Description
Cycle shifting refers to following operation on the sting. Moving first letter to the end and keeping rest part of the string. For example, apply cycle shifting on ABCD will generate BCDA. Given any two strings, to judge if arbitrary times of cycle shifting on one string can generate the other one.
Input
There m lines in the input, while each one consists of two strings separated by space. Each string only contains uppercase letter 'A'~'Z'.
Output
For each line in input, output YES in case one string can be transformed into the other by cycle shifting, otherwise output NO.
Example
Input
AACD CDAA
ABCDEFG EFGABCD
ABCD ACBD
ABCDEFEG ABCDEE
Output
YES
YES
NO
NO
Restrictions
0 <= m <= 5000
1 <= |S1|, |S2| <= 10^5
Time: 2 sec
Memory: 256 MB
描述
所谓循环移位是指。一个字符串的首字母移到末尾, 其他字符的次序保持不变。比如ABCD经过一次循环移位后变成BCDA
给定两个字符串,判断它们是不是可以通过若干次循环移位得到彼此
输入
由m行组成,每行包含两个由大写字母'A'~'Z'组成的字符串,中间由空格隔开
输出
对于每行输入,输出这两个字符串是否可以通过循环移位得到彼此:YES表示是,NO表示否
样例
见英文题面
限制
0 ≤ m ≤ 5000
1 ≤ |S1|, |S2| ≤ 10^5
时间:2 sec
内存:256 MB
solution:
此题的详细解答请参考清华大学邓俊辉老师《数据结构(C++语言版)》(第三版)Page 327——Karp-Rabin算法。
将问题转化为模式串匹配问题,此算法是基于 哈希表 的(用哈希表比对两串是否匹配)。
AC代码如下:
1 #include <stdio.h>
2 #include <string.h>
3 #include <stdlib.h>
4
5 #define M 997
6 #define R 26
7 #define MMAX 100005
8 #define DIGIT(S, i) ( (S)[i] - 'A' )
9
10 // IO外挂
11 const int SZ = 1<<20;
12 struct fastio{
13 char inbuf[SZ];
14 char outbuf[SZ];
15 fastio(){
16 setvbuf(stdin,inbuf,_IOFBF,SZ);
17 setvbuf(stdout,outbuf,_IOFBF,SZ);
18 }
19 }io;
20
21 typedef long long HashCode;
22
23 bool check1by1(char* P, char* T, size_t i)
24 {
25 for (size_t m = strlen(P), j = 0; j < m; j++, i++)
26 {
27 if (P[j] != T[i]) return false;
28 }
29 return true;
30 }
31
32 HashCode prepareDm(size_t m)
33 {
34 HashCode Dm = 1;
35 for (size_t i = 1; i < m; i++)
36 Dm = (Dm*R) % M;
37 return Dm;
38 }
39
40 void updateHash(HashCode& hashT, char* T, size_t m, size_t k, HashCode Dm)
41 {
42 hashT = (hashT - DIGIT(T, k - 1)*Dm) % M;
43 hashT = (hashT*R + DIGIT(T, k + m - 1)) % M;
44 if (hashT < 0) hashT += M;
45 }
46
47 bool match(char* P, char* T)
48 {
49 size_t m = strlen(P), n = strlen(T);
50 HashCode Dm, hashP = 0, hashT = 0;
51 Dm = prepareDm(m);
52 for (size_t i = 0; i < m; i++)
53 {
54 hashP = (hashP*R + DIGIT(P, i)) % M;
55 hashT = (hashT*R + DIGIT(T, i)) % M;
56 }
57 for (size_t k = 0;;)
58 {
59 if (hashT == hashP && check1by1(P, T, k)) return true;
60 if (++k>n - m) return false;
61 else updateHash(hashT, T, m, k, Dm);
62 }
63 }
64
65 int main()
66 {
67 char* s1 = (char*)malloc(sizeof(char)*(MMAX));
68 char* s2 = (char*)malloc(sizeof(char)*(MMAX * 2));
69
70 do
71 {
72 if (scanf("%s %s", s1, s2) == EOF) break;
73 int n1, n2;
74 n1 = strlen(s1); n2 = strlen(s2);
75 if (n1 != n2) printf("NO\n");
76 else
77 {
78 int i;
79 for (i = n2; i < n2 * 2 - 1; i++) s2[i] = s2[i - n2];
80 s2[i] = '\0';
81
82 if (match(s1, s2)) printf("YES\n");
83 else printf("NO\n");
84 }
85
86 } while (true);
87
88 return 0;
89 }
原文链接: https://www.cnblogs.com/maples7/p/4356102.html
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