题目传送门
/*
题意:上司在,员工不在,反之不一定。每一个人有一个权值,问权值和最大多少。
树形DP:把上司和员工的关系看成根节点和子节点的关系,两者有状态转移方程:
dp[rt][0] += max (dp[son][1], dp[son][0]); //上司不去
dp[rt][1] += dp[son][0]; //上司去,员工都不去
*/
#include <cstdio>
#include <cstring>
#include <algorithm>
#include <vector>
#include <cmath>
using namespace std;
const int MAXN = 6e3 + ;
const int INF = 0x3f3f3f3f;
bool vis[MAXN];
vector<int> edge[MAXN];
int dp[MAXN][];
int n;
void DFS(int rt)
{
vis[rt] = true;
dp[rt][] = ;
for (int i=; i<edge[rt].size (); ++i)
{
int son = edge[rt][i];
if (!vis[son])
{
DFS (son);
dp[rt][] += max (dp[son][], dp[son][]);
dp[rt][] += dp[son][];
}
}
}
int main(void) //URAL 1039 Anniversary Party
{
// freopen ("URAL_1039.in", "r", stdin);
while (scanf ("%d", &n) == )
{
memset (vis, false, sizeof (vis));
memset (dp, , sizeof (dp));
for (int i=; i<=n; ++i) scanf ("%d", &dp[i][]);
int l, k;
while (scanf ("%d%d", &l, &k) == )
{
if (l == && k == ) break;
vis[l] = true;
edge[l].push_back (k);
edge[k].push_back (l);
}
int root = ;
for (int i=; i<=n; ++i)
{
if (!vis[i]) {root = i; break;}
}
memset (vis, false, sizeof (vis)); DFS (root);
printf ("%d\n", max (dp[root][], dp[root][]));
}
return ;
}
