To store English words, one method is to use linked lists and store a word letter by letter. To save some space, we may let the words share the same sublist if they share the same suffix. For example, "loading" and "being" are stored as showed in Figure 1.You are supposed to find the starting position of the common suffix (e.g. the position of "i" in Figure 1). Figure 1
Each input file contains one test case. For each case, the first line contains two addresses of nodes and a positive N (<= 105), where the two addresses are the addresses of the first nodes of the two words, and N is the total number of nodes. The address of a node is a 5-digit positive integer, and NULL is represented by -1.
Then N lines follow, each describes a node in the format:
Address Data Next
where Address is the position of the node, Data is the letter contained by this node which is an English letter chosen from {a-z, A-Z}, and Next is the position of the next node.
For each case, simply output the 5-digit starting position of the common suffix. If the two words have no common suffix, output "-1" instead.
11111 22222 9 67890 i 00002 00010 a 12345 00003 g -1 12345 D 67890 00002 n 00003 22222 B 23456 11111 L 00001 23456 e 67890 00001 o 00010
67890
//最初的解法低效,且有未知错误
/*思路如下:
从最后面开始找,直到存在某个前驱有不止一个后继指向它,则结束*/
#include <iostream>
#include <iomanip>
using namespace std;
typedef struct Node
{
int addressPre,addressPost;
char data;
};
int main()
{
int a1,a2,N,i,j,k,ans;
while(cin>>a1>>a2>>N)
{
Node *node=new Node[N];
for(i=0;i<N;i++)
cin>>node[i].addressPre>>node[i].data>>node[i].addressPost;
/*
for(i=0;i<N;i++)
cout<<node[i].addressPre<<" "<<node[i].data<<" "<<node[i].addressPost<<endl;
*/
k=-1;
while(1)
{
ans=0;
for(i=0;i<N;i++)
{
if(k==node[i].addressPost)
{
ans++;
j=i;
}
}
if(ans>1)
break;
else
k=node[j].addressPre;
}
cout <<setfill('0')<< setw(5)<<k<<endl;
}
return 0;
}
正解
#include <iostream>
#include <iomanip>
#include <vector>
using namespace std;
typedef struct Node
{
int addressPre,addressPost;
char data;
};
vector<Node> list1;
vector<Node> list2;
Node node[100010];
int main()
{
int a1,a2,N,i,j,k;
int l1,l2;
Node tNode;
while(cin>>a1>>a2>>N)
{
for(i=0;i<N;i++)
{
cin>>tNode.addressPre>>tNode.data>>tNode.addressPost;
node[tNode.addressPre]=tNode;
}
l1=a1;
l2=a2;
while(l1!=-1)
{
list1.push_back(node[l1]);
l1=node[l1].addressPost;
}
while(l2!=-1)
{
list2.push_back(node[l2]);
l2=node[l2].addressPost;
}
for(i=0,k=0;i<list1.size();i++)
{
for(j=0;j<list2.size();j++)
{
if(list1[i].addressPre==list2[j].addressPre)
{
k=1;
break;
}
}
if(k)
break;
}
if(k)
cout <<setfill('0')<< setw(5)<<list1[i].addressPre<<endl;
else
cout<<-1<<endl;
}
return 0;
}
原文地址:http://blog.csdn.net/u011694809/article/details/46385405
