POJ-1094 Sorting It All Out 解题报告

Description

An ascending sorted sequence of distinct values is one in which some form of a less-than operator is used to order the elements from smallest to largest. For example, the sorted sequence A, B, C, D implies that A < B, B < C and C < D. in this problem, we will give you a set of relations of the form A < B and ask you to determine whether a sorted order has been specified or not.

Input

Input consists of multiple problem instances. Each instance starts with a line containing two positive integers n and m. the first value indicated the number of objects to sort, where 2 <= n <= 26. The objects to be sorted will be the first n characters of the uppercase alphabet. The second value m indicates the number of relations of the form A < B which will be given in this problem instance. Next will be m lines, each containing one such relation consisting of three characters: an uppercase letter, the character "<" and a second uppercase letter. No letter will be outside the range of the first n letters of the alphabet. Values of n = m = 0 indicate end of input.

Output

For each problem instance, output consists of one line. This line should be one of the following three: 

Sorted sequence determined after xxx relations: yyy...y. 
Sorted sequence cannot be determined. 
Inconsistency found after xxx relations. 

where xxx is the number of relations processed at the time either a sorted sequence is determined or an inconsistency is found, whichever comes first, and yyy...y is the sorted, ascending sequence. 

Sample Input

4 6
A<B
A<C
B<C
C<D
B<D
A<B
3 2
A<B
B<A
26 1
A<Z
0 0

Sample Output

Sorted sequence determined after 4 relations: ABCD.
Inconsistency found after 2 relations.
Sorted sequence cannot be determined.

       题目链接：http://poj.org/problem?id=1094

       解法类型：拓扑排序

       解题思路：这几天看了下拓扑排序，于是就在POJ上找了一道题目练练手，一道很典型的拓扑排序题。建立一个邻接矩阵，然后深度搜索入度数为零的结点即可。但要做一些简单的剪枝，搜索到2个或者有回路就可以退出搜索了，这里一定要注意回溯!（我在这里被坑了= =!）。为了提高判断结点的入度数是否为零的效率，这里可以使用位运算，为了减小位运算的出错，最好写成宏定义。

       算法实现：
//STATUS:C++_AC_16MS_136K#include<stdio.h>#include<string.h>#define get(u,v) (G[u]&(1<<v))     //位运算处理#define put(u,v) (G[u]|=(1<<v))const int MAXN=30;char A[MAXN];int topo_dfs(int cur);int is_zero(int v);int s,n,m,G[MAXN],map[MAXN],tot;int main(){//freopen("in.txt","r",stdin);int i,u,v,ok,result,w;char a,b,ch[5];while(~scanf("%d%d",&n,&m) && n){tot=result=0;         //初始化memset(G,0,sizeof(G));memset(map,0,sizeof(map));getchar();for(i=0;i<m;i++){scanf("%c<%c\n",&a,&b);u=a-'A',v=b-'A';if(!get(u,v))put(u,v);       //位运算if(!map[u])map[u]=1,tot++;if(!map[v])map[v]=1,tot++;s=0;ok=topo_dfs(0);if(ok==-1){result=1;w=i+1;break;}else if(s==1){A[n]='\0';result=2;w=i+1;break;}}for(i++;i<m;i++)gets(ch);if(result==1)printf("Inconsistency found after %d relations.\n",w);    //按情况输出else if(result==2)printf("Sorted sequence determined after %d relations: %s.\n",w,A);else printf("Sorted sequence cannot be determined.\n");}return 0;}int topo_dfs(int cur){if(cur==n){s++;return 1;}if(s==2)return 2;    //有多个else if(cur==tot)return 3; //搜索完成int v,ok,t,ans;for(ok=0,v=0;v<n;v++){if( is_zero(v) && map[v] ){ok=1;t=G[v];      //位运算很方便的解决了赋值问题G[v]=0;map[v]=0;A[cur]=v+'A';ans=topo_dfs(cur+1);if(ans==-1)return -1;   //存在回路if(ans==2){G[v]=t;map[v]=1;return 2;}   //这里一定要注意剪枝和回溯if(ans==3){G[v]=t;map[v]=1;return 3;}   //这里一定要注意剪枝和回溯G[v]=t;map[v]=1;}}if(ok)return 0;else return -1;    //存在回路}int is_zero(int v)      //结点入度数是否为零{for(int i=0;i<n;i++)if(get(i,v))return 0;return 1;}