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I'm pretty new with recursion. I need to write two functions. So far I wrote one, which entitles finding the length of a string. However, the second one, which is: finding the repeating character in an array is proving to be very difficult. I have scoured the web trying to find examples, I have been doing a lot of reading but nothing so far. So if you could point me in the right direction, I would really appreciate it.

Thank you

//length( ) -- this function is sent a null terminated array of characters.  
    //The function returns the length of the "string".    
    long slength (const char ntca[])
        {
            int length = 0;

            if (ntca[length] == '\0'){
                return 0;
            }
            else{
                return  slength(ntca+1)+1;
            }
        }

        //countall( ) -- This function is sent a null terminated array of characters 
        //and a single character.  The function returns the number of times the character 
        //appears in the array.

        long countall (const char ntca[],char letter){

            int position = 0;
            int counter = 0;
            long length = slength(ntca);

            if (length == 0)
                return 0;

            else if (ntca[position]==letter)
                return 1 + countall(ntca-1,letter);
            else 
                return countall(ntca,letter);


        }
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Note that I would write a recursive string length but it seems the length function wants to read long slength(char const* s) { return *s? 1 + slength(): 0; } –  Dietmar Kühl Nov 13 '13 at 23:19
1  
You're close. Notice how in the first function, you're moving one character ahead in the string, each time? You need to do the same in countall(), both in the case where letter is matched, and in the case where it's not. In one case, you're currently backing up (into unknown territory); in the other case, you're just calling countall on the same character over and over. –  Paul Roub Nov 13 '13 at 23:22
    
You certainly don't want to compute the length of the string for the second function! If the string isn't empty add 1 if the front character is the requested letter to the result of countall() with the tail of the string: long countall(char const* s, char l) { return (*s == l) + (*s? countall(s + 1, l): 0); }. Your error is that you either stick on the same position or even go backwards! –  Dietmar Kühl Nov 13 '13 at 23:23
    
Is this for some class you're all taking, and hitting up SO for?. also, I'm not really seeing much C++ in this language-wise. It is certainly valid C++, but equally valid C. If you're tasked with a recursive solution that uses no C++ standard library features, can you at least use C-library features, such as strchr()? No bigger if not, just curious. –  WhozCraig Nov 13 '13 at 23:52

1 Answer 1

You can try the below code:

long countall(const char *ptr, char letter)
{
    if(!*ptr) return 0; //base case
    return (*ptr == letter) + countall(ptr + 1, letter);
}

The base case of recursion is when function meets the end of the string. For an empty string and any letter the answer is 0.

If string is not empty, we add 1 to the result of recursive call on shorter string if and only if the current char matches letter.

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