ZOJ_1009

ZOJ_1009: Enigma

Time Limit: 10000 MS  Memory Limit: 32 MB  64bit IO Format: %lld

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Description

In World War II, Germany once used an electronic encryption machine called Enigma, which played a decisive role in the initial victories of Nazi Germany. It was proved to be one of the most reliable encryption systems in history. However, it was the blind trust on the reliability of the machine that brought about the doom of its user. 

The structure of a one-rotor Enigma is shown as follows (the Enigma has only six keys):

The key element of the Enigma is the rotor, as shown in the second figure, which uses electronic circuits to transform plaintext (input from keyboard) into cryptograph (output on screen). When one key on the keyboard is pressed, the corresponding cryptograph is shown on screen. Then the rotor will automatically revolve a one-letter-step to a different position. The following figures illustrate how the rotor works when letter "b" is pressed three successively times:

When letter "b" is pressed for the first time, the signal goes through the circuit and "A" is shown on screen. When the key is released, the rotor revolves one-letter-step to a different position that changes all the corresponding circuits so that each letter now has a different cryptograph. When letter "b" is pressed for the second time, the corresponding cryptograph is "C". So when letter "b" is pressed for the third time, the cryptograph is "E" according to the principle specified above.

Now the following figure shows the structure of a two-rotor Enigma.

The difference is that when a key is released, the second rotor won't revolve a step until the first one has finished one circle and returns to the original position. This is also the same in the case of three-rotor Enigma. That is: Only after the first rotor has finished one circle and return to the initial status, the second rotor will revolve a step. And only after the second rotor has finish one circle, the third rotor will revolve a step.

However, how did the Allied Forces obtain the information encrypted by Enigma? A person named Hans-Thilo Schimdt was very essential. He acted as a spy and provided the initial status of the three rotors in each Enigma to the Allied Forces once a month. The Allied Forces thus got everything they wanted by deciphering the intercepted cryptograph using the information offered by the spy.

Now, please design a program to obtain the plaintexts using the information offered by the Allied Forces.

Input

The input file contains several test cases representing several three-rotor Enigmas. The last test case in the input file is followed by a line containing a number 0.

Each case begins with a line containing an integer m (1 <= m <= 26) which indicates the number of sequential letters each rotor has. The first letter will always be A. (for example, m = 6 tells each rotor has 6 keys from A to F). The following three lines describe the initial status of the three rotors respectively. Each of them contains a string consisting of m capital character. For instance, a rotor with the initial status "BADFEC" indicates that the initial encrypt mechanism is to convert "abcdef" to "BADFEC", that is, original letter "a" corresponding to cryptograph letter "B", "b" to "A", "c" to "D", "d" to "F", "e" to "E" and "f" to "C". The forth line of each case contains an integer n which tells the number of cryptographs generated by the above Enigma. Then the following n lines are the n cryptographs respectively, which consist of m capital characters each.

Output

For each test case, the output should consist of two parts. The first line is the number of Enigma and a colon. The following lines are the plaintexts deciphered from the corresponding cryptographs. Each plaintext should be printed in one line. Note: The characters in the plaintext should be converted to the corresponding lowercases before they are printed.

Insert a blank line between test cases.

Sample Input 

6BADFECABCDEFABCDEF1ACE0

Sample Output

Enigma 1:bbb

Source

Asia 2001, Shanghai (Mainland China)

题意很恶心，读半天

其实就是给了3个转子的状态然后给出一串密文，要求输出明文。

具体的转换方法很奇怪，居然是求ABCD。。串与输入状态串的差值，然后每次根据这个差值串进行平移 求出最终的明文。

而题目中有个 第一个转子转满了一圈 第二个转子才转的要求，说的很复杂 其实取模就可以轻松解决。

#include<cstdio>

#include<algorithm>
#include<cstring>
using namespace std;




int n;
int m;


char tmp[30];
char tra[5][30];
int code[5][30];
int con[3];
int main()
{
    int ff=0;
    int cas=1;
    while(scanf("%d",&n)!=EOF)
    {
        if(n==0)
            break;


            if(ff)
                puts("");
            ff=1;
        printf("Enigma %d:\n",cas++);
        for(int i=0;i<3;i++)
        {
            scanf("%s",tra[i]);
            for(int j=0;j<n;j++)
                code[i][tra[i][j]-'A']=j-(tra[i][j]-'A');
        }
        scanf("%d",&m);
        char tmp[3000];


        for(int i=0;i<m;i++)
        {
            scanf("%s",tmp);


            int len=strlen(tmp);


            for(int j=0;j<len;j++)
            {
              int t=tmp[j]-'A';
                con[0]=j%n;
                con[1]=(j/n)%n;
                con[2]=(j/n/n)%n;
            for(int k=2;k>=0;k--)
              {
                  t+=code[k][(t-con[k]+n)%n];
                  t=t+n;
                  t%=n;
              }
              printf("%c",t+'a');


            }
            puts("");
        }




    }
    return 0;
}