HDU 3018 Ant Trip(欧拉路径 + 并查集 + 连通性判断)
2015-09-02 20:48
525 查看
题意:问给定一张图, 每次蚂蚁能经过一条未经过的边,问经过整张图, 需要几次。其实就是一笔画问题, 问最少需要几笔
解题思路:脑卡了一下, 看看题解会了。
就是求连通图和欧拉图的个数, ans = 欧拉图个数 + 连通图奇数度点的个数 / 2;其中连通图包含了欧拉路径
不错的题目。
Ant Country consist of N towns.There are M roads connecting the towns.
Ant Tony,together with his friends,wants to go through every part of the country.
They intend to visit every road , and every road must be visited for exact one time.However,it may be a mission impossible for only one group of people.So they are trying to divide all the people into several groups,and each may start at different town.Now
tony wants to know what is the least groups of ants that needs to form to achieve their goal.
![](http://acm.hdu.edu.cn/data/images/exe3018-1.JPG)
输入
Input contains multiple cases.Test cases are separated by several blank lines. Each test case starts with two integer N(1<=N<=100000),M(0<=M<=200000),indicating that there are N towns and M roads in Ant Country.Followed by
M lines,each line contains two integers a,b,(1<=a,b<=N) indicating that there is a road connecting town a and town b.No two roads will be the same,and there is no road connecting the same town.
输出
For each test case ,output the least groups that needs to form to achieve their goal.
样例输入
解题思路:脑卡了一下, 看看题解会了。
就是求连通图和欧拉图的个数, ans = 欧拉图个数 + 连通图奇数度点的个数 / 2;其中连通图包含了欧拉路径
不错的题目。
Ant Country consist of N towns.There are M roads connecting the towns.
Ant Tony,together with his friends,wants to go through every part of the country.
They intend to visit every road , and every road must be visited for exact one time.However,it may be a mission impossible for only one group of people.So they are trying to divide all the people into several groups,and each may start at different town.Now
tony wants to know what is the least groups of ants that needs to form to achieve their goal.
输入
Input contains multiple cases.Test cases are separated by several blank lines. Each test case starts with two integer N(1<=N<=100000),M(0<=M<=200000),indicating that there are N towns and M roads in Ant Country.Followed by
M lines,each line contains two integers a,b,(1<=a,b<=N) indicating that there is a road connecting town a and town b.No two roads will be the same,and there is no road connecting the same town.
输出
For each test case ,output the least groups that needs to form to achieve their goal.
样例输入
3 3 1 2 2 3 1 3 4 2 1 2 3 4
#include<algorithm> #include<cstdio> #include<cstdlib> #include<cstring> #include<cmath> #include<cctype> #include<list> #include<iostream> #include<map> #include<queue> #include<set> #include<stack> #include<vector> using namespace std; #define FOR(i, s, t) for(int i = (s) ; i <= (t) ; ++i) #define REP(i, n) for(int i = 0 ; i < (n) ; ++i) int buf[10]; inline long long read() { long long x=0,f=1; char ch=getchar(); while(ch<'0'||ch>'9') { if(ch=='-')f=-1; ch=getchar(); } while(ch>='0'&&ch<='9') { x=x*10+ch-'0'; ch=getchar(); } return x*f; } inline void writenum(int i) { int p = 0; if(i == 0) p++; else while(i) { buf[p++] = i % 10; i /= 10; } for(int j = p - 1 ; j >= 0 ; --j) putchar('0' + buf[j]); } /**************************************************************/ #define MAX_N 100005 const int INF = 0x3f3f3f3f; int parent[MAX_N]; int degree[MAX_N]; int vis[MAX_N]; inline int init(int n) { memset(vis, -1, sizeof(vis)); memset(degree, 0, sizeof(degree)); for(int i = 1 ; i < n + 5 ; i++) { parent[i] = i; } } int find(int a) { if(parent[a] != a) { parent[a] = find(parent[a]); } return parent[a]; } void unite(int a, int b) { int fa = find(a); int fb = find(b); if(fa != fb) { parent[fb] = fa; } return; } int main() { int n, m; while(~scanf("%d%d", &n ,&m)) { int ans = 0; init(n); int u, v; for(int i = 0 ; i < m ; i++) { u = read(); v = read(); unite(u, v); degree[u]++; degree[v]++; } for(int i = 1 ; i <= n ; i++) { int tmp = find(i); // cout<<"tmp"<<tmp<<endl; if(vis[tmp] == -1 && degree[i]) { vis[tmp] = 0; } if(degree[i] % 2) { vis[tmp]++; } // cout<<"vis[tmp]"<<vis[tmp]<<endl; } for(int i = 1 ; i <= n ; i++) { // cout<<vis[i]<<endl; if(vis[i] > 0) ans += vis[i] / 2; else if(!vis[i]) ans++; } printf("%d\n", ans); } return 0; }
相关文章推荐
- JSP标签库
- 知乎文章收藏-发展经验
- HDU 3182【状压DP--easy】
- C++重载操作符总结
- c++ set multiset
- 用定时器在数码管上依次扫描出1,2,3,4
- 黑马程序员—集合框架(1)
- Java构造器和方法的区别
- 基于ATmega64的液晶12864学习心得(一)
- java语言中解决一些安全问题的技巧(安全编程非常重要标签)
- HDU——2105 The Center of Gravity
- 关于JavaScript中没有块级作用域的理解
- 需求:过滤下面这个网页里共723行 校对中里 行数为两位数的 行 并设置sz和rz在Windows和Linux之间发送和接收文件不用搭FTP
- Java使用eclipse新建枚举报出, 项目“xxxxx”不是符合 J2SE 5.0 的项目。的解决办法
- Java集合架构
- Windows自带的造字功能使用
- 宏和预处理
- Redis的几点积累
- 第八篇 SQL Server安全数据加密
- liferay6.2弹出层,弹出窗