题意翻译
给出一棵 n 个结点的树,每个结点有一个颜色 c i 。 询问 q 次,每次询问以 v 结点为根的子树中,出现次数 ≥k 的颜色有多少种。树的根节点是1。
感谢@elijahqi 提供的翻译
题目描述
You have a rooted tree consisting of n n n vertices. Each vertex of the tree has some color. We will assume that the tree vertices are numbered by integers from 1 to n n n . Then we represent the color of vertex v v v as cv c_{v} cv . The tree root is a vertex with number 1.
In this problem you need to answer to m m m queries. Each query is described by two integers vj,kj v_{j},k_{j} vj,kj . The answer to query vj,kj v_{j},k_{j} vj,kj is the number of such colors of vertices x x x , that the subtree of vertex vj v_{j} vj contains at least kj k_{j} kj vertices of color x x x .
You can find the definition of a rooted tree by the following link: http://en.wikipedia.org/wiki/Tree\_(graph\_theory).
输入输出格式
输入格式:
The first line contains two integers n n n and m m m $ (2<=n<=10^{5}; 1<=m<=10^{5}) $ . The next line contains a sequence of integers c1,c2,...,cn c_{1},c_{2},...,c_{n} c1,c2,...,cn (1<=ci<=105) (1<=c_{i}<=10^{5}) (1<=ci<=105) . The next n−1 n-1 n−1 lines contain the edges of the tree. The i i i -th line contains the numbers ai,bi a_{i},b_{i} ai,bi $ (1<=a_{i},b_{i}<=n; a_{i}≠b_{i}) $ — the vertices connected by an edge of the tree.
Next m m m lines contain the queries. The j j j -th line contains two integers vj,kj v_{j},k_{j} vj,kj $ (1<=v_{j}<=n; 1<=k_{j}<=10^{5}) $ .
输出格式:
Print m m m integers — the answers to the queries in the order the queries appear in the input.
输入输出样例
8 5
1 2 2 3 3 2 3 3
1 2
1 5
2 3
2 4
5 6
5 7
5 8
1 2
1 3
1 4
2 3
5 3
2
2
1
0
1
4 1
1 2 3 4
1 2
2 3
3 4
1 1
4
说明
A subtree of vertex v v v in a rooted tree with root r r r is a set of vertices $ {u :dist(r,v)+dist(v,u)=dist(r,u)} $ . Where dist(x,y) dist(x,y) dist(x,y) is the length (in edges) of the shortest path between vertices x x x and y y y .
Solution:
本题树上莫队。
求子树颜色个数,可以直接弄出dfs序,统计每个子树的入栈时间$inc$和$ouc$,然后对于询问变为dfs序上的区间颜色数查询,直接莫队就好了。
代码:
/*Code by 520 -- 10.19*/
#include<bits/stdc++.h>
#define il inline
#define ll long long
#define RE register
#define For(i,a,b) for(RE int (i)=(a);(i)<=(b);(i)++)
#define Bor(i,a,b) for(RE int (i)=(b);(i)>=(a);(i)--)
using namespace std;
const int N=;
int n,m,to[N],net[N],h[N],cnt,a[N],bl[N],c[N];
int rc,dfn[N],inc[N],ouc[N],sum[N],ans[N];
struct node{
int l,r,k,id;
bool operator < (const node &a) const {return bl[l]==bl[a.l]?r<a.r:l<a.l;}
}t[N]; int gi(){
int a=;char x=getchar();
while(x<''||x>'') x=getchar();
while(x>=''&&x<='') a=(a<<)+(a<<)+(x^),x=getchar();
return a;
} il void Add(int u,int v){to[++cnt]=v,net[cnt]=h[u],h[u]=cnt;} void dfs(int u,int lst){
dfn[++rc]=u,inc[u]=rc;
for(RE int i=h[u];i;i=net[i])
if(to[i]!=lst) dfs(to[i],u);
ouc[u]=rc;
} il void add(int x){sum[++c[a[x]]]++;} il void del(int x){sum[c[a[x]]--]--;} int main(){
n=gi(),m=gi(); int blo=sqrt(n),u,v;
For(i,,n) a[i]=gi(),bl[i]=(i-)/blo+;
For(i,,n) u=gi(),v=gi(),Add(u,v),Add(v,u);
dfs(,);
For(i,,m) u=gi(),v=gi(),t[i]=node{inc[u],ouc[u],v,i};
sort(t+,t+m+);
for(RE int i=,l=,r=;i<=m;i++){
while(l<t[i].l) del(dfn[l]),l++;
while(l>t[i].l) --l,add(dfn[l]);
while(r<t[i].r) ++r,add(dfn[r]);
while(r>t[i].r) del(dfn[r]),r--;
ans[t[i].id]=sum[t[i].k];
}
For(i,,m) printf("%d\n",ans[i]);
return ;
}
