标签:each arch int car lin img images iss bsp
| Time Limit: 2000MS | Memory Limit: 65536K | |
| Total Submissions: 21566 | Accepted: 6548 |
Description
There is an apple tree outside of kaka‘s house. Every autumn, a lot of apples will grow in the tree. Kaka likes apple very much, so he has been carefully nurturing the big apple tree.
The tree has N forks which are connected by branches. Kaka numbers the forks by 1 toN and the root is always numbered by 1. Apples will grow on the forks and two apple won‘t grow on the same fork. kaka wants to know how many apples are there in a sub-tree, for his study of the produce ability of the apple tree.
The trouble is that a new apple may grow on an empty fork some time and kaka may pick an apple from the tree for his dessert. Can you help kaka?
Input
The first line contains an integer N (N ≤ 100,000) , which is the number of the forks in the tree.
The following N - 1 lines each contain two integers u and v, which means forku and fork
v are connected by a branch.
The next line contains an integer M (M ≤ 100,000).
The following M lines each contain a message which is either
"C x" which means the existence of the apple on fork
x has been changed. i.e. if there is an apple on the fork, then Kaka pick it; otherwise a new apple has grown on the empty fork.
or
"Q x" which means an inquiry for the number of apples in the sub-tree above the forkx, including the apple (if exists) on the fork x
Note the tree is full of apples at the beginning
Output
Sample Input
3 1 2 1 3 3 Q 1 C 2 Q 1
Sample Output
3 2
Source
POJ Monthly--2007.08.05, Huang, Jinsong
题目大意给你一棵树,每一个节点開始的时候有一个苹果,下边m个操作,Q a,查询以a和a的子树的总共的苹果数,c b。改动操作,改变b节点,,開始在有变没有,没有变成有
ac代码
#include<stdio.h>
#include<string.h>
struct node
{
int u,v,next;
}edge[100010<<1];
int head[100010],cnt,num[100010],son[100010],cc,vis[100100];
void add(int u,int v)
{
edge[cnt].u=u;
edge[cnt].v=v;
edge[cnt].next=head[u];
head[u]=cnt++;
}
void dfs(int u)
{
num[u]=++cc;
//son[u]=1;
vis[u]=1;
for(int i=head[u];i!=-1;i=edge[i].next)
{
int v=edge[i].v;
if(!vis[v])
dfs(v);
// son[u]+=son[v];
}
son[u]=cc;
}
struct s
{
int sum,cover;
}node[100010<<2];
void pushdown(int tr,int m)
{
if(node[tr].cover)
{
node[tr<<1].cover=node[tr<<1|1].cover=1;
node[tr<<1].sum=m-(m>>1);
node[tr<<1|1].sum=(m>>1);
node[tr].cover=0;
}
}
void build(int l,int r,int tr)
{
node[tr].cover=1;
node[tr].sum=r-l+1;
if(l==r)
{
return;
}
int mid=(l+r)>>1;
build(l,mid,tr<<1);
build(mid+1,r,tr<<1|1);
}
void update(int pos,int l,int r,int tr)
{
if(l==pos&&r==pos)
{
if(node[tr].cover)
{
node[tr].cover=0;
node[tr].sum=0;
}
else
{
node[tr].cover=1;
node[tr].sum=1;
}
return;
}
pushdown(tr,r-l+1);
int mid=(l+r)>>1;
if(pos<=mid)
update(pos,l,mid,tr<<1);
else
update(pos,mid+1,r,tr<<1|1);
node[tr].sum=node[tr<<1].sum+node[tr<<1|1].sum;
if(node[tr<<1].cover&&node[tr<<1|1].cover)
{
node[tr].cover=1;
}
}
int query(int L,int R,int l,int r,int tr)
{
if(L<=l&&R>=r)
{
return node[tr].sum;
}
int mid=(l+r)>>1;
pushdown(tr,r-l+1);
int ans=0;
if(L<=mid)
ans+=query(L,R,l,mid,tr<<1);
if(R>mid)
ans+=query(L,R,mid+1,r,tr<<1|1);
return ans;
/*if(R<=mid)
return query(L,R,l,mid,tr<<1);
else
if(L>mid)
return query(L,R,mid+1,r,tr<<1|1);
else
return query(L,mid,l,mid,tr<<1)+query(mid+1,R,mid+1,r,tr<<1|1);*/
}
int main()
{
int n;
while(scanf("%d",&n)!=EOF)
{
cnt=0;
cc=0;
memset(head,-1,sizeof(head));
memset(vis,0,sizeof(vis));
int i;
for(i=0;i<n-1;i++)
{
int a,b;
scanf("%d%d",&a,&b);
add(a,b);
}
dfs(1);
int m;
scanf("%d",&m);
build(1,n,1);
while(m--)
{
char s[2];
scanf("%s",s);
if(s[0]=='Q')
{
int a;
scanf("%d",&a);
int ans=query(num[a],son[a],1,n,1);
printf("%d\n",ans);
}
else
{
int a;
scanf("%d",&a);
update(num[a],1,n,1);
}
}
}
}标签:each arch int car lin img images iss bsp
原文地址:http://www.cnblogs.com/liguangsunls/p/7133815.html
