问题描述 [LG-SP1716](https://www.luogu.org/problem/SP1716] 题解 GSS 系列的第三题,在第一题的基础上带单点修改. 第一题题解传送门 在第一题的基础上,增加一个单点修改就完事了. \(\mathrm{Code}\) #include<bits/stdc++.h> using namespace std; template <typename Tp> void read(Tp &x){ x=0;char ch=1;int f…

SPOJ - GSS3 Can you answer these queries III Description You are given a sequence A of N (N <= 50000) integers between -10000 and 10000. On this sequence you have to apply M (M <= 50000) operations: modify the i-th element in the sequence or for giv…

题目链接 给出n个数, 2种操作, 一种是将第x个数改为y, 第二种是询问区间[x,y]内的最大连续子区间. 开4个数组, 一个是区间和, 一个是区间最大值, 一个是后缀的最大值, 一个是前缀的最大值. 合并起来好麻烦...... #include <iostream> #include <vector> #include <cstdio> #include <cstring> #include <algorithm> #include <…

[题目分析] GSS1的基础上增加修改操作. 同理线段树即可,多写一个函数就好了. [代码] #include <cstdio> #include <cstring> #include <cmath> #include <cstdlib> #include <map> #include <set> #include <queue> #include <string> #include <iostream&…

SP1716 GSS3 - Can you answer these queries III 题意翻译 n 个数,q 次操作 操作0 x y把A_xAx 修改为yy 操作1 l r询问区间[l, r] 的最大子段和 依旧是维护最大子段和,还是再敲一遍比较好. code: #include<iostream> #include<cstdio> #define ls(o) o<<1 #define rs(o) o<<1|1 using namespace std…

GSS3 Description 动态维护最大子段和,支持单点修改. Solution 设 \(f[i]\) 表示以 \(i\) 为结尾的最大子段和, \(g[i]\) 表示 \(1 \sim i\) 的最大子段和,那么 \[f[i] = max(f[i - 1] + a[i], a[i])\] \[g[i] = max(g[i - 1], f[i])\] 发现只跟前一项有关.我们希望使用矩阵乘法的思路,但是矩阵乘法通常只能适用于递推问题.因此我们引入广义矩阵乘法. 矩阵乘法问题可分治的原因在于…

题意翻译 nnn 个数, qqq 次操作 操作0 x y把 AxA_xAx​ 修改为 yyy 操作1 l r询问区间 [l,r][l, r][l,r] 的最大子段和 题目描述 You are given a sequence A of N (N <= 50000) integers between -10000 and 10000. On this sequence you have to apply M (M <= 50000) operations: modify the i-th ele…

题面 题解 相信大家写过的传统做法像这样:(这段代码蒯自Karry5307的题解) struct SegmentTree{ ll l,r,prefix,suffix,sum,maxn; }; //... inline void update(ll node) { ll res; tree[node].sum=tree[node<<1].sum+tree[(node<<1)|1].sum; tree[node].maxn=max(tree[node<<1].maxn,tr…

GSS3 - Can you answer these queries III You are given a sequence A of N (N <= 50000) integers between -10000 and 10000. On this sequence you have to apply M (M <= 50000) operations: modify the i-th element in the sequence or for given x y print max{…

SPOJ GSS1_Can you answer these queries I(线段树区间合并) 标签(空格分隔): 线段树区间合并 题目链接 GSS1 - Can you answer these queries I You are given a sequence A1, A[2], ..., A[N] . ( |A[i]| ≤ 15007 , 1 ≤ N ≤ 50000 ). A query is defined as follows: Query(x,y) = Max { a[i]+a…

题意翻译 nnn 个数, qqq 次操作 操作0 x y把 AxA_xAx​ 修改为 yyy 操作1 l r询问区间 [l,r][l, r][l,r] 的最大子段和 感谢 @Edgration 提供的翻译 题目描述 You are given a sequence A of N (N <= 50000) integers between -10000 and 10000. On this sequence you have to apply M (M <= 50000) operations:…

GSS7 Can you answer these queries IV 题目:给出一个数列,原数列和值不超过1e18,有两种操作: 0 x y:修改区间[x,y]所有数开方后向下调整至最近的整数 1 x y:询问区间[x,y]的和 分析: 昨天初看时没什么想法,于是留了个坑.终于在今天补上了. 既然给出了1e18这个条件,那么有什么用呢?于是想到了今年多校一题线段树区间操作时,根据一些性质能直接下沉到每个节点,这里可以吗?考虑1e18开方6次就下降到1了,因此每个节点最多被修改6次.于是我们每…

gss5 Can you answer these queries V 给出数列a1...an,询问时给出: Query(x1,y1,x2,y2) = Max { A[i]+A[i+1]+...+A[j] ; x1 <= i <= y1 , x2 j <= y2 and x1 <= x2 , y1 <= y2 } 分析: 其实画个图分类讨论一下之后,跟gss1基本一样... 注意到x1<=x2 , y1<=y2. 所以大致可以分为: 1.y1<x2: 直接计…

Can you answer these queries II Time Limit: 20 Sec Memory Limit: 256 MB 题目连接 https://www.spoj.com/problems/GSS2/ Description Being a completist and a simplist, kid Yang Zhe cannot solve but get Wrong Answer from most of the OI problems. And he refuse…

2482: [Spoj1557] Can you answer these queries II Time Limit: 20 Sec  Memory Limit: 128 MBSubmit: 145  Solved: 76[Submit][Status][Discuss] Description 给定n个元素的序列. 给出m个询问:求l[i]~r[i]的最大子段和(可选空子段). 这个最大子段和有点特殊:一个数字在一段中出现了两次只算一次. 比如:1,2,3,2,2,2出现了3次,但只算一次,…

Can you answer these queries? Time Limit:2000MS     Memory Limit:65768KB     64bit IO Format:%I64d & %I64u Submit Status Practice HDU 4027 Description A lot of battleships of evil are arranged in a line before the battle. Our commander decides to use…

[BZOJ2482][Spoj1557] Can you answer these queries II Description 给定n个元素的序列. 给出m个询问:求l[i]~r[i]的最大子段和(可选空子段). 这个最大子段和有点特殊:一个数字在一段中出现了两次只算一次. 比如:1,2,3,2,2,2出现了3次,但只算一次,于是这个序列的和是1+2+3=6. Input 第一行一个数n. 第二行n个数,为给定的序列,这些数的绝对值小于等于100000. 第三行一个数m. 接下来m行,每行两个…

A lot of battleships of evil are arranged in a line before the battle. Our commander decides to use our secret weapon to eliminate the battleships. Each of the battleships can be marked a value of endurance. For every attack of our secret weapon, it…

Can you answer these queries? Time Limit: 4000/2000 MS (Java/Others)    Memory Limit: 65768/65768 K (Java/Others) Total Submission(s): 16260    Accepted Submission(s): 3809 Problem Description A lot of battleships of evil are arranged in a line befor…

Can you answer these queries I SPOJ - GSS1 You are given a sequence A[1], A[2], -, A[N] . ( |A[i]| ≤ 15007 , 1 ≤ N ≤ 50000 ). A query is defined as follows: Query(x,y) = Max { a[i]+a[i+1]+-+a[j] ; x ≤ i ≤ j ≤ y }. Given M queries, your program must o…

传送门 解题思路 大概就是一个数很少次数的开方会开到\(1\),而\(1\)开方还是\(1\),所以维护一个和,维护一个开方标记,维护一个区间是否全部为\(1/0\)的标记.然后每次修改时先看是否有全\(1\)或\(0\)的标记,有就不用理了,没有就暴力开方. 代码 #include<iostream> #include<cstdio> #include<cstring> #include<cmath> #define int long long using…

Can you answer these queries? Time Limit: 4000/2000 MS (Java/Others)    Memory Limit: 65768/65768 K (Java/Others)Total Submission(s): 10249    Accepted Submission(s): 2350 Problem Description A lot of battleships of evil are arranged in a line before…

题目链接 之前用线段树写了一遍,现在用\(ddp\)再写一遍. #include <cstdio> #define lc (now << 1) #define rc (now << 1 | 1) inline int max(int a, int b){ return a > b ? a : b; } const int INF = 2147483647 >> 2; const int MAXN = 50010; inline int read(){…

\[ Preface \] 没有 Preface. \[ Description \] 维护一个长度为 \(n\) 的数列 \(A\) ,需要支持以下操作: 0 x y 将 \(A_x\) 改为 \(y\) . 1 x y 求 \(\max\limits_{x \leq l \leq r \leq y}{\sum_{i=l}^rA[i]}\) . \[ Solution \] 区间最大子段和 是一个非常经典的问题. 对于 整体最大子段和 来说,一般有 \(O(n)\) 的 贪心 和 分治 做法,…

题目描述 You are given a sequence \(A\) of \(N (N <= 50000)\) integers between \(-10000\) and \(10000\). On this sequence you have to apply \(M (M <= 50000)\) operations: modify the \(i\)-th element in the sequence or for given \(x\) \(y\) print \(max\{…

传送门 Luogu 解题思路 区间最大子段和板子题. 考虑用线段树来做. 对于一个线段树节点所包含区间,它的最大子段和有两种情况,包含中点与不包含. 不包含的情况直接从左右子树转移. 对于包含的情况: 我们对每个节点维护两个值:开头是左端点的最大子段和,结尾是右端点的最大子段和. 那么包含中点的情况可以用上面两个东西转移. 那么这两个东西又怎么维护呢... 他们也有包含与不包含中点的情况,只要记一下节点的区间和就可以了,具体方法同上. 于是便搞定了这道题. 细节注意事项 咕咕咕 参考代码 #in…

Time Limit: 330MS   Memory Limit: 1572864KB   64bit IO Format: %lld & %llu Description You are given a sequence A of N (N <= 50000) integers between -10000 and 10000. On this sequence you have to apply M (M <= 50000) operations: modify the i-th…

线段树操作. 维护一个区间最大连续子段和,左最大连续子段和,右最大连续子段和即可. 最后不知道怎么搞,query的时候返回了个结构体. #include <cstdio> #include <cstring> #include <iostream> using namespace std; const int N=50005; int n,q,a[N],opt,x,y; struct Segtree{int l,r,lmx,rmx,mx,sum;}t[N<<…

Description You are given a sequence A[1], A[2], ..., A[N] . ( |A[i]| ≤ 15007 , 1 ≤ N ≤ 50000 ). A query is defined as follows: Query(x,y) = Max { a[i]+a[i+1]+...+a[j] ; x ≤ i ≤ j ≤ y }. Given M queries, your program must output the results of these…

题面 You are given a sequence \(a_1,a_2,...,a_n\). (\(|A[i]| \leq 10000 , 1 \leq N \leq 10000\)). A query is defined as follows: Query(x1,y1,x2,y2) = \(Max{a_i+a_{i+1}+...+a_j;x_1 \leq i \leq y_1 , x_2 \leq j \leq y_2}\) and \(x_1 \leq x_2 , y_1 \leq y…