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c++ function, strtok()

Will this example suffer from buffer overrun if str is not terminated properly?

/* strtok example */
/* source - (see link below) */
#include <stdio.h>
#include <string.h>

int main ()
  char str[] ="- This, a sample string.";
  char * pch;
  printf ("Splitting string \"%s\" into tokens:\n",str);
  pch = strtok (str," ,.-");
  while (pch != NULL)
    printf ("%s\n",pch);
    pch = strtok (NULL, " ,.-"); // walk the stack?
  return 0;

If str isn't terminated correctly with "\0", isn't it possible for

pch = strtok (NULL, " ,.-");

to walk the stack?


share|improve this question
The simple way to think of this is that if str isn't properly terminated, then it's not a C-style string. It's just some characters. Passing anything other than a C string to strtok is bad news, of course. – Steve Jessop Sep 2 '10 at 21:22
Is this for some white hat hacking? – Chubsdad Sep 3 '10 at 4:39

1 Answer 1

up vote 1 down vote accepted

Most string-handling functions will walk off the end if the string is not null-terminated.

However, in your code example, str is terminated.

share|improve this answer
Roger that. My example shows it, but if I was using a function without string termination, a buffer overrun could happen. thanks! – Kevin Meredith Sep 2 '10 at 21:06

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