1152 Google Recruitment （20 分）

1152 Google Recruitment （20 分）

In July 2004, Google posted on a giant billboard along Highway 101 in Silicon Valley (shown in the picture below) for recruitment. The content is super-simple, a URL consisting of the first 10-digit prime found in consecutive digits of the natural constant e. The person who could find this prime number could go to the next step in Google's hiring process by visiting this website.

The natural constant e is a well known transcendental number（超越数）. The first several digits are: e = 2.718281828459045235360287471352662497757247093699959574966967627724076630353547594571382178525166427427466391932003059921... where the 10 digits in bold are the answer to Google's question.

Now you are asked to solve a more general problem: find the first K-digit prime in consecutive digits of any given L-digit number.

Input Specification:

Each input file contains one test case. Each case first gives in a line two positive integers: L (≤ 1,000) and K (< 10), which are the numbers of digits of the given number and the prime to be found, respectively. Then the L-digit number N is given in the next line.

Output Specification:

For each test case, print in a line the first K-digit prime in consecutive digits of N. If such a number does not exist, output 404 instead. Note: the leading zeroes must also be counted as part of the K digits. For example, to find the 4-digit prime in 200236, 0023 is a solution. However the first digit 2 must not be treated as a solution 0002 since the leading zeroes are not in the original number.

Sample Input 1:

20 5
23654987725541023819

Sample Output 1:

Sample Input 2:

10 3
2468024680

Sample Output 2:

不难就是如果答案是0023的话那就要输出0023 别输出23我这边wa了。。。。原因是dd/10写成dd%10这个真不该错

代码

#include<iostream>
#include<cstdio>
#include<cstring>
#include<algorithm>
#include<cmath>
using namespace std;
bool is_Pr(int sum)
{
	if(sum == 2)
		return true;
	int gg = sqrt(sum);
	for(int i = 2; i <= gg; i ++)
	{
		if(sum % i == 0)
			return false;
	}
	return true;
}
int main()
{
	int n, k ;
	scanf("%d %d",&n,&k);
	char str[1050];
	scanf("%s",str + 1);
	if(n < k)
	{
		printf("404\n");
		return 0;
	}
	int ans = 0;
	for(int i = 1; i <= k; i ++)
		ans = ans * 10 + str[i] - '0';
	int gg = 1;
	for(int i = 1; i < k; i ++)
		gg = gg * 10;
	if(is_Pr(ans))
	{
		printf("%d\n",ans);
		return 0;
	}	
	for(int i = k + 1; i <= n; i ++)
	{
		ans = ans % gg;
		ans = ans * 10 + str[i] - '0';
		if(is_Pr(ans))
		{
			int dd = ans,cnt = 0;
			while(1)
			{
				dd = dd / 10;
				cnt++;
				if(dd == 0)
					break;
			}
			for(int j = cnt + 1; j <= k; j++)
				printf("0");
			printf("%d\n",ans);
			return 0;
		}	
	}
	printf("404\n");
	return 0;
}