题目传送门
sol:看了题意显然是最大生成树,但是任意两个点之间都有边,大概有n*n条边。用朴素的最小生成树算法显然不行。联想了一下树的直径还是不会。看了大佬的题解,懂了。。。
所以还是直接贴大佬博客链接好了:https://blog.csdn.net/yasola/article/details/72229734
- 树的直径
#include "bits/stdc++.h" using namespace std; typedef long long LL; typedef pair<int, int> PII; typedef pair<int, LL> PIL; const int MAXN = 1e5 + 10; vector<PII> edge[MAXN]; LL _max; int nn1, nn2; LL dis[MAXN]; PIL get_diameter(int rt, int fa) { LL m1 = 0, m2 = 0; int n1 = rt, n2 = rt; for (PII i : edge[rt]) { if (i.first == fa) continue; PIL p = get_diameter(i.first, rt); if (p.second + i.second > m1) { m2 = m1, n2 = n1; m1 = p.second + i.second; n1 = p.first; } else if (p.second + i.second > m2) { m2 = p.second + i.second; n2 = p.first; } } if (m1 + m2 > _max) { nn1 = n1, nn2 = n2; _max = m1 + m2; } return {n1, m1}; } void dfs(int rt, int fa, LL mm) { dis[rt] = max(dis[rt], mm); for (PII i : edge[rt]) { if (i.first == fa) continue; dfs(i.first, rt, mm + i.second); } } int main() { int n; while (~scanf("%d", &n)) { memset(dis, -1, sizeof(dis)); for (int i = 1; i <= n; i++) edge[i].clear(); for (int i = 1; i < n; i++) { int u, v, w; scanf("%d%d%d", &u, &v, &w); edge[u].push_back({v, w}); edge[v].push_back({u, w}); } _max = -1; get_diameter(1, -1); // 求出树的直径,以及两个端点; dfs(nn1, -1, 0), dfs(nn2, -1, 0); LL sum = 0; for (int i = 1; i <= n; i++) sum += dis[i]; printf("%lld ", sum - _max); // 将两个端点加入集合只用算一次直径,而上面的循环算了两次,所以减掉一个直径; } return 0; }