizeof(mu));
cnt = 0;
mu[1] = 1;
for(int i = 2; i <= n; i++) {
if(!vis[i]){
prime[cnt++] = i;
mu[i] = -1;
}
for(int j = 0; j < cnt && prime[j] * i <= n; j++){
vis[prime[j] * i] = 1;
if(i % prime[j] == 0) break;
mu[i * prime[j]] = -mu[i];
}
}
fac[0] = inv[0] = 1;
for(int i = 1; i <= n; i++) fac[i] = fac[i - 1] * i % MOD;
inv[n] = ppow(fac[n], MOD - 2);
for(int i = n - 1; i >= 1; i--) inv[i] = (i + 1LL) * inv[i + 1] % MOD;
}
ll C(int n, int m){
return fac[n] * inv[m] % MOD * inv[n - m] % MOD;
}
int num[maxn], a[maxn];
//num[i]:是i的倍数的个数
ll F[maxn], f[maxn];
int main(){
init(3e5);
int n, m, k;
while(~scanf("%d%d%d", &n, &m, &k)){
memset(num, 0, sizeof(num));
for(int i = 1; i <= n; i++){
scanf("%d", &a[i]);
num[a[i]]++;
}
for(int i = 1; i <= m; i++){
for(int j = i + i; j <= m; j += i){
num[i] += num[j];
}
}
for(int i = 1; i <= m; i++){
int no = n - num[i];
if(no > k) F[i] = 0;
else{
F[i] = ppow(m / i, no) * C(num[i], k - no) % MOD * ppow(m / i - 1, k - no) % MOD;
}
}
for(int i = 1; i <= m; i++){
f[i] = 0;
for(int j = i; j <= m; j += i){
f[i] += mu[j / i] * F[j];
f[i] %= MOD;
}
printf("%lld%c", (f[i] % MOD + MOD) % MOD, i == m? '\n' : ' ');
}
}
return 0;
}
HDU 4675 GCD of Sequence(莫比乌斯反演 + 打表注意事项)题解
标签:sum lld std com string mes cst += prim
原文地址:https://www.cnblogs.com/KirinSB/p/11439436.html