题目分析: 前缀和啥的模拟一下就行了. 代码: #include<bits/stdc++.h> using namespace std; ; int n,x,d[maxn],sta[maxn],top; long long minn[maxn],c[maxn],maxx[maxn]; void read(){ scanf("%d%d",&n,&x); ;i<=n;i++) scanf("%d%lld",&d[i],&…

咸鱼了好久...出来冒个泡_(:з」∠)_ 题目连接:1107G - Vasya and Maximum Profit 题目大意:给出\(n,a\)以及长度为\(n\)的数组\(c_i\)和长度为\(n\)的严格单调上升数组\(d_i\),求\(\max\limits_{1 \le l \le r \le n} (a\cdot(r-l+1)-\sum_{i=l}^{r}c_i-gap(l,r))\),其中\(gap(l, r) = \max\limits_{l \le i < r} (d_{i…

Codeforces 1107G 线段树最大子段和 + 单调栈 G. Vasya and Maximum Profit Description: Vasya got really tired of these credits (from problem F) and now wants to earn the money himself! He decided to make a contest to gain a profit. Vasya has \(n\) problems to choo…

洛谷 Codeforces 我竟然能在有生之年踩标算. 思路 首先考虑暴力:枚举左右端点直接计算. 考虑记录\(sum_x=\sum_{i=1}^x c_i\),设选\([l,r]\)时那个奇怪东西的平方为\(f(l,r)\),使劲推式子: \[ ans_{l,r}=(r-l+1)\times a-sum_r+sum_{l-1}-f(l,r)\\ ans_{l,r}+l\times a-a-sum_{l-1}=r\times a-sum_r-f(l,r)\\ ans_{l,r}+l\times…

题目传送门 题解: 枚举 r 的位置. 线段树每个叶子节点存的是对应的位置到当前位置的价值. 每次往右边移动一个r的话,那么改变的信息有2个信息: 1. sum(a-ci) 2.gap(l, r) 对于第一个东西,我们直接对[1,r]区间内的所有值都加上a-ci就好了. 对于第2个修改的值,首先要明白的是,这个值只会对[1,r-1]内的值存在影响. 并且可以发现,每一段区间的这个gap值每次更新完之后是从左到右递减的,所以我们可以用一个单调栈来维护这个gap值. 代码: /* code by:…

https://github.com/Premiumlab/Python-for-Algorithms--Data-Structures--and-Interviews/blob/master/Mock%20Interviews/Large%20E-Commerce%20Company/E-Commerce%20Company%20-%20Interview%20Problems%20-%20SOLUTIONS/On-Site%20Question%201%20-%20SOLUTION.ipyn…

Yaoge’s maximum profit Time Limit: 10000/5000 MS (Java/Others)    Memory Limit: 65536/65536 K (Java/Others) 题目链接 http://acm.hdu.edu.cn/showproblem.php?pid=5052 Problem Description Yaoge likes to eat chicken chops late at night. Yaoge has eaten too ma…

Maximum Profit You can obtain profits from foreign exchange margin transactions. For example, if you buy 1000 dollar at a rate of 100 yen per dollar, and sell them at a rate of 108 yen per dollar, you can obtain (108 - 100) × 1000 = 8000 yen. Write a…

题目如下: We have n jobs, where every job is scheduled to be done from startTime[i] to endTime[i], obtaining a profit of profit[i]. You're given the startTime , endTime and profit arrays, you need to output the maximum profit you can take such that there…

B. Vasya and Wrestling time limit per test 2 seconds memory limit per test 256 megabytes input standard input output standard output Vasya has become interested in wrestling. In wrestling wrestlers use techniques for which they are awarded points by…