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I'm learning Zed Shaw's Learn C the Hard Way. I'm confused by the code of the definition of a function in ex34. In ex34, Zed teaches us how to implement a dynamic array. Code in darray.h:

typedef struct DArray {
  int end;
  int max;
  size_t element_size;
  size_t expand_rate; /* it's 300 by default. */
  void **contents;
} DArray;

DArray *DArray_create(size_t element_size, size_t initial_max);
int DArray_expand(DArray *array);
/* other operations... */

The code confused me is in darray.c:

DArray *DArray_create(size_t element_size, size_t initial_max)
{
  DArray *array = malloc(sizeof(DArray));
  array->max = initial_max;
  array->contents = calloc(initial_max, sizeof(void *));
  array->end = 0;
  array->element_size = element_size;
  array->expand_rate = DEFAULT_EXPAND_RATE; /* defined in header, which is 300 */

  return array;
}

static inline int DArray_resize(DArray *array, size_t newsize)
{
  array->max = newsize;
  void *contents = realloc(array->contents, array->max * sizeof(void *));
  array->contents = contents;
  return 0;
}

int DArray_expand(DArray *array)
{
  size_t old_max = array->max;
  DArray_resize(array, array->max + array->expand_rate);
  memset(array->contents + old_max, 0, array->expand_rate + 1); // confused

  return 0;
}
/* Definitions of other operations... */

The link of the exercise...

So my question is, why the third argument of the memset called by DArray_expand is array->expand_rate + 1 instead of array->expand_rate? I think the length of the array after expanding is 400 (given that the initial length is 100) ranging from contents[0] to contents[399]. The elements need to be initialized are ranging from contents[100] to contents[399], then the third argument of memset should be array->expand_rate which is 300. Could anyone explain it to me?

Thanks for editing my post. I forgot that I can use inline code md syntax.


EDIT: I'm confused by the use of memset in this code too. The man page of memset in my computer said:

The memset() function writes len bytes of value c (converted to an unsigned char) to the byte string b.

I've googled the implementation of memset. And I got this from this link:

C standard library:string.h:memset

#include <stddef.h> /* size_t */
void *memset(void *s, int c, size_t n)
{
    unsigned char* p=s;
    while(n--)
        *p++ = (unsigned char)c; // This line confused me..
    return s;
}

In my OS(Darwin 12.0.0), the value of sizeof(void *) and sizeof(int *) is 8. I've tried some more. It seems size of all kinds of pointer in my OS is 8. If the size of pointer is 8, then what happens in this code:

*p++ = (unsigned char)c; /* the value of c is 0. size of 
                            unsigned char is 1 in my OS */

If Zed's code have bugs, could you tell me how to fix it?

share|improve this question
    
Learn C the hard way, i,e, from a flawed book. – cnicutar Mar 2 '13 at 11:12
up vote 1 down vote accepted

The +1 is likely bonkers or a code smell at the very least. Also, the memset function writes n bytes:

The memset() function fills the first n bytes of the memory area pointed to by s withthe constant byte c

As such, it should likely be array->expand_rate * sizeof(void *).


Moreover, memset to 0 isn't a bulletproof way to make pointers NULL. On some exotic architectures all-bits-0 doesn't necessarily mean NULL.

share|improve this answer
    
I wonder if that guy is working for w3fools these days. :) – Barmar Mar 2 '13 at 11:12
    
@Barmar I didn't carefully read the code or the explanation page. But it does look flawed and overly contrived at any rate. – cnicutar Mar 2 '13 at 11:13
1  
I agree. He forgot to mention "fix my bugs" in his section How to Improve It. – Barmar Mar 2 '13 at 11:14
    
Thanks. What do you mean by bonkers? And I'm confused by memset too. – wcd0 Mar 2 '13 at 11:15
    
@Joe.Jeong Just some slang meaning "bad / wrong" in this context. Read the memset manual page, it's not meant for writing NULL pointers. – cnicutar Mar 2 '13 at 11:17

You are right, the statement is wrong

memset(array->contents + old_max, 0, array->expand_rate + 1);

This might lead to access out of bounds of the array

It should be

memset(array->contents + old_max, 0, array->expand_rate * sizeof(void *));

EDIT: Also, as mentioned correctly by cnicutar, above, it should be array->expand_rate * sizeof(void *). I had missed this point and modified it after seeing cnicutar's answer.

share|improve this answer
    
Thanks, @Jay. I think I know how to fix it. – wcd0 Mar 2 '13 at 11:45

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