POJ 1026 Cipher(置换)
Cipher
Time Limit: 1000MS | Memory Limit: 10000K | |
Total Submissions: 16995 | Accepted: 4445 |
Description
Bob and Alice started to use a brand-new encoding scheme. Surprisingly it is not a Public Key Cryptosystem, but their encoding and decoding is based on secret keys. They chose the secret key at their last meeting in Philadelphia on February 16th, 1996. They chose as a secret key a sequence of n distinct integers, a1 ; . . .; an, greater than zero and less or equal to n. The encoding is based on the following principle. The message is written down below the key, so that characters in the message and numbers in the key are correspondingly aligned. Character in the message at the position i is written in the encoded message at the position ai, where ai is the corresponding number in the key. And then the encoded message is encoded in the same way. This process is repeated k times. After kth encoding they exchange their message.
The length of the message is always less or equal than n. If the message is shorter than n, then spaces are added to the end of the message to get the message with the length n.
Help Alice and Bob and write program which reads the key and then a sequence of pairs consisting of k and message to be encoded k times and produces a list of encoded messages.
The length of the message is always less or equal than n. If the message is shorter than n, then spaces are added to the end of the message to get the message with the length n.
Help Alice and Bob and write program which reads the key and then a sequence of pairs consisting of k and message to be encoded k times and produces a list of encoded messages.
Input
The input file consists of several blocks. Each block has a number 0 < n <= 200 in the first line. The next line contains a sequence of n numbers pairwise distinct and each greater than zero and less or equal than n. Next lines contain integer number k and one message of ascii characters separated by one space. The lines are ended with eol, this eol does not belong to the message. The block ends with the separate line with the number 0. After the last block there is in separate line the number 0.
Output
Output is divided into blocks corresponding to the input blocks. Each block contains the encoded input messages in the same order as in input file. Each encoded message in the output file has the lenght n. After each block there is one empty line.
Sample Input
10 4 5 3 7 2 8 1 6 10 9 1 Hello Bob 1995 CERC 0 0
Sample Output
BolHeol b C RCE
Source
给定1~n的置换F,求其变换m次的变换F^m.
先找到循环节,再用m对循环节的长度取模即可.
先找到循环节,再用m对循环节的长度取模即可.
/* POJ 1026 置换 仔细研究一下样例,发现每个字母经过一定次数变换 后一定会回到原来的位置,且这个变换次数肯定不会大于N。 */ #include<string.h> #include<iostream> #include<stdio.h> #include<math.h> #include<algorithm> using namespace std; const int MAXN=220; char str[MAXN];//原始的字符串 char ans[MAXN];//最终变换后的字符串,即输出结果 int key[MAXN];//一次变换 int cir[MAXN][MAXN];//每个循环节成员,cir[i][j]表示以i为开始,变换j次后的结果 int num[MAXN];//每个循环节长度 bool vis[MAXN]; int main() { // freopen("in.txt","r",stdin); // freopen("out.txt","w",stdout); int n,k; int cnt;//循环节个数 while(scanf("%d",&n),n) { for(int i=1;i<=n;i++)scanf("%d",&key[i]); memset(vis,false,sizeof(vis)); memset(num,0,sizeof(num)); cnt=0; for(int i=1;i<=n;i++)//求所有循环节 { if(vis[i]==false) { vis[i]=true; num[cnt]=0; int temp=key[i]; cir[cnt][num[cnt]++]=temp; while(!vis[temp]) { vis[temp]=true; temp=key[temp]; cir[cnt][num[cnt]++]=temp; } cnt++; } } while(scanf("%d",&k),k) { gets(str);//第一个是空格 int len=strlen(str); for(int i=len;i<=n;i++)str[i]=' '; str[n+1]='\0'; for(int i=0;i<cnt;i++) for(int j=0;j<num[i];j++) { ans[cir[i][(j+k)%num[i]]]=str[cir[i][j]]; } ans[n+1]='\0'; printf("%s\n",ans+1); } printf("\n"); } return 0; }
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