不懂树状数组的童鞋,正好可以通过这道题学习一下树状数组~~百度有很多教程的,我就不赘述了 题意:有三种操作,分别是1.Push key:将key压入stack2.Pop:将栈顶元素取出栈3.PeekMedian:返回stack中第(n+1)/2个小的数 建立一个栈来模拟push和pop,另外还需要树状数组,来统计栈中<=某个数的总个数不了解树状数组的建议学习一下,很有用的.树状数组为c,有个虚拟的a数组,a[i]表示i出现的次数sum(i)就是统计a[1]~a[i]的和,即1~i出现的次数当我要…

题目如下: Stack is one of the most fundamental data structures, which is based on the principle of Last In First Out (LIFO). The basic operations include Push (inserting an element onto the top position) and Pop (deleting the top element). Now you are su…

1057 Stack (30 分) Stack is one of the most fundamental data structures, which is based on the principle of Last In First Out (LIFO). The basic operations include Push (inserting an element onto the top position) and Pop (deleting the top element). No…

题目:https://pintia.cn/problem-sets/994805342720868352/problems/994805417945710592 题意:对一个栈进行push, pop和找中位数三种操作. 思路: 好久没写题.感觉傻逼题写多了稍微有点数据结构的都不会写了. pop和push操作就不说了. 找中位数的话就二分去找某一个数前面一共有多少小于他的数,找到那个小于他的数刚好等于一半的. 找的过程中要用到前缀和,所以自然而然就应该上树状数组. 要注意树状数组的界应该是1e5而…

1057 Stack (30)(30 分) Stack is one of the most fundamental data structures, which is based on the principle of Last In First Out (LIFO). The basic operations include Push (inserting an element onto the top position) and Pop (deleting the top element)…

题意: 输入一个正整数N(<=1e5),接着输入N行字符串,模拟栈的操作,非入栈操作时输出中位数.(总数为偶数时输入偏小的) trick: 分块操作节约时间 AAAAAccepted code: #define HAVE_STRUCT_TIMESPEC #include<bits/stdc++.h> using namespace std; string s; stack<int>sk; ],block[]; int main(){ ios::sync_with_stdio(…

[题解]Music Festival(树状数组优化dp) Gym - 101908F 题意:有\(n\)种节目,每种节目有起始时间和结束时间和权值.同一时刻只能看一个节目(边界不算),在所有种类都看过至少一遍的情况下最大收益 设\(dp(s,i)\)表示已经看过\(s\)集合中的节目,且看过的节目的结束时间是\(i\)的最大收益. 转移: \[ dp(s,e[t].r)=\max(dp(s,k),dp(s-e[t].id,k))+e[t].val,k\le e[t].l \] 由于\(O(m^3…

树状数组+二分. #include<iostream> #include<cstring> #include<cmath> #include<algorithm> #include<cstdio> #include<map> #include<queue> #include<string> #include<stack> #include<vector> using namespace…

1057. Stack Stack is one of the most fundamental data structures, which is based on the principle of Last In First Out (LIFO). The basic operations include Push (inserting an element onto the top position) and Pop (deleting the top element). Now you…

目录 题目大意 题目分析 题目大意 要求维护一个栈,提供压栈.弹栈以及求栈内中位数的操作(当栈内元素\(n\)为偶数时,只是求第\(n/2\)个元素而非中间两数的平均值).最多操作100000次,压栈的数字\(key\)范围是[1,100000]. 题目分析 前两个操作用\(stack\)就好. 求中位数.暴力做法即使用上优先队列也是稳稳的超时.考虑树状数组. 压栈时,将\(key\)值对应的位置加1.弹栈减1. 求中位数,可以二分求出\(sum[1:p]==(n+1)/2\)最小的\(p\),…

博主欢迎转载,但请给出本文链接,我尊重你,你尊重我,谢谢~http://www.cnblogs.com/chenxiwenruo/p/6102219.html特别不喜欢那些随便转载别人的原创文章又不给出链接的所以不准偷偷复制博主的博客噢~~ 时隔两年,又开始刷题啦,这篇用于PAT甲级题解,会随着不断刷题持续更新中,至于更新速度呢,嘿嘿,无法估计,不知道什么时候刷完这100多道题. 带*的是我认为比较不错的题目,其它的难点也顶多是细节处理的问题~ 做着做着,发现有些题目真的是太水了,都不想写题解了…

Suppose that the fourth generation mobile phone base stations in the Tampere area operate as follows. The area is divided into squares. The squares form an S * S matrix with the rows and columns numbered from 0 to S-1. Each square contains a base sta…

C. Propagating tree Time Limit: 20 Sec Memory Limit: 256 MB 题目连接 http://codeforces.com/contest/383/problem/C Description Iahub likes trees very much. Recently he discovered an interesting tree named propagating tree. The tree consists of n nodes numb…

H. Milestones Time Limit: 1 Sec Memory Limit: 256 MB 题目连接 http://codeforces.com/gym/100114 Description The longest road of the Fairy Kingdom has n milestones. A long-established tradition defines a specific color for milestones in each region, with a…

Given an N*N matrix A, whose elements are either 0 or 1. A[i, j] means the number in the i-th row and j-th column. Initially we have A[i, j] = 0 (1 <= i, j <= N). We can change the matrix in the following way. Given a rectangle whose upper-left corn…

Every year, Farmer John's N (1 <= N <= 20,000) cows attend "MooFest",a social gathering of cows from around the world. MooFest involves a variety of events including haybale stacking, fence jumping, pin the tail on the farmer, and of cours…

Performance ReviewEmployee performance reviews are a necessary evil in any company. In a performance review, employees give written feedback about each other on the work done recently. This feedback is passed up to their managers which then decide pr…

题目描述 有一张n×m的数表,其第i行第j列(1 <= i <= n ,1 <= j <= m)的数值为能同时整除i和j的所有自然数之和.给定a,计算数表中不大于a的数之和. 输入 输入包含多组数据.输入的第一行一个整数Q表示测试点内的数据组数,接下来Q行,每行三个整数n,m,a(|a| < =10^9)描述一组数据. 输出 对每组数据,输出一行一个整数,表示答案模2^31的值. 样例输入 2 4 4 3 10 10 5 样例输出 20 148 题解 莫比乌斯反演+离线+树状…

题目: Cao Cao made up a big army and was going to invade the whole South China. Yu Zhou was worried about it. He thought the only way to beat Cao Cao is to have a spy in Cao Cao's army. But all generals and soldiers of Cao Cao were loyal, it's impossib…

3295: [Cqoi2011]动态逆序对 Time Limit: 10 Sec  Memory Limit: 128 MBSubmit: 2886  Solved: 924[Submit][Status][Discuss] Description 对于序列A,它的逆序对数定义为满足i<j,且Ai>Aj的数对(i,j)的个数.给1到n的一个排列,按照某种顺序依次删除m个元素,你的任务是在每次删除一个元素之前统计整个序列的逆序对数. Input 输入第一行包含两个整数n和m,即初始元素的个数和删…

2141: 排队 Time Limit: 4 Sec  Memory Limit: 259 MBSubmit: 1310  Solved: 517[Submit][Status][Discuss] Description 排排坐,吃果果,生果甜嗦嗦,大家笑呵呵.你一个,我一个,大的分给你,小的留给我,吃完果果唱支歌,大家乐和和.红星幼儿园的小朋友们排起了长长地队伍,准备吃果果.不过因为小朋友们的身高有所区别,排成的队伍高低错乱,极不美观.设第i个小朋友的身高为hi,我们定义一个序列的杂乱程度为:…

1112 - Curious Robin Hood    PDF (English) Statistics Forum Time Limit: 1 second(s) Memory Limit: 64 MB Robin Hood likes to loot rich people since he helps the poor people with this money. Instead of keeping all the money together he does another tri…

题目描述 JYY有N个平面坐标系中的矩形.每一个矩形的底边都平行于X轴,侧边平行于Y轴.第i个矩形的左下角坐标为(Xi,Yi),底边长为Ai,侧边长为Bi.现在JYY打算从这N个矩形中,随机选出两个不同的矩形,并计算它们的并的大小.JYY想知道,交的大小的期望是多少.换句话说即求在所有可能的选择中,两个矩形交的面积的平均大小是多大. 输入 输入一行包含一个正整数N. 接下来N行,每行4个整数,分别为Xi,Yi,Ai,Bi 2 < =  N < =  2*10^5, 0 < =  Xi,…

[题意]给定ai,将1~n从小到大插入到第ai个数字之后,求每次插入后的LIS长度. [算法]树状数组||平衡树 [题解] 这是树状数组的一个用法:O(n log n)寻找前缀和为k的最小位置.(当数列中只有0和1时,转化为求对应排名的数字,就是简单代替平衡树) 根据树状数组的二进制分组规律,从大到小进行倍增,可以发现每次需要加的Σa[i],i∈(now,now+(1<<i)]刚好就是c[now+(1<<i)]. 文字表述就是,跳跃到的位置的c[]刚好表示中间跳跃的数字和,这是树状…

---题面--- 题解: 二维树状数组的板子题,,,学了这么久第一次写二维树状数组,惭愧啊. 怎么写就不说了,看代码吧. 跟普通的是一样的写法 #include<bits/stdc++.h> using namespace std; #define R register int #define AC 302 #define lowbit(x) (x & (-x)) int n, m, k; int a[AC][AC], c[AC][AC][AC]; inline int read()…

[题目链接] http://poj.org/problem?id=2155 [题目大意] 要求维护两个操作,矩阵翻转和单点查询 [题解] 树状数组可以处理前缀和问题,前缀之间进行容斥即可得到答案. [代码] #include <cstring> #include <cstdio> const int N=1010; using namespace std; int c[N][N],n,m,T; char op[2]; void add(int x,int y){ int i,j,k…

题目描述 PP大厦有一间空的礼堂,可以为企业或者单位提供会议场地.这些会议中的大多数都需要连续几天的时间(个别的可能只需要一天),不过场地只有一个,所以不同的会议的时间申请不能够冲突.也就是说,前一个会议的结束日期必须在后一个会议的开始日期之前.所以,如果要接受一个新的场地预约申请,就必须拒绝掉与这个申请相冲突的预约. 一般来说,如果PP大厦方面事先已经接受了一个会场预约,例如从10日到15日,就不会在接受与之相冲突的预约,例如从12日到17日.不过,有时出于经济利益,PP大厦方面有时会为了接受…

Time Limit: 1000MSMemory Limit: 30000K Total Submissions: 8141Accepted: 3674 Description Every year, Farmer John's N (1 <= N <= 20,000) cows attend "MooFest",a social gathering of cows from around the world. MooFest involves a variety of e…

第一部分---线段树:https://leetcode.com/tag/segment-tree/ [218]The Skyline Problem [307]Range Sum Query - Mutable [308]Range Sum Query 2D - Mutable [315]Count of Smaller Numbers After Self [493]Reverse Pairs [699]Falling Squares (我的线段树第一题,2019年1月24日) 在 X 轴上落…

1057 Stack (30 分)   Stack is one of the most fundamental data structures, which is based on the principle of Last In First Out (LIFO). The basic operations include Push (inserting an element onto the top position) and Pop (deleting the top element).…