POJ - 1200 Crazy Search

Many people like to solve hard puzzles some of which may lead them to madness. One such puzzle could be finding a hidden prime number in a given text. Such number could be the number of different substrings of a given size that exist in the text. As you soon will discover, you really need the help of a computer and a good algorithm to solve such a puzzle.
Your task is to write a program that given the size, N, of the substring, the number of different characters that may occur in the text, NC, and the text itself, determines the number of different substrings of size N that appear in the text.

As an example, consider N=3, NC=4 and the text "daababac". The different substrings of size 3 that can be found in this text are: "daa"; "aab"; "aba"; "bab"; "bac". Therefore, the answer should be 5.
Input

The first line of input consists of two numbers, N and NC, separated by exactly one space. This is followed by the text where the search takes place. You may assume that the maximum number of substrings formed by the possible set of characters does not exceed 16 Millions.

Output

The program should output just an integer corresponding to the number of different substrings of size N found in the given text.

Sample Input

3 4
daababac

Sample Output

5

Hint

Huge input,scanf is recommended.

 

NC代表出现的字符个数（其实并没有用到），将每个字符转化成一个数字，让后对数字进行哈希，

 1 #include<iostream>
 2 #include<cstdio>
 3 #include<cstring>
 4 #include<algorithm>
 5 
 6 using namespace  std;
 7 
 8 struct node
 9 {
10     int par;
11     int re;
12 }M[50005];
13 
14 int find(int x)
15 {
16     if(M[x].par==x)
17         return x;
18     int t=M[x].par;
19     M[x].par=find(t);
20     M[x].re=(M[x].re+M[t].re)%3;
21     return M[x].par;
22 }
23 
24 int main()
25 {
26     int N,K,sum=0,x,y,z,f1,f2;
27     scanf("%d%d",&N,&K);
28     for(int i=1;i<=N;i++)
29     {
30         M[i].par=i;
31         M[i].re=0;
32     }
33     for(int i=0;i<K;i++)
34     {
35         scanf("%d%d%d",&x,&y,&z);
36         if((y>N||z>N)||(x==2&&y==z))
37         {
38             sum++;
39             continue;
40         }
41         f1=find(y);
42         f2=find(z);
43         if(f1!=f2)
44         {
45             M[f2].par=f1;
46             M[f2].re=(3+(x-1)+M[y].re-M[z].re)%3;
47         }
48         else
49         {
50             if(x==1&&M[y].re!=M[z].re)
51             {
52                 sum++;
53                 continue;
54             }
55             if(x==2&&((3-M[y].re+M[z].re)%3!=x-1))
56             {
57                 sum++;
58                 continue;
59             }
60         }
61     }
62     printf("%d\n",sum);
63     
64     
65     return 0;
66 }

 

转载于:https://www.cnblogs.com/xibeiw/p/7308325.html