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  • POJ3352 Road Construction

     
    Time Limit: 2000MS   Memory Limit: 65536K
    Total Submissions: 11109   Accepted: 5520

    Description

    It's almost summer time, and that means that it's almost summer construction time! This year, the good people who are in charge of the roads on the tropical island paradise of Remote Island would like to repair and upgrade the various roads that lead between the various tourist attractions on the island.

    The roads themselves are also rather interesting. Due to the strange customs of the island, the roads are arranged so that they never meet at intersections, but rather pass over or under each other using bridges and tunnels. In this way, each road runs between two specific tourist attractions, so that the tourists do not become irreparably lost.

    Unfortunately, given the nature of the repairs and upgrades needed on each road, when the construction company works on a particular road, it is unusable in either direction. This could cause a problem if it becomes impossible to travel between two tourist attractions, even if the construction company works on only one road at any particular time.

    So, the Road Department of Remote Island has decided to call upon your consulting services to help remedy this problem. It has been decided that new roads will have to be built between the various attractions in such a way that in the final configuration, if any one road is undergoing construction, it would still be possible to travel between any two tourist attractions using the remaining roads. Your task is to find the minimum number of new roads necessary.

    Input

    The first line of input will consist of positive integers n and r, separated by a space, where 3 ≤ n ≤ 1000 is the number of tourist attractions on the island, and 2 ≤ r ≤ 1000 is the number of roads. The tourist attractions are conveniently labelled from 1 to n. Each of the following r lines will consist of two integers, v and w, separated by a space, indicating that a road exists between the attractions labelled v and w. Note that you may travel in either direction down each road, and any pair of tourist attractions will have at most one road directly between them. Also, you are assured that in the current configuration, it is possible to travel between any two tourist attractions.

    Output

    One line, consisting of an integer, which gives the minimum number of roads that we need to add.

    Sample Input

    Sample Input 1
    10 12
    1 2
    1 3
    1 4
    2 5
    2 6
    5 6
    3 7
    3 8
    7 8
    4 9
    4 10
    9 10
    
    Sample Input 2
    3 3
    1 2
    2 3
    1 3

    Sample Output

    Output for Sample Input 1
    2
    
    Output for Sample Input 2
    0
    

    Source

     
    tarjan将边双连通分量都缩为一点,统计入度为1的点的个数num。
    这些点每两个一对,互相连边,即是最优解。故答案为(num+1)/2  (若num是奇数,则多出来一个可以和任意点连边,所以有左边式子)
     1 /*by SilverN*/
     2 #include<algorithm>
     3 #include<iostream>
     4 #include<cstring>
     5 #include<cstdio>
     6 #include<cmath>
     7 using namespace std;
     8 const int mxn=1200;
     9 int n,r;
    10 struct edge{
    11     int v;
    12     int next;
    13     int id;
    14 }e[mxn<<2];
    15 int hd[mxn],ect=0;
    16 inline void add_edge(int u,int v){
    17     e[++ect].next=hd[u];e[ect].v=v;e[ect].id=ect;hd[u]=ect;
    18     e[++ect].next=hd[v];e[ect].v=u;e[ect].id=ect-1;hd[v]=ect;
    19     return;
    20 }
    21 int dfn[mxn],low[mxn];
    22 int dtime=0,cnt=0;
    23 int st[mxn],top=0;
    24 int belone[mxn];
    25 void tarjan(int u,int fa){
    26     dfn[u]=low[u]=++dtime;
    27     st[++top]=u;
    28     int i,j;
    29     for(i=hd[u];i;i=e[i].next){
    30         if(e[i].id==fa)continue;
    31         int v=e[i].v;
    32         if(!dfn[v]){
    33             tarjan(v,e[i].id);
    34             low[u]=min(low[v],low[u]);
    35         }
    36         else low[u]=min(dfn[v],low[u]);
    37     }
    38     if(dfn[u]==low[u]){
    39         int v=0;
    40         cnt++;
    41         do{
    42             v=st[top--];
    43             belone[v]=cnt;
    44         }while(v!=u);
    45     }
    46     return;
    47 }
    48 int ind[mxn];
    49 void solve(){
    50     int i,j;
    51     for(i=1;i<=n;i++){
    52         for(j=hd[i];j;j=e[j].next){
    53             int v=e[j].v;
    54             if(belone[i]!=belone[v])ind[belone[v]]++;//统计入度 
    55         }
    56     }
    57     int num=0;
    58     for(i=1;i<=cnt;i++){
    59         if(ind[i]==1)num++;
    60     }
    61     printf("%d
    ",(num+1)/2);
    62     return;
    63 }
    64 int main(){
    65     scanf("%d%d",&n,&r);
    66     int i,j;int u,v;
    67     for(i=1;i<=r;i++){
    68         scanf("%d%d",&u,&v);
    69         add_edge(u,v);
    70     }
    71     for(i=1;i<=n;i++)
    72         if(!dfn[i])tarjan(i,0);
    73     solve();
    74     return 0;
    75 }
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  • 原文地址:https://www.cnblogs.com/SilverNebula/p/5851476.html
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