[SOJ] 1282. Computer games (KMP)

坑爹题

1282. Computer Game

Constraints

Time Limit: 1 secs, Memory Limit: 32 MB

Description

 

Brian is an enthusiast of computer games, especially those that simulate virtual reality. Now he is in front of the Star Gate. In order to open the gate he must break the protection as quickly as he can. Breaking the protection means to match a given code (a sequence of numbers) against the gate protection (a very long sequence of numbers). The starting position of the first occurrence of the code within the sequence opens the gate. Can you help him?

The code is a sequence of at most 60000 integer numbers between 0 and 255. The gate protection contains integer numbers between 0 and 255. Your program must find the first match if there is one, or report the absence of a match.

 

Input

 

The text input file contains several data sets. Each data set has the following format:

l     the length of the code

l     the sequence of numbers representing the code

l     the number of integers in the gate protection

l     the sequence of numbers representing the gate protection 

 code_dimension
integerinteger2 … integercode_dimension 
protection_dimension
integerinteger2 … integerprotection_dimension

White spaces may occur freely in the input.

 

Output

 

The results must be printed on the standard output. For each given data set, print the result on a separate line. The result is a number that represents the position (starting from zero) of the first occurrence of the code in the gate protection, or the message no solution if there is no match.

 

Sample Input

3
0 1 2
7
2 3 4 0 1 2 5

2
1 4
6
4 1 4 1 4 4

3
1 2 3
7
3 2 1 3 2 255 7

Sample Output

3
1
no solution

#include<iostream>
#include<stdio.h>
using namespace std;

int pat[1000000], text[1000000];
int next0[1000000];

void get_Next(int len2)
{
	int k = -1;
	int i = 0;
	next0[0] = -1;

	while (i<len2)
	{
		if (k == -1 || pat[i] == pat[k])
		{
			k++;
			i++;
			next0[i] = k;
		}
		else
			k = next0[k];
	}
}

int KMP(int len1, int len2)
{
	int i = 0;
	int j = 0;

	get_Next(len2);

	while ((i<len1) && (j<len2))
	{
		if (j == -1 || pat[j] == text[i])
		{
			i++;
			j++;
		}
		else
			j = next0[j];
	}
	if (j == len2)
		return i - j;
	return -1;
}

int main()
{
	int len2;
	int len1;
	while (scanf("%d", &len2) != EOF)
	{
		for (int i = 0; i < len2; i++)
			cin >> pat[i];
		cin >> len1;
		for (int i = 0; i < len1; i++)
			cin >> text[i];

		int q = KMP(len1, len2);

		if (q >= 0)
			cout << q << endl;
		else
			cout << "no solution" << endl;
	}

	return 0;
}

  

posted @ 2016-10-20 23:11  KennyRom  阅读(263)  评论(0编辑  收藏  举报