题目:传送门
题意
思路
官方题解: 地址
#include <bits/stdc++.h> #define LL long long #define ULL unsigned long long #define UI unsigned int #define mem(i, j) memset(i, j, sizeof(i)) #define rep(i, j, k) for(int i = j; i <= k; i++) #define dep(i, j, k) for(int i = k; i >= j; i--) #define pb push_back #define make make_pair #define INF 0x3f3f3f3f #define inf LLONG_MAX #define PI acos(-1) #define fir first #define sec second #define lb(x) ((x) & (-(x))) #define dbg(x) cout<<#x<<" = "<<x<<endl; using namespace std; const int N = 1e6 + 5; const LL mod = 1e9 + 7; LL ksm(LL a, LL b) { LL res = 1LL; while(b) { if(b & 1) res = res * a % mod; a = a * a % mod; b >>= 1; } return res; } LL s[N], a[N]; void solve() { /// 最终答案是l:1~n; r:l~n ( 1/2 * (a[l] + a[l+1] + ... + a[r] )^2 + 1/2 * (a[l]^2 + a[l + 1]^2 + ..... + a[r]^2 ) ) /// 其中 (a[l] + a[l+1] + ... + a[r] )^2 = (a[l]^2 + a[l + 1]^2 + ..... + a[r]^2 ) + (2*a[l]*a[l+1] + ... + 2*a[l]*a[r] + ... 2*a[l+1]*a[l+2] + ... 2*a[l+1]*a[r] +....) /// 最终就是 (a[l]*a[l+1] + ... + a[l]*a[r] + ... a[l+1]*a[l+2] + ... a[l+1]*a[r] +....) + (a[l]^2 + a[l + 1]^2 + ..... + a[r]^2 ) /// 对于 l <= i 和 r >= j,都会算一次 a[i]*a[j],那么直接预处理。 int n; scanf("%d", &n); rep(i, 1, n) scanf("%lld", &a[i]); rep(i, 1, n) s[i] = (s[i - 1] + 1LL * (n - i + 1) * a[i] % mod) % mod; LL ans = 0LL; rep(i, 1, n) { ans = (ans + 1LL * i * a[i] % mod * (s[n] - s[i - 1]) % mod + mod) % mod; } printf("%lld ", ans); } int main() { // int _; scanf("%d", &_); // while(_--) solve(); solve(); return 0; }