标签:ant child dfs序 oid end enter 输入 value pen
3
1 1
1 2 2
3
题意:每颗树的重量定义为这颗树上所有节点权值不同的个数,现在要割掉一条边,求生成的两颗树最大的重量和。
做法:dfs序,然后枚举每一条边,删除这条边就相当于在dfs序中取走了一个区间,问题就变成了求区间不同数的个数。取走一个区间后,剩下的两块区间求不同数个数可以通过把区间加长一倍来做。
#include<bits/stdc++.h> #define N 100050 using namespace std; vector<int>edge[N]; int w[N]; int children[N]={0},number[N]={0},dfsorder[N],len=0; int dfs(int x) { dfsorder[++len]=x; number[x]=len; children[x]=1; int Size=edge[x].size(); for(int i=0;i<Size;i++) if(number[edge[x][i]]==0) { children[x]+=dfs(edge[x][i]); } return children[x]; } struct ss { int l,r,index,ans; bool operator < (const ss& s) const { return r<s.r; } }; vector<ss>interval; int c[2*N+5]={0}; void updata(int x,int v) { for(int i=x;i<2*N;i+=i&(-i))c[i]+=v; } int Sum(int x) { int ans=0; while(x>0) { ans+=c[x]; x-=x&(-x); } return ans; } int main() { int n; scanf("%d",&n); for(int i=2;i<=n;i++) { int p; scanf("%d",&p); edge[i].push_back(p); edge[p].push_back(i); } for(int i=1;i<=n;i++)scanf("%d",&w[i]); dfs(1); for(int i=1;i<=n;i++) { interval.push_back((ss){number[i],number[i]+children[i]-1,i,0}); interval.push_back((ss){number[i]+children[i],n+number[i]-1,i,0}); } for(int i=1;i<=n;i++) { dfsorder[i]=w[dfsorder[i]]; dfsorder[n+i]=dfsorder[i]; } sort(interval.begin(),interval.end()); int last[N]={0}; int c1=1; for(int i=0;i<2*n;i++) { if(interval[i].l>interval[i].r)continue; for(int j=c1;j<=interval[i].r;j++) { if(last[dfsorder[j]]==0) { updata(j,1); last[dfsorder[j]]=j; } else { updata(last[dfsorder[j]],-1); updata(j,1); last[dfsorder[j]]=j; } } interval[i].ans=Sum(interval[i].r)-Sum(interval[i].l-1); c1=interval[i].r+1; } int sum[N]={0},ans=0; for(int i=0;i<2*n;i++) { sum[interval[i].index]+=interval[i].ans; ans=max(ans,sum[interval[i].index]); } printf("%d\n",ans); return 0; }
标签:ant child dfs序 oid end enter 输入 value pen
原文地址:https://www.cnblogs.com/tian-luo/p/9594262.html
