一道显而易见的树形dp
每个人都有当根节点的机会
然后先告诉需要花费时间长的,再告诉短的
转移方程
dp[u]=max(dp[u],dp[v]+i−1)
#include<cstdio> #include<cstring> #include<algorithm> using namespace std; #define maxn 1010 #define INF 999999999 int n; int dp[maxn]; int head[maxn],cnt; int www[maxn],minn = INF; struct EDGE { int nxt,to; } edge[maxn * 2]; int cmp(int a,int b) { return a > b; } void add(int x,int y) { edge[++cnt].to = y; edge[cnt].nxt = head[x]; head[x] = cnt; } void dfs(int u,int fa) { int son[maxn] = {0}; int total = 0; for(int i = head[u]; i; i = edge[i].nxt) { int v = edge[i].to; if(v != fa) { dfs(v,u); son[++total] = dp[v]; } } sort(son + 1,son + total + 1,cmp);//先传给花时间长的 for(int i = 1; i <= total; i++) dp[u] = max(dp[u],son[i] + i - 1);//转移方程,儿子到根节点的距离i再减1 dp[u] += 1; } int main() { scanf("%d",&n); for(int i = 2; i <= n; i++) { int a; scanf("%d",&a); add(a,i); add(i,a); } for(int i = 1; i <= n; i++) {//每个点都当一遍根节点 memset(dp,0,sizeof(dp));//别忘了每次清零 dfs(i,0); minn = min(minn,dp[i]);存最小值 www[i] = dp[i];//记录每次的值 } printf("%d\n",minn); for(int i = 1; i <= n; i++) if(minn == www[i]) printf("%d ",i); return 0; }
集训回来,从今天开始疯狂补博客了
做了蛮多题,都想写写题解加深印象,希望不会鸽