HDU3410 Passing the Message(单调队列模板)
2017-03-02 23:45
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Passing the Message
Time Limit: 2000/1000 MS (Java/Others) Memory Limit: 32768/32768 K (Java/Others)Total Submission(s): 715 Accepted Submission(s): 471
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
2010 National Programming Invitational
Contest Host by ZSTU
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wxl
题目大意:老师要传递消息给最高的人,然后最高的人往两边传递给他次高的人以此类推,左右没有人输出0,否则输出索引值
解题思路:这道题是个单调队列,每次加入单调队列的时候比较一下自己是否比旁边的大,来存储是否可以传递,从左边排一次,从右边排一次
#include<iostream> #include<cstdio> #include<stdio.h> #include<cstring> #include<cstdio> #include<climits> #include<cmath> #include<vector> #include <bitset> #include<algorithm> #include <queue> #include<map> using namespace std; struct que { long long int number; int index; }qul[50010],qur[50010]; long long int a[50010]; int l[50010], r[50010]; int i, k, n, N, j, rear, front, flag; int main() { cin >> N; for (k = 1; k <= N; k++) { memset(a, 0, sizeof(a)); memset(qul, 0, sizeof(qul)); memset(qur, 0, sizeof(qur)); cin >> n; for (j = 1; j <= n; j++) { cin >> a[j]; } cout << "Case " << k << ":" << endl; rear = 0, front = 0; //qul[1].index = -1, qul[1].number = 0; for (i = 1; i <= n; i++) { flag = 0; while (front<=rear&&qul[rear].number<=a[i]) { flag = 1; rear--; } if (flag==1) { l[i] = qul[rear + 1].index; } else { l[i] = 0; } qul[++rear].index = i; qul[rear].number = a[i]; } rear = 0, front = 0; //qur[1].index = -1, qur[1].number = 0; for (i = n; i >= 1; i--) { flag = 0; while (front <= rear&&qur[rear].number <= a[i]) { flag = 1; rear--; } if (flag==1) { r[i] = qur[rear + 1].index; } else { r[i] = 0; } qur[++rear].index = i; qur[rear].number = a[i]; } /*if (qul[1].index < qur[2].index) { l[1] = qul[2].index; } if (qur[1].index > qur[2].index) { r[1] = qur[2].index; }*/ for (i = 1; i <= n; i++) { cout << l[i] << " " << r[i] << endl; } } }
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