• 分块思想


    CF348http://codeforces.com/contest/348/problem/C

    题意:一个n个元素的序列,m个下标集合,q个操作,两种操作1:给你一个集合,求序列中下标在集合中的元素的sum;2:给你一个集合,把序列中下标在集合中的元素都加X;  1<= n,m,q <= 10^5;  并且题目中明确说明所有集合的元素个数小于10^5;

    分析:http://codeforces.com/blog/entry/9031?locale=en

      1 #include<cstdio>
      2 #include<cstring>
      3 #include<cstdlib>
      4 #include<cmath>
      5 #include<iostream>
      6 #include<algorithm>
      7 #include<vector>
      8 #include<queue>
      9 using namespace std;
     10 typedef long long LL;
     11 const int N = 100000+10;
     12 const int SZ = 315;
     13 vector<int> g[N];
     14 int id[N],id_sz;
     15 int n,m,q;
     16 LL a[N];
     17 int ins[N][N/SZ+10];
     18 bool inset[N/SZ+10][N];
     19 LL sum[N/SZ+10],tar[N/SZ+10];
     20 void solve(){
     21     LL an;
     22     while (q--) {
     23         char s[5];
     24         int v,x;
     25         scanf("%s",s);
     26         if (s[0] == '?') {
     27             scanf("%d",&v);
     28             v--;
     29             if (id[v] == -1) {
     30                 an = 0;
     31                 for (int i = 0; i < g[v].size(); i++) {
     32                     an += a[g[v][i]];
     33                 }
     34                 for (int i = 0; i < id_sz; i++) {
     35                     an += (LL)tar[i] * ins[v][i];
     36                 }
     37                 cout<<an<<endl;
     38             }else {
     39                 an = sum[id[v]];
     40                 for (int i = 0; i < id_sz; i++) {
     41                     an += (LL)tar[i] * ins[v][i];
     42                 }
     43                 cout<<an<<endl;
     44             }
     45         }else {
     46             scanf("%d%d",&v,&x);
     47             v--;
     48             if (id[v] == -1) {
     49                 for (int i = 0; i < g[v].size(); i++) {
     50                     a[g[v][i]] += x;
     51                 }
     52                 for (int i = 0; i < id_sz; i++) {
     53                     sum[i] += ins[v][i] * x;
     54                 }
     55             }else {
     56                 tar[id[v]] += x;
     57             }
     58         }
     59 
     60     }
     61 }
     62 int main(){
     63     while (~scanf("%d%d%d",&n,&m,&q)) {
     64         for (int i = 0; i < n; i++) scanf("%lld",a+i);
     65         memset(id,-1,sizeof(id));
     66         id_sz = 0;
     67         for (int i = 0; i < m; i++) g[i].clear();
     68         for (int i = 0; i < m; i++) {
     69             int cnt; scanf("%d",&cnt);
     70             LL tmp = 0;
     71             while (cnt--) {
     72                 int x; scanf("%d",&x); x--;
     73                 g[i].push_back(x);
     74                 tmp += a[x];
     75             }
     76             if (g[i].size() > SZ) {
     77                 for (int j = 0; j < g[i].size(); j++)
     78                     inset[id_sz][g[i][j]] = 1;
     79                 sum[id_sz] = tmp;
     80                 id[i] = id_sz++;
     81             }
     82         }
     83         for (int i = 0; i < n; i++) {
     84             for (int j = 0; j < g[i].size(); j++) {
     85                 for (int k = 0; k < id_sz; k++) {
     86                     ins[i][k] += inset[k][g[i][j]];
     87                 }
     88             }
     89         }
     90         solve();
     91     }
     92     return 0;
     93 }
     94 /*
     95 5 3 5
     96 5 -5 5 1 -4
     97 2 1 2
     98 4 2 1 4 5
     99 2 2 5
    100 ? 2
    101 + 2 4
    102 ? 1
    103 + 2 1
    104 ? 1
    105 */
    View Code
  • 相关阅读:
    redis qps监控
    不要对md5file.read()计算md5值
    Kubernetes-基于helm安装部署高可用的Redis及其形态探索(二)
    Kubernetes-基于helm安装部署高可用的Redis及其形态探索
    mongodb replication set 主从切换
    使用packstack安装pike版本的openstack
    redis性能测试方法
    mysql与mariadb性能测试方法
    Mongodb集群形式探究-一主一从一仲裁。
    Python元类
  • 原文地址:https://www.cnblogs.com/Rlemon/p/3361812.html
Copyright © 2020-2023  润新知