poj3107(树形dp)
| Time Limit: 2000MS | Memory Limit: 65536K | |
| Total Submissions: 5586 | Accepted: 1950 |
Description
Last years Chicago was full of gangster fights and strange murders. The chief of the police got really tired of all these crimes, and decided to arrest the mafia leaders.
Unfortunately, the structure of Chicago mafia is rather complicated. There are n persons known to be related to mafia. The police have traced their activity for some time, and know that some of them are communicating with each other. Based on the data collected, the chief of the police suggests that the mafia hierarchy can be represented as a tree. The head of the mafia, Godfather, is the root of the tree, and if some person is represented by a node in the tree, its direct subordinates are represented by the children of that node. For the purpose of conspiracy the gangsters only communicate with their direct subordinates and their direct master.
Unfortunately, though the police know gangsters’ communications, they do not know who is a master in any pair of communicating persons. Thus they only have an undirected tree of communications, and do not know who Godfather is.
Based on the idea that Godfather wants to have the most possible control over mafia, the chief of the police has made a suggestion that Godfather is such a person that after deleting it from the communications tree the size of the largest remaining connected component is as small as possible. Help the police to find all potential Godfathers and they will arrest them.
Input
The first line of the input file contains n — the number of persons suspected to belong to mafia (2 ≤ n ≤ 50 000). Let them be numbered from 1 to n.
The following n − 1 lines contain two integer numbers each. The pair ai, bi means that the gangster ai has communicated with the gangster bi. It is guaranteed that the gangsters’ communications form a tree.
Output
Print the numbers of all persons that are suspected to be Godfather. The numbers must be printed in the increasing order, separated by spaces.
Sample Input
6 1 2 2 3 2 5 3 4 3 6
Sample Output
2 3
Source
#include <iostream>
#include <cstdio>
#include <cstring>
#include <stack>
#include <queue>
#include <map>
#include <set>
#include <vector>
#include <cmath>
#include <algorithm>
using namespace std;
const double eps = 1e-6;
const double pi = acos(-1.0);
const int INF = 0x3f3f3f3f;
const int MOD = 1000000007;
#define ll long long
#define CL(a,b) memset(a,b,sizeof(a))
#define MAXN 100010
struct node
{
int v;
node *next;
}tree[MAXN], *head[MAXN];
int pre,n,dp[MAXN];//dp用来装每个结点的子节点数
int num[MAXN],ans,tot;//num用来装最后的答案
void init()//初始化
{
pre = 1; ans = INF;
CL(dp, 0);
CL(head, NULL);
}
void add(int a, int b)//加边,即建树
{
tree[pre].v = a;
tree[pre].next = head[b]; head[b] = &tree[pre++];
tree[pre].v = b;
tree[pre].next = head[a]; head[a] = &tree[pre++];
}
void dfs(int son, int father)//记录每个结点的子节点数
{
node *p = head[son];
dp[son] = 1;
while(p != NULL)
{
if(p->v != father)
{
dfs(p->v, son);
dp[son] += dp[p->v];
}
p = p->next;
}
}
void dp_tree(int son, int father)
{
int maxx = 0;
node *p = head[son];
while(p != NULL)
{
if(p->v != father)
{
dp_tree(p->v, son);
maxx = max(dp[p->v], maxx);
}
p = p->next;
}
//更新答案
maxx = max(n-dp[son], maxx);
if(maxx < ans)
{
tot = 1;
ans = maxx;
num[tot] = son;
}
else if(maxx == ans)
{
tot++;
num[tot] = son;
}
}
int main()
{
int u,v;
while(scanf("%d",&n)==1)
{
init();
for(int i=1; i<n; i++)
scanf("%d%d",&u,&v), add(u, v);
dfs(1, 0);
dp_tree(1, 0);
sort(num+1, num+tot+1);
printf ("%d",num[1]);
for(int i=2; i<=tot; i++)
printf (" %d",num[i]);
printf ("\n");
}
return 0;
}