• POJ2241——The Tower of Babylon


    The Tower of Babylon
    Time Limit: 1000MS   Memory Limit: 65536K
    Total Submissions: 2207   Accepted: 1244

    Description

    Perhaps you have heard of the legend of the Tower of Babylon. Nowadays many details of this tale have been forgotten. So now, in line with the educational nature of this contest, we will tell you the whole story:
    The babylonians had n types of blocks, and an unlimited supply of blocks of each type. Each type-i block was a rectangular solid with linear dimensions (xi, yi, zi). A block could be reoriented so that any two of its three dimensions determined the dimensions of the base and the other dimension was the height.
    They wanted to construct the tallest tower possible by stacking blocks. The problem was that, in building a tower, one block could only be placed on top of another block as long as the two base dimensions of the upper block were both strictly smaller than the corresponding base dimensions of the lower block. This meant, for example, that blocks oriented to have equal-sized bases couldn't be stacked.

    Your job is to write a program that determines the height of the tallest tower the babylonians can build with a given set of blocks.

    Input

    The input will contain one or more test cases. The first line of each test case contains an integer n,
    representing the number of different blocks in the following data set. The maximum value for n is 30.
    Each of the next n lines contains three integers representing the values xi, yi and zi.
    Input is terminated by a value of zero (0) for n.

    Output

    For each test case, print one line containing the case number (they are numbered sequentially starting from 1) and the height of the tallest possible tower in the format "Case case: maximum height = height"

    Sample Input

    1
    10 20 30
    2
    6 8 10
    5 5 5
    7
    1 1 1
    2 2 2
    3 3 3
    4 4 4
    5 5 5
    6 6 6
    7 7 7
    5
    31 41 59
    26 53 58
    97 93 23
    84 62 64
    33 83 27
    0
    

    Sample Output

    Case 1: maximum height = 40
    Case 2: maximum height = 21
    Case 3: maximum height = 28
    Case 4: maximum height = 342
    

    Source

    Ulm Local 1996

    每个箱子产生6种状态,然后假设两个箱子能够叠放,就连一条边,最后记忆化搜索即可

    #include<map>  
    #include<set>  
    #include<list>  
    #include<stack>  
    #include<queue>  
    #include<vector>  
    #include<cmath>  
    #include<cstdio>  
    #include<cstring>  
    #include<iostream>  
    #include<algorithm>  
      
    using namespace std;  
      
    struct node  
    {  
        int x, y, z;  
    }block[200];  
      
    int cnt;  
    int dp[200];  
    bool g[200][200];  
      
    bool is_ok(node a, node b)  
    {  
        if(a.x < b.x && a.y < b.y)  
        {  
            return true;  
        }  
        return false;  
    }  
      
    void get_block(int x, int y, int z)  
    {  
        block[cnt].x = x;  
        block[cnt].y = y;  
        block[cnt].z = z;  
        cnt++;  
    }  
      
    int dfs(int i)  
    {  
        if(dp[i])  
        {  
            return dp[i];  
        }  
        dp[i] = block[i].z;  
        for(int j = 0; j < cnt; j++)  
        {  
            if(g[i][j])  
            {  
                dp[i] = max(dp[i], dfs(j) + block[i].z);  
            }  
        }  
        return dp[i];  
    }  
      
    int main()  
    {  
        int n;  
        int icase = 1;  
        while (~scanf("%d", &n), n)  
        {  
            int x, y, z;  
            cnt = 0;  
            for(int i = 0; i < n; i++)  
            {  
                scanf("%d%d%d", &x, &y, &z);  
                get_block(x, y, z);  
                get_block(x, z, y);  
                get_block(y, x, z);  
                get_block(y, z, x);  
                get_block(z, x, y);  
                get_block(z, y, x);  
            }  
            memset( dp, 0, sizeof(dp) );  
            memset( g, 0, sizeof(g) );  
            for (int i = 0; i < cnt; i++)  
            {  
                for(int j = 0; j < cnt; j++)  
                {  
                    if( is_ok(block[i], block[j]) )  
                    {  
                        g[i][j] = 1;  
                    }  
                }  
            }  
            int ans = 0;  
            for(int i = 0; i < cnt; i++)  
            {  
                ans = max(ans, dfs(i));  
            }  
            printf("Case %d: maximum height = %d
    ", icase++, ans);  
        }  
        return 0;  
    } 


  • 相关阅读:
    【技巧总结】公开漏洞学习
    【 Keepalived 】Nginx or Http 主-主模式
    【 Keepalived 】Nginx or Http 主-备模式
    【 转 】Keepalived工作原理
    【 总结 】crontab 使用脚本及直接获取HTTP状态码
    【 总结 】linux中test命令详解
    【 总结 】Tcp Keepalive 和 HTTP Keepalive 详解
    【 Linux 】I/O工作模型及Web服务器原理
    【 Ngnix 】配置路径转发至后端Apache多台虚拟主机
    【 Linux】脚本导入格式
  • 原文地址:https://www.cnblogs.com/lcchuguo/p/4074603.html
Copyright © 2020-2023  润新知