S(n,m - 1) = S(n,m) - C(n,m)
S(n,m + 1) = S(n,m) + C(n,m + 1)
S(n - 1,m) = (S(n,m) + C(n - 1,m)) / 2
S(n + 1,m) = 2 * S(n,m) - C(n,m)
推出四道公式,用莫队算法做,求组合数用费马小定理求逆元。
#include<bits/stdc++.h>
#define mod 1000000007
#define ll long long
using namespace std;
const int maxn = 100005;
ll a[maxn], num[maxn], m, unit, ans[maxn];
ll fac[maxn], inv[maxn], inv2;
struct node {
ll l, r, id;
} que[maxn];
ll C(ll n, ll k) { //求m个里面组合n个的组合数
return fac[n]*inv[k]%mod*inv[n-k]%mod;
}
bool cmp(node aa, node bb) {
if(aa.l/unit != bb.l/unit) {
return aa.l/unit<bb.l/unit;
} else {
return aa.r < bb.r;
}
}
ll quickpow(ll a, ll b) { //快速幂
ll cnt = 1;
while(b) {
if(b&1) {
cnt = (cnt*a)%mod;
}
a = (a*a)%mod;
b>>=1;
}
return cnt;
}
ll get_inv(ll x, ll t) { //费马求逆元
return quickpow(x,t-2);
}
void work() {// 莫队算法
ll temp = 2;
memset(num, 0, sizeof(num));
ll l = 1, r = 1;
for(ll i = 1; i <= m; i++) {
while(que[i].l > l) {
temp = (2*temp%mod-C(l, r) + mod) % mod;
l++;
}
while(r < que[i].r) {
r++;
temp = (temp + C(l,r)) % mod;
}
while(l > que[i].l) {
l--;
temp = (temp+C(l,r))%mod* inv2 % mod;
}
while(r > que[i].r) {
temp = (temp - C(l,r)+mod) % mod;
r--;
}
ans[que[i].id] = temp;
// printf("555");
}
}
void init() {
fac[0] = fac[1] = 1;//0 和 1 的前缀和
for(int i = 2; i < maxn; i++) { // 用递推求出其他项的前缀和
fac[i] = i * fac[i-1]%mod;
}
inv[maxn-1] = get_inv(fac[maxn-1],mod);// 最后一项前缀和的逆元
for(int i = maxn - 2; i >= 0; i--) { // 递推求出其他项前缀和的逆元
inv[i] = inv[i+1]*(i+1)%mod;
}
unit = (ll)sqrt(maxn);// 分块的大小
inv2 = get_inv(2,mod);// 求出2的逆元 公式除以2的时候需要
}
int main() {
init();
int g;
scanf("%d", &g);
int cases = 1;
while(g--) {
ll x, y;
scanf("%lld%lld", &x, &y);
que[cases].l = x;
que[cases].r = y;
que[cases].id = cases;
cases++;
}
sort(que+1, que+cases, cmp);
m = cases;
work();
for(int i = 1; i < m; i++) {
printf("%lld\n",ans[i]);
}
return 0;
}
京公网安备 11010502036488号