题目链接:
题目描述:
有一棵生成树,有n个点,给出m-n+1条边,截断一条生成树上的边后,再截断至少多少条边才能使图不连通, 问截断总边数?
解题思路:
因为只能在生成树上截断一条边(u, v),所以只需要统计以v为根节点的子生成树里的节点与子生成树外的节点的边数就可以了。对于新加入的边(u', v')来说,只影响以LCA(u, v)为根节点的子树里面的节点。统计所有答案,扫一遍输出最小即可。(比赛的时候只统计叶子节点,给水过去了........23333333)
#include <cstdio>
#include <cstring>
#include <iostream>
#include <algorithm>
using namespace std; const int INF = 0x3f3f3f3f;
const int maxn = ;
struct node
{
int to, next;
}edge[maxn*];
int tot, head[maxn], deep[maxn], fa[maxn], ans[maxn]; void init ()
{
tot = ;
memset (head, -, sizeof(head));
} void Add (int from, int to)
{
edge[tot].to = to;
edge[tot].next = head[from];
head[from] = tot ++;
} void dfs (int u, int father, int dep)
{
deep[u] = dep;
ans[u] = ;
fa[u] = father; for (int i=head[u]; i!=-; i=edge[i].next)
{
int v = edge[i].to;
if (v != father)
dfs (v, u, dep+);
}
} void LCA (int x, int y)
{
while (x != y)
{
if (deep[x] >= deep[y])
{
ans[x] ++;
x = fa[x];
}
else
{
ans[y] ++;
y = fa[y];
}
}
} int main ()
{
int t, n, m, i;
scanf ("%d", &t); for (int j=; j<=t; j++)
{
init ();
int u, v;
scanf ("%d %d", &n, &m); for (i=; i<n; i++)
{
scanf ("%d %d", &u, &v);
Add (u, v);
Add (v, u);
}
dfs (, , ); for ( ;i<=m; i++)
{
scanf ("%d %d", &u, &v);
LCA (u, v);
} int res = INF;
for (i=; i<=n; i++)
res = min (res, ans[i]);
printf ("Case #%d: %d\n", j, res);
}
return ;
}