POJ-1129 Channel Allocation
作者:互联网
题意:给定无向图,对点着色,使得相邻的结点颜色不同。
思路:直接dfs爆搜即可
Sample Input
2 A: B: 4 A:BC B:ACD C:ABD D:BC 4 A:BCD B:ACD C:ABD D:ABC 0
Sample Output
1 channel needed. 3 channels needed. 4 channels needed.
1 import java.util.Arrays; 2 import java.util.Scanner; 3 4 public class Main1129 { 5 static int map[][]; 6 static int temp[],max=1; 7 static int n; 8 static boolean bool; 9 public static void main(String args[]) 10 { 11 Scanner sc=new Scanner(System.in); 12 n=sc.nextInt(); 13 while(n!=0)//读入图 14 { 15 map=new int[n][n]; 16 temp=new int[n]; 17 for(int i=0;i<n;i++) 18 { 19 String s=sc.next(); 20 s=s.substring(2); 21 for(int j=0;j<s.length();j++) 22 map[i][s.charAt(j)-65]=1; 23 24 } 25 26 dfs(0,1); 27 if(max==1) 28 System.out.println(max+" channel needed."); 29 else 30 System.out.println(max+" channels needed."); 31 max=1; 32 bool=false; 33 n=sc.nextInt(); 34 } 35 36 } 37 public static void dfs(int t,int kind)//点,颜色种类 38 { 39 if(t>=n) 40 { 41 bool=true; 42 } 43 44 else 45 { 46 for(int i=1;i<=kind;i++) 47 { 48 if(Bound(t,i))//点t是否可以涂颜色i 49 { 50 temp[t]=i; 51 dfs(t+1,kind); 52 } 53 } 54 if(!bool)//如果目前所有颜色行不通就加一种新颜色 55 { 56 max++; 57 dfs(t,kind+1); 58 } 59 } 60 } 61 public static boolean Bound(int t,int c) 62 { 63 for(int i=0;i<n;i++) 64 if(map[t][i]==1&&c==temp[i]) 65 return false; 66 return true; 67 } 68 }View Code
标签:1129,Scanner,BC,int,Allocation,needed,POJ,new,static 来源: https://www.cnblogs.com/gdskl/p/11445885.html