Muddy Fields

 Muddy Fields
Time Limit:1000MS     Memory Limit:65536KB     64bit IO Format:%I64d & %I64u
Submit Status

Description

Rain has pummeled the cows' field, a rectangular grid of R rows and C columns (1 <= R <= 50, 1 <= C <= 50). While good for the grass, the rain makes some patches of bare earth quite muddy. The cows, being meticulous grazers, don't want to get their hooves dirty while they eat. 

To prevent those muddy hooves, Farmer John will place a number of wooden boards over the muddy parts of the cows' field. Each of the boards is 1 unit wide, and can be any length long. Each board must be aligned parallel to one of the sides of the field. 

Farmer John wishes to minimize the number of boards needed to cover the muddy spots, some of which might require more than one board to cover. The boards may not cover any grass and deprive the cows of grazing area but they can overlap each other. 

Compute the minimum number of boards FJ requires to cover all the mud in the field.

Input

* Line 1: Two space-separated integers: R and C 

* Lines 2..R+1: Each line contains a string of C characters, with '*' representing a muddy patch, and '.' representing a grassy patch. No spaces are present.

Output

* Line 1: A single integer representing the number of boards FJ needs.

Sample Input

4 4
*.*.
.***
***.
..*.

Sample Output

4

经典构图
  1 #include <cstdio>
  2 #include <cmath>
  3 #include <queue>
  4 #include <string.h>
  5 #include <iostream>
  6 using namespace std;
  7 int head[60000],linkx[60000],vi[60000],q[60000];
  8 int dx[60000],dy[60000];
  9 struct Edge
 10 {
 11     int to,next;
 12     Edge() {};
 13     Edge(int t,int n):to(t),next(n) {}
 14 };
 15 Edge a[200000];
 16 int an=0,nn;
 17 void AddEdge(int u,int v)
 18 {
 19     a[an]=Edge(v,head[u]);
 20     head[u]=an++;
 21 }
 22 bool bfs()
 23 {
 24     int i,u,v,h,t;
 25     h=t=0;
 26     bool flag=0;
 27     memset(dx,-1,sizeof(dx));
 28     memset(dy,-1,sizeof(dy));
 29     for(i=0; i<=nn; i++)
 30         if(!vi[i])
 31             q[h++]=i,dx[i]=0;
 32     while(h!=t)
 33     {
 34         u=q[t++];
 35         for(i=head[u]; ~i; i=a[i].next)
 36         {
 37             if(dy[v=a[i].to]==-1)
 38             {
 39                 dy[v]=dx[u]+1;
 40                 if(linkx[v]==-1)flag=1;
 41                 else
 42                 {
 43                     dx[linkx[v]]=dy[v]+1;
 44                     q[h++]=linkx[v];
 45                 }
 46             }
 47         }
 48     }
 49     return flag;
 50 }
 51 bool dfs(int u)
 52 {
 53     int v,i;
 54     for(i=head[u]; ~i; i=a[i].next)
 55     {
 56         v=a[i].to;
 57         if(dy[v]==dx[u]+1)
 58         {
 59             dy[v]=-1;
 60             if(linkx[v]==-1||dfs(linkx[v]))
 61             {
 62                 linkx[v]=u;
 63                 return 1;
 64             }
 65         }
 66     }
 67     return 0;
 68 }
 69 int MaxMatch()
 70 {
 71     int ans=0;
 72     memset(vi,0,sizeof(vi));
 73     while(bfs())
 74         for(int i=0; i<=nn; i++)
 75             if(!vi[i]&&dfs(i))
 76                 vi[i]=1,ans++;
 77     return ans;
 78 }
 79 int main()
 80 {
 81     int i,j,m,n;
 82     int x[100][100];
 83     while(~scanf("%d%d",&n,&m))
 84     {
 85         memset(head,-1,sizeof(head));
 86         memset(linkx,-1,sizeof(linkx));
 87         an=0;
 88         getchar();
 89         for(i=1; i<=n; i++)
 90         {
 91             for(j=1; j<=m; j++)
 92             {
 93                 x[i][j]=getchar();
 94             }
 95             getchar();
 96         }
 97         int now='1';
 98         for(i=1; i<=n; i++)
 99         {
100             j=1;
101             while(j<=m)
102             {
103                 while(j<=m&&x[i][j]!='*')j++;
104                 while(j<=m&&x[i][j]=='*')x[i][j++]=now;
105                 now++;
106             }
107         }
108         nn=now;
109         now='1';
110         for(i=1; i<=m; i++)
111         {
112             j=1;
113             while(j<=n)
114             {
115                 while(j<=n&&x[j][i]=='.')j++;
116                 while(j<=n&&x[j][i]!='.')AddEdge(now-'0',(int)(x[j++][i]-'0'));
117                 now++;
118             }
119         }
120         printf("%d
",MaxMatch());
121     }
122 }
View Code
原文地址:https://www.cnblogs.com/ERKE/p/3859078.html