hdu 3410 单调栈

http://acm.hdu.edu.cn/showproblem.php?pid=3410

Passing the Message

Time Limit: 2000/1000 MS (Java/Others)    Memory Limit: 32768/32768 K (Java/Others)
Total Submission(s): 827    Accepted Submission(s): 546


Problem Description
What a sunny day! Let’s go picnic and have barbecue! Today, all kids in “Sun Flower” kindergarten are prepared to have an excursion. Before kicking off, teacher Liu tells them to stand in a row. Teacher Liu has an important message to announce, but she doesn’t want to tell them directly. She just wants the message to spread among the kids by one telling another. As you know, kids may not retell the message exactly the same as what they was told, so teacher Liu wants to see how many versions of message will come out at last. With the result, she can evaluate the communication skills of those kids.
Because all kids have different height, Teacher Liu set some message passing rules as below:

1.She tells the message to the tallest kid.

2.Every kid who gets the message must retell the message to his “left messenger” and “right messenger”.

3.A kid’s “left messenger” is the kid’s tallest “left follower”.

4.A kid’s “left follower” is another kid who is on his left, shorter than him, and can be seen by him. Of course, a kid may have more than one “left follower”.

5.When a kid looks left, he can only see as far as the nearest kid who is taller than him.

The definition of “right messenger” is similar to the definition of “left messenger” except all words “left” should be replaced by words “right”.

For example, suppose the height of all kids in the row is 4, 1, 6, 3, 5, 2 (in left to right order). In this situation , teacher Liu tells the message to the 3rd kid, then the 3rd kid passes the message to the 1st kid who is his “left messenger” and the 5th kid who is his “right messenger”, and then the 1st kid tells the 2nd kid as well as the 5th kid tells the 4th kid and the 6th kid.
Your task is just to figure out the message passing route.
 

 

Input
The first line contains an integer T indicating the number of test cases, and then T test cases follows.
Each test case consists of two lines. The first line is an integer N (0< N <= 50000) which represents the number of kids. The second line lists the height of all kids, in left to right order. It is guaranteed that every kid’s height is unique and less than 2^31 – 1 .
 

 

Output
For each test case, print “Case t:” at first ( t is the case No. starting from 1 ). Then print N lines. The ith line contains two integers which indicate the position of the ith (i starts form 1 ) kid’s “left messenger” and “right messenger”. If a kid has no “left messenger” or “right messenger”, print ‘0’ instead. (The position of the leftmost kid is 1, and the position of the rightmost kid is N)
 

 

Sample Input
2 5 5 2 4 3 1 5 2 1 4 3 5
 

 

Sample Output
Case 1: 0 3 0 0 2 4 0 5 0 0 Case 2: 0 2 0 0 1 4 0 0 3 0
 

 

Source
要找的就是每个元素左右两侧能看见的(如果被更高的挡住就表示看不见)比这个人低的所有人里最高的那个,没有的话输出0;
显然具有单调性,当比栈顶还低/空栈时表示没符合条件的人,输出0并入栈;
当高于栈顶时,由于是一个单调递减栈,一直出栈找到符合条件的最高者记下id即可,记得把这个人最后入栈;
由于i=k时出栈的都是比a[k]矮的人,后面出现a[j]<a[k]的情况显然他看不见pop掉的人,如果a[j]>a[k]则选a[k]显然优于选pop掉的人,所以可以pop掉;
复制代码
 1 #include <iostream>
 2 #include<algorithm>
 3 #include<stack>
 4 #include<cstdio>
 5 #include<cstring>
 6 using namespace std;
 7 typedef long long LL;
 8 const int MAX = 50005;
 9 int a[MAX], l[MAX], r[MAX];
10 int main()
11 {
12     int N, i, j, k, t;
13     scanf("%d", &t);
14     for (int cas = 1;cas <= t;++cas) 
15     {
16         stack<int>S;
17         //memset(l, 0, sizeof(l));
18         //memset(r, 0, sizeof(r));
19         scanf("%d", &N);
20         for (i = 1;i <= N;++i) scanf("%d", &a[i]);
21         for (i = 1;i <= N;++i) {
22             if (S.empty() || a[i]<a[S.top()]) {
23                 l[i] = 0;
24                 S.push(i);
25             }
26             else {
27                 while (!S.empty()&&a[S.top()]<a[i]) {
28                     l[i] = S.top();
29                     S.pop();
30                 }
31                 S.push(i);
32             }
33         }while (!S.empty())S.pop();
34         for (i = N;i >= 1;--i) {
35             if (S.empty() || a[i]<a[S.top()]) {
36                 r[i] = 0;
37                 S.push(i);
38             }
39             else {
40                 while (!S.empty() && a[S.top()]<a[i]) {
41                     r[i] = S.top();
42                     S.pop();
43                 }
44                 S.push(i);
45             }
46         }
47         printf("Case %d:\n", cas);
48         for (i = 1;i <= N;++i) printf("%d %d\n", l[i], r[i]);
49     }
50     return 0;
51 }
复制代码

 

posted @   *zzq  阅读(399)  评论(0编辑  收藏  举报
编辑推荐:
· Java 中堆内存和栈内存上的数据分布和特点
· 开发中对象命名的一点思考
· .NET Core内存结构体系(Windows环境)底层原理浅谈
· C# 深度学习:对抗生成网络(GAN)训练头像生成模型
· .NET 适配 HarmonyOS 进展
阅读排行:
· 如何给本地部署的DeepSeek投喂数据,让他更懂你
· 超详细,DeepSeek 接入PyCharm实现AI编程!(支持本地部署DeepSeek及官方Dee
· 用 DeepSeek 给对象做个网站,她一定感动坏了
· .NET 8.0 + Linux 香橙派,实现高效的 IoT 数据采集与控制解决方案
· .NET中 泛型 + 依赖注入 的实现与应用
点击右上角即可分享
微信分享提示