Mayor's posters Time Limit: 1000MS    Memory Limit: 65536K   Description The citizens of Bytetown, AB, could not stand that the candidates in the mayoral election campaign have been placing their electoral posters at all places at their whim. The cit…

http://poj.org/problem?id=2528 https://www.luogu.org/problem/UVA10587 Description The citizens of Bytetown, AB, could not stand that the candidates in the mayoral election campaign have been placing their electoral posters at all places at their whim…

题目分析:线段树区间更新+离散化 代码如下: # include<iostream> # include<cstdio> # include<queue> # include<vector> # include<list> # include<map> # include<set> # include<cstdlib> # include<string> # include<cstring&g…

题意 : 在墙上贴海报, n(n<=10000)个人依次贴海报,给出每张海报所贴的范围li,ri(1<=li<=ri<=10000000).求出最后还能看见多少张海报. 分析 : 很容易想到利用线段树来成段置换,最后统计总区间不同数的个数.但是这里有一个问题,就是区间可以很大,线段树开不了那么大的空间,遂想能不能离散化.实际上只记录坐标的相对大小进行离散化最后是不影响我们计算的,但是光是普通的离散化是不行的,就是我们贴海报的实际意义是对(l, r)段进行添加,而不是对于这个区间的点…

Mayor's posters Time Limit: 1000MS   Memory Limit: 65536K Total Submissions: 54067   Accepted: 15713 Description The citizens of Bytetown, AB, could not stand that the candidates in the mayoral election campaign have been placing their electoral post…

恩,这区间范围挺大的,需要离散化.如果TLE,还需要优化一下常数. AC代码 #include <stdio.h> #include <string.h> #include <map> #include <set> #include <algorithm> using namespace std; +; typedef pair<int, int> Pii; Pii a[ + ]; +], c[maxn]; ]; void build…

题意:给一个区间,表示这个区间贴了一张海报,后贴的会覆盖前面的,问最后能看到几张海报. 思路: 之前就不会离散化,先讲一下离散化:这里离散化的原理是:先把每个端点值都放到一个数组中并除重+排序,我们就得到了处理后的数组,现在我们只需要用二分查找端点值在整个数组的下标,这样就达到了离散化的目的,压缩了长度.因为这里很特殊,不能用一般的离散化去做,如果区间两端只差1,那么需要给这个区间再加一个值,这个其他题解讲到了. 这里的区间更新和上一题不太一样,有一些地方要注意一下 代码: #include<q…

题目大意:有t组数据,每组数据给你n张海报(1<=n<=10000),下面n组数据分别给出每张海报的左右范围(1 <= l <= r <= 10000000),下一张海报会覆盖前一张海报,求最后可见(包括完全和不完全可见)的海报有几张. 例如: 1 5 1 4 2 6 8 10 3 4 7 10 如上图所示,答案为4. 解题思路:其实这是一道区间染色问题,但是由于查找区间太大,显然直接建树会导致MLE,所以这里通过使用对区间的离散化来缩小查找范围.参考了一些大牛博客,简单说一…

The citizens of Bytetown, AB, could not stand that the candidates in the mayoral election campaign have been placing their electoral posters at all places at their whim. The city council has finally decided to build an electoral wall for placing the…

题目传送门: POJ-2528 题意就是在一个高度固定的墙面上贴高度相同宽度不同的海报,问贴到最后还能看到几张?本质上是线段树区间更新问题,但是要注意的是题中所给数据范围庞大,直接搞肯定会搞出问题,所以要离散化,而离散化的过程中要注意一个问题,比方说1-10,1-5,6-10,本来是可以三张海报都可以看见的,但是按照题意来看是看不到的,因为他是一个点代表一个单位长度(诡异>_<),解决的办法则是对于距离大于1的两相邻点,中间再插入一个点...... 代码如下,我用了vector,和用数组的相差…