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int count(string s){
    if(s == "")
      return 0;
    if(s.length == 1)
      return 1;
    return 1 + count() //This is what I can't figure out. How to traverse the string.
    //I just need a hint, not a full on answer.
}

I dont know how to traverse a string.

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2  
Hint: The size of a string is 1 + the size of the string with the first (or last) character removed. The size of an empty string is zero. –  zackg Dec 11 '12 at 8:42
    
Sounds like homework to me.. now what you probably want to do on the second last line: return 1 + count(s.substr(0, s.length() - 1)); –  Nils Dec 11 '12 at 8:44
1  
Yeah it's homework. Nothing special but it's bugging me pretty good. –  corn_flakes Dec 11 '12 at 8:46
4  
are you sure then that you need to use std::string vs char*? if(s.length == 1) looks almost like cheating :) –  Karthik T Dec 11 '12 at 8:47
    
You use string's length method which already returns size. What's the point of this exercise? –  user1773602 Dec 11 '12 at 8:48

6 Answers 6

up vote 10 down vote accepted

Hint: use substr() in your recursion.

Also, you have two base cases. One of them has three issues:

  1. it has a syntax error in it;
  2. it relies on being able to compute the length of the string (which is what your function is supposed to do);
  3. it is unnecessary given that you have the other base case.
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I'll give this a shot, thank you! –  corn_flakes Dec 11 '12 at 8:46
    
I put the two base cases because they said if the string is empty return 0, and then i put the base case of length == 1 if it was > 0. –  corn_flakes Dec 11 '12 at 8:52
1  
@user1893303 you could use 0 as your base case. –  Jan Dvorak Dec 11 '12 at 8:58
    
substr worked thank you. –  corn_flakes Dec 11 '12 at 9:01
1  
@user1893303: That's exactly the wrong thing to do. What if I call your function with an empty string? –  NPE Dec 11 '12 at 9:09

I don't think you example makes any sense, you use length which already returns length in your calculation. If I were your tutor, I wouldn't have accepted this as a valid solution.

You probably need to use const char*

int count(const char* s){
    if(*s == '\0')
      return 0;
    return 1 + count(s + 1);
}
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1  
You don't need const char*, not even char*. –  Jan Dvorak Dec 11 '12 at 8:53
1  
The problem is not that the string knows its length, but that the OP uses it as a base case. –  irrelephant Dec 11 '12 at 8:53
    
From other examples i found they all used chars but the requirement for the question was to use a string data type. I know its silly to count the length in recursion when all you have to due is use length() function but i think the prof wants us to at least experience string recursion. –  corn_flakes Dec 11 '12 at 8:57
    
@irrelephant, what is the point of calculating length of the std::string if it already knows it? I guess his assignment sounds like calculate string size recursively where string is meant to be c-string, not std::string –  user1773602 Dec 11 '12 at 8:58
1  
@user1893303, did he explicitly say std::string or just "string data type"? The latter probably means that you need const char* –  user1773602 Dec 11 '12 at 9:00

Maybe you would want to use substr.

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Worked like a charm. Thank you –  corn_flakes Dec 11 '12 at 8:53

If your purpose is to traverse a string, I suggest using an iterator (see std::string::begin).

template<typename It>
int count(It const begin, It const end)
{
  return (begin != end ? count(begin + 1, end) + 1 : 0);
}

int count(std::string const& s)
{
  return count(s.begin(), s.end());
}
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1  
How does that use recursion? –  Jan Dvorak Dec 11 '12 at 8:43
1  
@JanDvorak: if the argument to the function is an iterator (along with the "end" iterator), it is recursive. –  Julien Royer Dec 11 '12 at 8:44
  #include<stdio.h>
  main(){
  char str1[100];
  gets(str1);
  int i=0;i=len(str1,i);printf(" \nlength of string is %d",i);
  }
  int len(char s1[],int i) {
  printf("\n%c",s1[i]);
  int sum=0,count =1; 
  if(s1[i] == '\0') return 0;
  else
  return (count += len(s1,++i));
  }
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I know you want a C++ solution, but still. Sometimes C is better than C++.

int count(const char *s)
{
  if(*s == 0)
    return 0;
  else return 1 + count(++s);
};

Call as count(str.c_str()).

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