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I have written the following program to resolve a path to several directory names

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

char *
tokenizer(char *path, char **name){
  char s[300];
  char *buffer;
  memcpy(s, path, strlen(path)+1);
  printf("%s\n",s);    // PROBLEM
  int i=0;
  while(s[i] == '/'){
    i++;
  }
  if (i == strlen(path)){
    return NULL;
  }
  *name = strtok_r(s, "/", &buffer);
  return buffer;
}

int main(void){
  char str[300];
  char *token, *p;
  scanf("%s",str);
  p = tokenizer(str, &token);
  if (p != NULL)
    printf("%s\n",token);
  else
    printf("Nothing left\n");
  while((p=tokenizer(p, &token)) != NULL){
    printf("%s\n",token);
  }
}

Output of the above program

Input: a/b/c
Output: a/b/c
a/b/c
a
b/c
b
c
c

If I comment the line labelled PROBLEM

Input: a/b/c
Output: Some garbage value

Can somebody explain me the reason for this strange behavior?

Note: I have realised that s is a stack allocated variable and it ceases to exist in function main() but why does the program works when I use printf() ?

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If I compile your program, I get a warning in the bottommost while line. Better look into that first. –  Mr Lister Apr 22 '12 at 8:24
    
@MrLister I don't get any warnings while compiling the program. What options are you specifying to the gcc compiler? –  gibraltar Apr 22 '12 at 8:26
    
the famous -Wall –  Karoly Horvath Apr 22 '12 at 8:27
    
why memcpy instead of strcpy? (you rely on strlen anyway) –  ShinTakezou Apr 22 '12 at 8:34
    
@gibraltar gcc 4.3 without options gives me test.c:31: warning: passing argument 2 of ‘tokenizer’ from incompatible pointer type –  Mr Lister Apr 22 '12 at 8:38

5 Answers 5

up vote 3 down vote accepted

In addition to what geekasaur says:

strtok_r's 3rd parameter is used incorrectly, in two ways:
1. It should be initialized to NULL before the first call.
2. It shouldn't be used in any way (you return it to the caller). It should only be passed to another strtok_r call.

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You are returning a pointer into a stack-allocated string (buffer points into s); s's memory ceases to be meaningful after tokenize returns.

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You cannot do this

char s[300];
char *buffer;
...
*name = strtok_r(s, "/", &buffer);
return buffer;

Here buffer is a pointer to a s[300] position. s[300] is a function local variable allocated on the stack when the function is called and destroyed when the function returns. So you are not returning a valid pointer, you cannot use that pointer out of the function.

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Along with the observations that you're returning a pointer to a local variable, I think it's worth noting that your tokenizer is almost 100% pointless.

Most of what your tokenizer does is skip across any leading / characters before calling strtok_r -- but you're passing '/' as the delimiter character to strtok_r, which will automatically skip across any leading delimiter characters on it own.

Rather simpler code suffices to print out the components of a path without the delimiters:

char path[] = "a/b/c";
char *pos = NULL;

char *component = strtok_r(path, "/", &pos);
while (NULL != component) { 
    printf("%s\n", component);
    component = strtok_r(NULL, "/", &pos);
}
share|improve this answer
    
I know how to tokenize strings. I know I can adopt the above implementation. I am asking why is my program behaving strangely in case of printf. And tokenizer is just a test program. I am implementing a file system with linux like directory structure where I need to traverse directories one by one to reach the final inode. –  gibraltar Apr 22 '12 at 8:58
    
@gibraltar: So if you know how to tokenize strings, why did you ask about the behavior of code you knew had undefined behavior? –  Jerry Coffin Apr 22 '12 at 8:59
    
My question is why does the program behaves correctly in case of printf() ? –  gibraltar Apr 22 '12 at 9:06
    
@gibraltar: "undefined behavior behavior, upon use of a nonportable or erroneous program construct or of erroneous data, for which this International Standard imposes no requirements" That may (and often does) include seeming to work correctly, at least under some poorly defined conditions. –  Jerry Coffin Apr 22 '12 at 9:10

Try this:

char*
token(char * path, char ** name){

    static char * obuffer = NULL;
    char * buffer = NULL, * p, * q;

    if(path == NULL) {
        buffer = realloc(buffer, strlen(obuffer) + 1);
        p = obuffer;
    } else {
        buffer = malloc(257);
        p = path;
    }

    if(!buffer) return NULL;
    q = buffer; 

    if(!p || !*p) return NULL;

    while(*p != '\0') {
          if(*p == '/') { 
            p++; /* remove the / from string. */
            break;
          }
          *q ++ = *p++;
    }

    *q ++ = '\0';
    obuffer = p;
    *name = buffer;

    return buffer;
}

int main(void)
{

    char * s = "foo/baa/hehehe/";
    char * name = NULL;
    char * t = token(s, &name);
    while(t) {
        printf("%s\n", name);
        t = token(NULL, &name);
    }

    return 0;
}

the output:

foo
baa
hehehe

But you are basically "reinventing the wheel" of strtok() function..

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