Contestants Division(树形dp+删边)

2023-11-06 22:32

本文主要是介绍Contestants Division(树形dp+删边),希望对大家解决编程问题提供一定的参考价值,需要的开发者们随着小编来一起学习吧!

题目:Contestants Division

In the new ACM-ICPC Regional Contest, a special monitoring and submitting system will be set up, and students will be able to compete at their own universities. However there’s one problem. Due to the high cost of the new judging system, the organizing committee can only afford to set the system up such that there will be only one way to transfer information from one university to another without passing the same university twice. The contestants will be divided into two connected regions, and the difference between the total numbers of students from two regions should be minimized. Can you help the juries to find the minimum difference?

Input
There are multiple test cases in the input file. Each test case starts with two integers N and M, (1 ≤ N ≤ 100000, 1 ≤ M ≤ 1000000), the number of universities and the number of direct communication line set up by the committee, respectively. Universities are numbered from 1 to N. The next line has N integers, the Kth integer is equal to the number of students in university numbered K. The number of students in any university does not exceed 100000000. Each of the following M lines has two integers s, t, and describes a communication line connecting university s and university t. All communication lines of this new system are bidirectional.

N = 0, M = 0 indicates the end of input and should not be processed by your program.

Output
For every test case, output one integer, the minimum absolute difference of students between two regions in the format as indicated in the sample output.

Sample Input
7 6
1 1 1 1 1 1 1
1 2
2 7
3 7
4 6
6 2
5 7
0 0
Sample Output
Case 1: 1


题意:

给一个n个结点的树,每个节点上有一个值,表示k个学生,然后求删除一条边后分成的两个子树的学生数差最小,输出得到的差值。

输入:

第一个n表示n个结点,第二行表示每个节点有的学生数,后面就是描述树。

思路:这个题没有用dp数组,搜索的时候有返回值。

搜索枚举所有的边,然后选择删掉的边。

需要注意的一点,long long 取绝对值不能使用abs()函数,只能比较进行交换。

源代码:

#include <iostream>
#include <stdio.h>
#include <cstring>
#include <algorithm>
#include <cmath>
#include <iomanip>
#include <vector>
#define maxn 100005
typedef long long ll;
using namespace std;
ll n,m;
vector <ll> tree[maxn];
ll sum,ans;
ll v[maxn];
ll tree_dp(ll now,ll pre){ll num = 0;for (int i = 0; i < tree[now].size(); i++){if (tree[now][i] == pre)continue;ll temp = tree_dp(tree[now][i],now);num += temp;if (sum-temp*2>=0)ans = min(ans,sum-temp*2);elseans = min(ans,temp*2-sum);}return num + v[now];
}
int main(){int flag = 0;while (scanf("%lld%lld",&n,&m)!=EOF){if (n == 0 && m == 0)break;sum = 0;ans = 9999999999999;for (int i = 0; i <= n; i++)tree[i].clear();int x,y;for (int i = 1; i <= n; i++){scanf("%lld",&v[i]);sum += v[i];}for (int i = 1; i <= m; i++){scanf("%d%d",&x,&y);tree[x].push_back(y);tree[y].push_back(x);}tree_dp(1,0);if (n == 1){printf("Case %d: %lld\n",++flag,v[1]);continue;}printf("Case %d: %lld\n",++flag,ans);}return 0;
}


这篇关于Contestants Division(树形dp+删边)的文章就介绍到这儿,希望我们推荐的文章对编程师们有所帮助!



http://www.chinasem.cn/article/359449

相关文章

hdu4826(三维DP)

这是一个百度之星的资格赛第四题 题目链接:http://acm.hdu.edu.cn/contests/contest_showproblem.php?pid=1004&cid=500 题意:从左上角的点到右上角的点,每个点只能走一遍,走的方向有三个:向上,向下,向右,求最大值。 咋一看像搜索题,先暴搜,TLE,然后剪枝,还是TLE.然后我就改方法,用DP来做,这题和普通dp相比,多个个向上

hdu1011(背包树形DP)

没有完全理解这题, m个人,攻打一个map,map的入口是1,在攻打某个结点之前要先攻打其他一个结点 dp[i][j]表示m个人攻打以第i个结点为根节点的子树得到的最优解 状态转移dp[i][ j ] = max(dp[i][j], dp[i][k]+dp[t][j-k]),其中t是i结点的子节点 代码如下: #include<iostream>#include<algorithm

hdu4865(概率DP)

题意:已知前一天和今天的天气概率,某天的天气概率和叶子的潮湿程度的概率,n天叶子的湿度,求n天最有可能的天气情况。 思路:概率DP,dp[i][j]表示第i天天气为j的概率,状态转移如下:dp[i][j] = max(dp[i][j, dp[i-1][k]*table2[k][j]*table1[j][col] )  代码如下: #include <stdio.h>#include

usaco 1.1 Broken Necklace(DP)

直接上代码 接触的第一道dp ps.大概的思路就是 先从左往右用一个数组在每个点记下蓝或黑的个数 再从右到左算一遍 最后取出最大的即可 核心语句在于: 如果 str[i] = 'r'  ,   rl[i]=rl[i-1]+1, bl[i]=0 如果 str[i] = 'b' ,  bl[i]=bl[i-1]+1, rl[i]=0 如果 str[i] = 'w',  bl[i]=b

uva 10154 DP 叠乌龟

题意: 给你几只乌龟,每只乌龟有自身的重量和力量。 每只乌龟的力量可以承受自身体重和在其上的几只乌龟的体重和内。 问最多能叠放几只乌龟。 解析: 先将乌龟按力量从小到大排列。 然后dp的时候从前往后叠,状态转移方程: dp[i][j] = dp[i - 1][j];if (dp[i - 1][j - 1] != inf && dp[i - 1][j - 1] <= t[i]

uva 10118 dP

题意: 给4列篮子,每次从某一列开始无放回拿蜡烛放入篮子里,并且篮子最多只能放5支蜡烛,数字代表蜡烛的颜色。 当拿出当前颜色的蜡烛在篮子里存在时,猪脚可以把蜡烛带回家。 问最多拿多少只蜡烛。 代码: #include <iostream>#include <cstdio>#include <cstdlib>#include <algorithm>#include <cs

uva 10069 DP + 大数加法

代码: #include <iostream>#include <cstdio>#include <cstdlib>#include <algorithm>#include <cstring>#include <cmath>#include <stack>#include <vector>#include <queue>#include <map>#include <cl

uva 10029 HASH + DP

题意: 给一个字典,里面有好多单词。单词可以由增加、删除、变换,变成另一个单词,问能变换的最长单词长度。 解析: HASH+dp 代码: #include <iostream>#include <cstdio>#include <cstdlib>#include <algorithm>#include <cstring>#include <cmath>#inc

XTU 1233 n个硬币连续m个正面个数(dp)

题面: Coins Problem Description: Duoxida buys a bottle of MaiDong from a vending machine and the machine give her n coins back. She places them in a line randomly showing head face or tail face o

dp算法练习题【8】

不同二叉搜索树 96. 不同的二叉搜索树 给你一个整数 n ,求恰由 n 个节点组成且节点值从 1 到 n 互不相同的 二叉搜索树 有多少种?返回满足题意的二叉搜索树的种数。 示例 1: 输入:n = 3输出:5 示例 2: 输入:n = 1输出:1 class Solution {public int numTrees(int n) {int[] dp = new int