poj 3177 Redundant Paths

Description

In order to get from one of the F (1 <= F <= 5,000) grazing fields (which are numbered 1..F) to another field, Bessie and the rest of the herd are forced to cross near the Tree of Rotten Apples. The cows are now tired of often being forced to take a particular path and want to build some new paths so that they will always have a choice of at least two separate routes between any pair of fields. They currently have at least one route between each pair of fields and want to have at least two. Of course, they can only travel on Official Paths when they move from one field to another.

Given a description of the current set of R (F-1 <= R <= 10,000) paths that each connect exactly two different fields, determine the minimum number of new paths (each of which connects exactly two fields) that must be built so that there are at least two separate routes between any pair of fields. Routes are considered separate if they use none of the same paths, even if they visit the same intermediate field along the way.

There might already be more than one paths between the same pair of fields, and you may also build a new path that connects the same fields as some other path.
Input

Line 1: Two space-separated integers: F and R

Lines 2..R+1: Each line contains two space-separated integers which are the fields at the endpoints of some path.
Output

Line 1: A single integer that is the number of new paths that must be built.
Sample Input

7 7
1 2
2 3
3 4
2 5
4 5
5 6
5 7
Sample Output

2
Hint

Explanation of the sample:

One visualization of the paths is: 1 2 3 +—+—+ | | | | 6 +—+—+ 4 / 5 / / 7 +Building new paths from 1 to 6 and from 4 to 7 satisfies the conditions. 1 2 3 +—+—+

| |

| |
6 +—+—+ 4
/ 5 :
/ :
/ :
7 + - - - -
Check some of the routes:
1 – 2: 1 –> 2 and 1 –> 6 –> 5 –> 2
1 – 4: 1 –> 2 –> 3 –> 4 and 1 –> 6 –> 5 –> 4
3 – 7: 3 –> 4 –> 7 and 3 –> 2 –> 5 –> 7
Every pair of fields is, in fact, connected by two routes.

It’s possible that adding some other path will also solve the problem (like one from 6 to 7). Adding two paths, however, is the minimum.
Source

本题意思就是：
添加几条边使得这个图是双连通图？
首先，我们应该先找出来所有的桥，去掉这些桥，并使得桥所连的那些点成一个点，即缩点。这是一定是一颗树，然后把叶子节点两两相连即可（ans+1）/2个边。

#include<iostream>#include<cstdio>#include<cstring>#include<algorithm>using namespace std;const int maxn=2000000+100;int n,m;int cnt;int head[maxn],low[maxn],dfn[maxn],stack[maxn],instack[maxn],du[maxn],belong[maxn];int index,top,block;void init(){    memset(du,0,sizeof(du));    memset(belong,0,sizeof(belong));    memset(head,-1,sizeof(head));    cnt=0;index=0;top=0;block=0;    memset(low,0,sizeof(low));    memset(dfn,0,sizeof(dfn));    memset(instack,0,sizeof(instack));    memset(stack,0,sizeof(stack));}struct node{    int v,next;    int cut;}edge[maxn];void add_edge(int u,int v){    edge[cnt].v=v;    edge[cnt].cut=0;    edge[cnt].next=head[u];    head[u]=cnt++;}void tarjan(int u,int pre){    dfn[u]=low[u]=++index;    instack[u]=1;    stack[top++]=u;    int v;    for(int i=head[u];i!=-1;i=edge[i].next)    {        v=edge[i].v;        if(v==pre)            continue;        if(!dfn[v])        {            tarjan(v,u);            low[u]=min(low[u],low[v]);            if(low[v]>dfn[u])            {                edge[i].cut=1;                edge[i^1].cut=1;            }        }        else if(instack[v])        {            low[u]=min(low[u],low[v]);        }    }    if(dfn[u]==low[u])    {        block++;        do        {            v=stack[--top];            instack[v]=0;            belong[v]=block;        }while(u!=v);    }}void slove(){    int v;    tarjan(1,1);    for(int i=1;i<=n;i++)    {        for(int j=head[i];j!=-1;j=edge[j].next)        {            v=edge[j].v;            if(edge[j].cut)            {                du[belong[i]]++;            }        }    }    int ans=0;    for(int i=1;i<=block;i++)    {        if(du[i]==1)        {            ans++;        }    }    printf("%d\n",(ans+1)/2);}int main (){    while(~scanf("%d%d",&n,&m))    {        init();        while(m--)        {            int u,v;            scanf("%d%d",&u,&v);            add_edge(u,v);            add_edge(v,u);        }        slove();        /*for(int i=1;i<=n;i++)        {            for(int j=head[i];j!=-1;j=edge[j].next)            {                int v;                v=edge[j].v;                printf("u:%d v:%d\n",i,v);            }        }*/    }}