Time Limit: 5000MS | Memory Limit: 65536K | |
Total Submissions: 10969 | Accepted: 4096 |
Description
A network administrator manages a large network. The network consists of N computers and M links between pairs of computers. Any pair of computers are connected directly or indirectly by successive links, so data can be transformed between any two computers. The administrator finds that some links are vital to the network, because failure of any one of them can cause that data can't be transformed between some computers. He call such a link a bridge. He is planning to add some new links one by one to eliminate all bridges.
You are to help the administrator by reporting the number of bridges in the network after each new link is added.
Input
The input consists of multiple test cases. Each test case starts with a line containing two integers N(1 ≤ N ≤ 100,000) and M(N - 1 ≤ M ≤ 200,000).
Each of the following M lines contains two integers A and B ( 1≤ A ≠ B ≤ N), which indicates a link between computer A and B. Computers are numbered from 1 to N. It is guaranteed that any two computers are connected in the initial network.
The next line contains a single integer Q ( 1 ≤ Q ≤ 1,000), which is the number of new links the administrator plans to add to the network one by one.
The i-th line of the following Q lines contains two integer A and B (1 ≤ A ≠ B ≤ N), which is the i-th added new link connecting computer A and B.
The last test case is followed by a line containing two zeros.
Output
For each test case, print a line containing the test case number( beginning with 1) and Q lines, the i-th of which contains a integer indicating the number of bridges in the network after the first i new links are added. Print a blank line after the output for each test case.
Sample Input
3 2
1 2
2 3
2
1 2
1 3
4 4
1 2
2 1
2 3
1 4
2
1 2
3 4
0 0
Sample Output
Case 1:
1
0 Case 2:
2
0
Source
题目大意:
给出一张图,询问每次加边之后图中有多少割边
首先我们来一遍tarjan
这样实际上形成了一棵树
对于每次询问,我们找出它们的LCA
在往LCA走的过程中判断是否是割边,如果是就取消标记
LCA暴力就可以,父亲节点的信息可以在tarjan的过程中得到
// luogu-judger-enable-o2
#include<cstdio>
#include<cstring>
#include<algorithm>
#include<stack>
//#define getchar() (S == T && (T = (S = BB) + fread(BB, 1, 1 << 15, stdin), S == T) ? EOF : *S++)
//char BB[1 << 15], *S = BB, *T = BB;
using namespace std;
const int MAXN=1e6+;
inline int read()
{
char c=getchar();int x=,f=;
while(c<''||c>''){if(c=='-')f=-;c=getchar();}
while(c>=''&&c<=''){x=x*+c-'';c=getchar();}
return x*f;
}
struct node
{
int u,v,nxt;
}edge[MAXN];
int head[MAXN],num=;
inline void AddEdge(int x,int y)
{
edge[num].u=x;
edge[num].v=y;
edge[num].nxt=head[x];
head[x]=num++;
}
int N,M; int dfn[MAXN],low[MAXN],f[MAXN],deep[MAXN],tot=;
int bridge[MAXN],ans=;
void pre()
{
for(int i=;i<=N;i++) f[i]=i;
memset(head,-,sizeof(head));
num=;
memset(dfn,,sizeof(dfn));
memset(low,,sizeof(low));
memset(bridge,,sizeof(bridge));
tot=;
ans=;
}
void tarjan(int now,int fa)
{
dfn[now]=low[now]=++tot;
for(int i=head[now];i!=-;i=edge[i].nxt)
{
if(!dfn[edge[i].v])
{
deep[edge[i].v]=deep[now]+;
f[edge[i].v]=now;
tarjan(edge[i].v,now);
low[now]=min(low[now],low[edge[i].v]);
if(low[edge[i].v]>dfn[now])
{
bridge[edge[i].v]=;
ans++;
}
}
else if(edge[i].v!=fa) low[now]=min(low[now],dfn[edge[i].v]);
}
}
int Solve(int x,int y)
{
if(deep[x]<deep[y]) swap(x,y);
while(deep[x]!=deep[y])
{
if(bridge[x]) ans--,bridge[x]=;
x=f[x];
}
while(x!=y)
{
if(bridge[x]) ans--,bridge[x]=;
if(bridge[y]) ans--,bridge[y]=;
x=f[x];y=f[y];
}
return ans;
}
int main()
{
#ifdef WIN32
freopen("a.in","r",stdin);
#else
#endif
int QWQ=;
while(scanf("%d%d",&N,&M)!=EOF)
{
if(N==&&M==) break;
printf("Case %d:\n",++QWQ);
pre();
for(int i=;i<=M;i++)
{
int x=read(),y=read();
AddEdge(x,y);
AddEdge(y,x);
}
deep[]=;
tarjan(,);
int Q=read();
while(Q--)
{
int x=read(),y=read();
printf("%d\n",Solve(x,y));
}
putchar('\n');
}
return ;
}