Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am working on a problem and I am a bit stuck so I thought to ask for your help. I want to make a program with the following capabilities. The user will give a 4 digit cipher key and a text.

Then the text will be converted in cipher using the following method. Let's say that the text input was 'ABC' and the key was 123. Then, using the ASCII table the 'ABC' will be converted to 'BDF'. The text will be moved K positions forward in the ASCII table, where K is the corresponding digit of the key. Consider the text infinite. My first action was to convert the key to an array.

//scanning the cypher key
scanf("%d", &cypherkey);

//converting the cypher key into an array using a practical mathematic method for extracting its digit
int keyarray[4];
keyarray[0]= cypherkey/1000;
keyarray[1]= (cypherkey-keyarray[0]*1000)/100;
keyarray[2]= ((cypherkey-keyarray[0]*1000)- keyarray[1]*100)/10;
keyarray[3]= ((cypherkey-keyarray[0]*1000)- keyarray[1]*100)-keyarray[2]*10;

So, now I have the key in an array. However, I can't find a good way to read the text and then cipher it. I can't use an array because we don't know the length of the text.

I would appreciate any help!

share|improve this question

migrated from programmers.stackexchange.com Mar 30 '12 at 18:51

This question came from our site for professional programmers interested in conceptual questions about software development.

    
Just read the text one character at a time in a loop. –  Carey Gregory Mar 30 '12 at 18:57
1  
is this homework? –  DarkSquirrel42 Mar 30 '12 at 18:58
    
If it's homework you should tag it as so! –  karlphillip Mar 30 '12 at 20:28
    
And if it's not homework, you shouldn't be inventing your own cipher - particularly not such a transparently weak one! –  Nick Johnson Mar 31 '12 at 10:39
    
sorry for the late reply, yeah it's homework, an assignment we have for my programming class. I will update the tags, right now. –  Dimitris Mar 31 '12 at 11:17

3 Answers 3

up vote 1 down vote accepted

I took a shot and the input text is hardcoded within the application. The example below is not production code, its only meant for educational purposes.

On my approach there are 2 challenges:

  • Writing the function that counts how many digits there are in a number:

  • Implementing the function that retrieves a specific digit of a number;

.

#include <stdio.h>
#include <string.h>

int count_digits(int number) // // http://stackoverflow.com/questions/1489830/efficient-way-to-determine-number-of-digits-in-an-integer
{
    int digits = 0;
    if (number < 0) 
    digits = 1; 

    while (number) 
    {
        number /= 10;
        digits++;
    }

    return digits;
}

char get_digit(int number, int index) // starts at index 0
{
    if (number == 0)
        return (char)0;

    int n_digits = count_digits(number);
    if (index > n_digits)
        return (char)-1;

    char digit = -1;
    int i;
        for (i = 0; i < (n_digits-index); i++)
    {
        digit = number % 10;
        number /= 10;
    }

    return digit;   
}

int main()
{
    printf("* Type the encoding key (numbers only): ");
    int key = 0;
    scanf("%d", &key);

    int key_digits = count_digits(key);
    //printf("* The key has %d digits.\n", key_digits);

    char input_msg[] = "ABCABC"; // This is the input text
    int input_sz = strlen(input_msg);
    //printf("* Input message [%s] has %d characters.\n", input_msg, input_sz);

    int i, d = 0;   
    for (i = 0; i < input_sz; i++)
    {       
        if (d >= key_digits)
            d = 0;

        input_msg[i] += get_digit(key, d);      
        d++;
    }

    printf("* Encoded text is: %s\n", input_msg);

    return 0;
}

Outputs the following...

For input text ABC:

$ ./cypher 
* Type the encoding key (numbers only): 123
* Encoded text is: BDF

$ ./cypher 
* Type the encoding key (numbers only): 234
* Encoded text is: CEG

For input text ABCABC:

$ ./cypher 
* Type the encoding key (numbers only): 123
* Encoded text is: BDFBDF
share|improve this answer

The most straightforward answer, ignoring all performance concerns, is to just handle one character at a time.

basically,

  1. read a character from your input.
  2. transform it, based on your algorithm & your current 'key digit'
  3. advance your position in your key array, looping around if necessary
  4. repeat until end of input

Real-world implementations would probably read input into a buffer, operate on the entire buffer, and repeat, for performance reasons.

share|improve this answer

I believe there's a simpler way to do this. The algorithm you're describing is known as a generalized Caesar cipher. The congruence relation that ciphers text is C = rP + s (mod 26) where P is the plain text, r is a multiplier and s is the shift. In the situation you describe, you have a multiplier of 2 and a shift of 1. If you want to avoid using a table, you can just get the unicode for each letter in your plain text and subtract a consistent offset from the unicode so that you always end up with a number under 26. To decipher ciphertext, you need to multiply the ciphertext by the modular inverse of r add the offset you applied and then convert back to a character from the numeric unicode representation.

In short, you need to get the unicode for a character, subtract some offset, multiply by 2, add 2 and take the mod of that number mod 26 to encipher something.

To reverse the process, multiply the ciphertext, minus 1, by the modular inverse, add the offset and convert back to a character.

share|improve this answer
    
actually, there is a simpler solution, no need for complicated tables, arrays and things like that. I used the getchar function in a loop. I will post my solution though in two days because I don't want to have problems with my professor for posting the answer online. –  Dimitris Apr 1 '12 at 13:32

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.