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@ -1,40 +1,60 @@
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#include <bits/stdc++.h>
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#include <bits/stdc++.h>
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using namespace std;
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using namespace std;
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#define LL long long
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const int N = 1e5 + 10, M = N << 1;
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const int N = 1e5 + 10;
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const int INF = 0x3f3f3f3f;
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vector<int> g[N];
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int a[N];
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// 链式前向星
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int dp[N], siz[N];
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int e[M], h[N], idx, w[M], ne[M];
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int ans = 1e9;
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void add(int a, int b, int c = 0) {
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void dfs1(int u, int fa, int dep) {
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e[idx] = b, ne[idx] = h[a], w[idx] = c, h[a] = idx++;
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siz[u] = a[u];
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}
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for (auto v : g[u]) {
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int c[N];
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int f[N], sz[N];
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int ans = INF;
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// 第一次dfs,获取在以1为根的树中:
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// 1、每个节点分别有多少个子节点,填充sz[]数组
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// 2、获取到f[1],f[1]表示在1点设置医院的代价
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// 获取到上面这一组+一个数据,才能进行dfs2进行换根
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void dfs1(int u, int fa, int step) {
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sz[u] = c[u];
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for (int i = h[u]; ~i; i = ne[i]) {
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int v = e[i];
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if (v == fa) continue;
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if (v == fa) continue;
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dfs1(v, u, dep + 1);
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dfs1(v, u, step + 1);
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siz[u] += siz[v];
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sz[u] += sz[v];
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}
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}
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dp[1] += dep * a[u]; // 先算出1点的总代价
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f[1] += step * c[u]; // 先算出1点的总代价
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}
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}
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void dfs2(int u, int fa) {
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void dfs2(int u, int fa) {
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for (auto v : g[u]) {
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for (int i = h[u]; ~i; i = ne[i]) {
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int v = e[i];
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if (v == fa) continue;
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if (v == fa) continue;
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dp[v] = dp[u] + siz[1] - siz[v] * 2;
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f[v] = f[u] + sz[1] - sz[v] * 2;
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dfs2(v, u);
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dfs2(v, u);
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}
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}
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ans = min(ans, dp[u]);
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ans = min(ans, f[u]);
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}
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}
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int main() {
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int main() {
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// 初始化链式前向星
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memset(h, -1, sizeof h);
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int n;
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int n;
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cin >> n;
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cin >> n;
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for (int i = 1; i <= n; i++) {
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for (int i = 1; i <= n; i++) {
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cin >> a[i];
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cin >> c[i];
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int u, v;
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int a, b;
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cin >> u >> v;
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cin >> a >> b;
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if (u > 0) g[i].push_back(u), g[u].push_back(i);
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if (a) add(a, i), add(i, a); // 是一个二叉树结构,与左右节点相链接,但有可能不存在左或右节点,不存在时,a或b为0
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if (v > 0) g[i].push_back(v), g[v].push_back(i);
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if (b) add(b, i), add(i, b);
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}
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}
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// 1、准备运作
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dfs1(1, 0, 0);
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dfs1(1, 0, 0);
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dfs2(1, 0); // 换根
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// 2、换根dp
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cout << ans;
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dfs2(1, 0);
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// 输出答案
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cout << ans << endl;
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return 0;
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return 0;
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}
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}
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