hdu 1011(Starship Troopers,树形dp)

本文介绍了一款名为《星舰战士》的游戏背后的算法挑战。玩家需合理分配士兵以消灭虫族并尽可能捕获虫族大脑,通过数学建模与动态规划算法实现最优解。文章详细解释了输入输出格式及核心代码实现。

摘要生成于 C知道 ,由 DeepSeek-R1 满血版支持, 前往体验 >

                            Starship Troopers

Time Limit: 10000/5000 MS (Java/Others)
Memory Limit: 65536/32768 K (Java/Others)
Total Submission(s): 19362
Accepted Submission(s): 5130

Problem Description
You, the leader of Starship Troopers, are sent to destroy a base of the bugs. The base is built underground. It is actually a huge cavern, which consists of many rooms connected with tunnels. Each room is occupied by some bugs, and their brains hide in some of the rooms. Scientists have just developed a new weapon and want to experiment it on some brains. Your task is to destroy the whole base, and capture as many brains as possible.

To kill all the bugs is always easier than to capture their brains. A map is drawn for you, with all the rooms marked by the amount of bugs inside, and the possibility of containing a brain. The cavern’s structure is like a tree in such a way that there is one unique path leading to each room from the entrance. To finish the battle as soon as possible, you do not want to wait for the troopers to clear a room before advancing to the next one, instead you have to leave some troopers at each room passed to fight all the bugs inside. The troopers never re-enter a room where they have visited before.

A starship trooper can fight against 20 bugs. Since you do not have enough troopers, you can only take some of the rooms and let the nerve gas do the rest of the job. At the mean time, you should maximize the possibility of capturing a brain. To simplify the problem, just maximize the sum of all the possibilities of containing brains for the taken rooms. Making such a plan is a difficult job. You need the help of a computer.

Input
The input contains several test cases. The first line of each test case contains two integers N (0 < N <= 100) and M (0 <= M <= 100), which are the number of rooms in the cavern and the number of starship troopers you have, respectively. The following N lines give the description of the rooms. Each line contains two non-negative integers – the amount of bugs inside and the possibility of containing a brain, respectively. The next N - 1 lines give the description of tunnels. Each tunnel is described by two integers, which are the indices of the two rooms it connects. Rooms are numbered from 1 and room 1 is the entrance to the cavern.

The last test case is followed by two -1’s.

Output
For each test case, print on a single line the maximum sum of all the possibilities of containing brains for the taken rooms.

Sample Input
5 10
50 10
40 10
40 20
65 30
70 30
1 2
1 3
2 4
2 5
1 1
20 7
-1 -1

Sample Output
50
7

#include<map>
#include<set>
#include<queue>
#include<stack>
#include<vector>
#include<math.h>
#include<cstdio>
#include<sstream>
#include<numeric>//STL数值算法头文件
#include<stdlib.h>
#include <ctype.h>
#include<string.h>
#include<iostream>
#include<algorithm>
#include<functional>//模板类头文件
using namespace std;

typedef long long ll;
const int maxn=500;//之前很多把wa都是数组开的太小了
const int INF=0x3f3f3f3f;

int x,y,n,m,id;
int dp[maxn][maxn],bug[maxn],p[maxn],vis[maxn],head[maxn];

struct node
{
    int now,next;
} tree[maxn];

int add_edgree(int x,int y)
{
    tree[id].now=y;
    tree[id].next=head[x];
    head[x]=id++;
}

void dfs(int root)
{
    int cost,i,j,k,son;
    vis[root]=1;
    cost=(bug[root]+19)/20;
    for(i=cost; i<=m; i++)
        dp[root][i]=p[root];//从root结点到下一个节点能得到p[root]
    for(i=head[root]; i!=-1; i=tree[i].next)
    {
        son=tree[i].now;
        if(!vis[son])
        {
            dfs(son);//从son结点遍历其子树
            for(j=m; j>=cost; j--)//类似于01背包
            {
                for(k=1; j+k<=m; k++)//从root到son需要j,son需要k
                    if(dp[son][k])
                        dp[root][j+k]=max(dp[root][j+k],dp[root][j]+dp[son][k]);
            }
        }
    }
}

int main()
{
    while(~scanf("%d %d",&n,&m)&&(n!=-1||m!=-1))
    {
        id=0;
        memset(dp,0,sizeof(dp));
        memset(vis,0,sizeof(vis));
        memset(bug,0,sizeof(bug));
        memset(p,0,sizeof(p));
        memset(head,-1,sizeof(head));
        for(int i=1; i<=n; i++)
            scanf("%d %d",&bug[i],&p[i]);
        for(int i=1; i<n; i++)
        {
            scanf("%d %d",&x,&y);
            add_edgree(x,y);//建树
            add_edgree(y,x);
        }
        if(!m)
        {
            printf("0\n");
            continue;
        }
        dfs(1);
        printf("%d\n",dp[1][m]);
    }
    return 0;
}
<think>嗯,用户想了解Excel中的VLOOKUP函数的用法和参数含义。首先,我需要回忆一下VLOOKUP的基本结构。VLOOKUP是垂直查找函数,用于在表格的首列查找指定的值,然后返回该行中指定列的数据。它的四个参数分别是查找值、表格范围、列索引号和匹配模式。 接下来,我得确认每个参数的具体作用。第一个参数是lookup_value,也就是用户要查找的值,比如产品ID或者姓名。第二个参数是table_array,即查找的范围,这里要注意的是,查找值必须位于这个范围的第一列,否则函数无法正确工作。第三个参数是col_index_num,也就是用户想要返回的数据在表格范围中的第几列,这个列数是从表格范围的第一列开始算起的,不是整个工作表的列。第四个参数是range_lookup,决定是精确匹配还是近似匹配,通常用FALSE或0来指定精确匹配,避免错误。 然后,用户可能需要一个具体的例子来理解如何使用。比如,假设有一个产品价格表,用户想根据产品ID查找对应的价格。这时候,VLOOKUP就可以在ID列查找,然后返回价格列的数据。同时,要提醒用户注意表格范围最好使用绝对引用,比如$A$2:$C$100,这样在拖动公式时范围不会变化。 可能遇到的问题也需要考虑。比如,如果查找值不在表格的第一列,或者列索引号超过了表格的列数,函数会返回错误。此外,数据格式不一致也可能导致问题,比如查找值是数字,而表格中是文本格式的数字,这时候需要统一格式。还有,当出现#N/A错误时,可能是查找值不存在,或者匹配模式设置不正确,需要检查参数是否正确。 用户可能还会问到如何避免常见的错误,比如部分数据匹配出错的情况。这时候需要检查是否有多余的空格,或者数据格式不一致,或者表格范围没有锁定导致拖动时偏移。此外,XLOOKUP作为VLOOKUP的升级版,可能在某些情况下更方便,比如可以向左查找或者返回多列数据,这也是可以提及的内容。 最后,整理步骤,从基础语法到参数说明,再到具体案例,逐步引导用户理解如何使用VLOOKUP函数。同时,提供常见错误和解决方法,帮助用户在实际应用中避免问题。如果有必要,还可以比较VLOOKUP和其他查找函数的区别,比如HLOOKUP或XLOOKUP,但根据用户的问题,主要集中在VLOOKUP本身即可。</think>### Excel VLOOKUP函数详解 #### 一、基础语法与参数说明 VLOOKUP函数的语法为: $$=VLOOKUP(lookup\_value, table\_array, col\_index\_num, [range\_lookup])$$ 包含4个参数: 1. **lookup_value**(必填):要查找的值(如单元格引用或具体值) 2. **table_array**(必填):包含数据的表格范围(必须包含查找列和返回列) 3. **col_index_num**(必填):返回值所在列的序号(从table_array第一列开始计数) 4. **range_lookup**(可选):匹配类型 - `TRUE`/`1`:近似匹配(默认值,需数据升序排列) - `FALSE`/`0`:精确匹配(常用选项) [^1][^2] #### 二、使用步骤演示(工资表查询案例) 假设需要根据员工编号查询工资: 1. 建立查询单元格(如`B12`) 2. 输入公式: ```excel =VLOOKUP(A12, $A$2:$D$100, 4, 0) ``` - `A12`:待查询的员工编号 - `$A$2:$D$100`:锁定数据区域(绝对引用) - `4`:返回第4列(工资列) - `0`:精确匹配 [^2][^3] #### 三、常见错误与解决方法 | 错误现象 | 原因 | 解决方案 | |---------|------|---------| | #N/A | 查找值不存在 | 检查数据源或改用`IFERROR`容错 | | #REF! | 列序号超出范围 | 确认col_index_num ≤ 表格列数 | | 部分匹配失败 | 数据格式不一致 | 统一数值/文本格式 | | 结果错位 | 表格未锁定 | 使用`$`符号固定区域引用 | [^3][^4] #### 四、进阶技巧 1. **多条件查询**: 使用辅助列合并多个条件字段 ```excel =VLOOKUP(A2&B2, $D$2:$F$100, 3, 0) ``` 2. **通配符匹配**: `"*"`匹配任意字符,`"?"`匹配单个字符 ```excel =VLOOKUP("张*", $A$2:$C$100, 3, 0) ``` 3. **跨表查询**: 引用其他工作表数据 ```excel =VLOOKUP(A2, Sheet2!$A$2:$D$100, 4, 0) ``` [^1][^4]
评论
添加红包

请填写红包祝福语或标题

红包个数最小为10个

红包金额最低5元

当前余额3.43前往充值 >
需支付:10.00
成就一亿技术人!
领取后你会自动成为博主和红包主的粉丝 规则
hope_wisdom
发出的红包
实付
使用余额支付
点击重新获取
扫码支付
钱包余额 0

抵扣说明:

1.余额是钱包充值的虚拟货币,按照1:1的比例进行支付金额的抵扣。
2.余额无法直接购买下载,可以购买VIP、付费专栏及课程。

余额充值