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char *host;

host = malloc(64 * sizeof(char)); /* spazio per 64 caratteri */
memset(host,0x00,host[63]);

I have a doubt: pointer can be seen as an "array"??
With the above code am i putting NULL into the 64 byte? (to prevent buffer overflow)

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1  
Use memset(host, 0, 64) - memset() wants a size as the third parameter what you're passing there is uninitialized data (so, nonsense in other words). –  Michael Burr Apr 24 '12 at 21:23
    
sizeof(char) is always 1 and 0x00 is a rather sophisticated representation of good old 0. –  undur_gongor Apr 24 '12 at 21:34

2 Answers 2

up vote 1 down vote accepted

Even if your code was correct (see @Dietrich's answer), it doesn't prevent buffer overflow. I can do this:

strcpy(host, "A very large string that's definitely a lot longer than 64 characters, so it will cause you a great deal of misery");
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so the best way to protect it is to do this: –  polslinux Apr 24 '12 at 21:50
    
if((strlen(host)+1) > 64){ fprintf(stderr,"\n--> ERRORE: buffer overflow\n"); return EXIT_FAILURE; } –  polslinux Apr 24 '12 at 21:50
    
@polslinux: No, that won't do anything useful. Once you've done the strcpy, it's already too late! –  Oliver Charlesworth Apr 24 '12 at 21:53
    
so what can i do to ""prevent a strcpy""?? –  polslinux Apr 24 '12 at 22:02
    
@polslinux: Nothing, other than check beforehand that the source string is smaller than the buffer. –  Oliver Charlesworth Apr 25 '12 at 0:36

A pointer can be seen as an array, in C. However, your code is wrong.

Correct version:

char *host;
host = malloc(64);   // sizeof(char) == 1, guaranteed by the standard
if (!host) abort();  // malloc can return NULL if it fails
host[63] = '\0';     // put NUL byte into the last element of array

When you run memset(host, 0x00, host[63]), it passes the value stored in host[63] as the length to memset. This is an error, since host is uninitialized, host[63] is garbage and you should not pass garbage to memset. If you are very lucky, your program will crash immediately. If you are unlucky, it will not.

Putting the \0 byte into the last slot of host does not avoid most buffer overflows. Most different types of buffer overflows need to be handled on an individual basis so there is no "one way" to prevent them.

Buffer overflows are a class of programming mistakes, and like most classes of mistakes, there are a lot of ways to make them. Each different buffer overflow is just a piece of incorrect code that needs to be fixed.

Terminology note: I prefer using NULL to refer to the invalid pointer named "NULL" in C, and NUL to refer to the zero byte in an ASCII string. E.g.,

// Initialize ptr to a NULL ptr...
char *ptr;
ptr = NULL;
ptr = 0; // equivalent to above

ptr = xmalloc(15);
// Set *ptr to the NUL byte...
*ptr = '\0';
*ptr = 0; // equivalent to above
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1  
"A pointer can be seen as an array" - because a pointer can point to the first element of an array, and hence "represents" the array. –  Steve Jessop Apr 24 '12 at 21:24
    
Also, perhaps, say something about NULL vs 0. –  Morpfh Apr 24 '12 at 21:24
    
@Rune: 0 is NULL, at least as a literal... –  Dietrich Epp Apr 24 '12 at 21:29
    
NULL is not a invalid pointer. By valid pointer C means either a pointer to an object or a null pointer. –  ouah Apr 24 '12 at 21:35
    
@DietrichEpp; My concern was that "[…]i putting NULL into the 64 byte[…]" could be some misunderstanding about NULL. To quote Peter van der Linden: "The ASCII character with the bit pattern of zero is termed a "NUL". The special pointer value that means the pointer points nowhere is "NULL". The two terms are not interchangeable in meaning." –  Morpfh Apr 24 '12 at 21:41

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