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I am allocating memory for array of pointers to structure through malloc and want to initialize it with zero like mentioned below . Assuming the structure contains member of type int and char [] (strings) ? so how can i zero out this struct.

Code : suppose i want to allocate for 100

struct A **a = NULL;
a = (struct **)malloc(sizeof( (*a) * 100);
for(i=1; i < 100; i++)
     a[i] = (struct A*)malloc(sizeof(a));

Also please explain me why is it necessary to initialize with zero .

Platform : Linux , Programing language : C

I know we can use memset or bzero . I tried it bt it was crashing , may be i was noy using it properly so pls tell me the correct way .

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The only thing that indicates that this is C++ is the cast of the return value of malloc. You should probably be using vector, or at least new[] –  Seth Carnegie Jan 3 '12 at 19:38
2  
arrays in C are 0-origin, e.g., if arr is an array, arr[0] is the first element of the array. In your code example, a[0] is never initialized. –  ouah Jan 3 '12 at 19:39
    
C or C++? Choose one, they are different languages. –  Paul Manta Jan 3 '12 at 19:39
    
Oh no, it's the elusive C/C++ animal... –  Lee Louviere Jan 3 '12 at 19:41
1  
@john: This question has completely different answers if you are using C or if you are using C++. –  Dietrich Epp Jan 3 '12 at 19:42

4 Answers 4

up vote 4 down vote accepted

First, C arrays are zero-based, not one-based. Next, you are allocating only enough space to hold one pointer, but you are storing 100 pointers into it. Are you trying to allocate 100 As, or are you trying to allocate 100 sets of 100 As each? Finally, the malloc inside your loop allocates space for the sizeof a, not sizeof (struct A).

I'll assume that you are trying to allocate an array of 100 pointers to A, each pointer pointing to a single A.

Solutions: You could use calloc:

struct A **a;
/* In C, never cast malloc(). In C++, always cast malloc() */
a = malloc(100 * sizeof( (*a)));
for(i=0; i < 100; i++)
    a[i] = calloc(1, sizeof(struct A));

Or, you could use memset:

struct A **a;
a = malloc(100 * sizeof(*a));
for(i = 0; i < 100; i++) {
  a[i] = malloc(sizeof(struct A));
  memset(a[i], 0, sizeof(struct A));
}


You ask "why is it necessary to initialize with zero?" It isn't. The relevant requirement is this: you must assign a value to your variables or initialize your variable before you use them for the first time. That assignment or initialization might be zero, or it might be 47 or it might be "John Smith, Esq". It just has to be some valid assignment.

As a matter of convenience, you might choose to initialize all of your members of struct A to zero, which you can do in one single operation (memset or calloc). If zero is not a useful initial value for you, you could initialize the structure members by hand, for example:

struct A **a;
a = malloc(100 * sizeof(*a));
for(i = 0; i < 100; i++) {
  a[i] = malloc(sizeof(struct A));
  a[i]->index = i;
  a[i]->small_prime = 7;
  strcpy(a[i]->name, name_database[i]);
}

As long as you never refer to the value of an uninitialized and unassigned variable, you are good.

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Use of calloc would be most in line with the example above.

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You can use memset() to set the whole array to 0

OTOH,

a = (struct **)malloc(sizeof( (a*)));
for(i=1; i < 100; i++)
     a[i] = (struct*)malloc(sizeof(a) * 100);

is wrong, because you have just created one element of a * but in the next line when the loop goes to 2nd iteration, it will access illegal memory. So to allocate 100 elements of a *, your first malloc() should be as follows

a = (struct **)malloc(sizeof(a *) * 100);

The correct code (including error handling) would more or less will look as follows:

if ((a = (struct **)malloc(sizeof(a*) * 100)) == NULL) {
    printf("unable to allocate memory \n");
    return -1;
}

for(i=0; i<100; i++) {
    if ((a[i] = (struct*)malloc(sizeof(a) * 100)) == NULL) {
        printf("unable to allocate memory \n");
        return -1;
    }
    memset(a[i], 0, 100);
}

or as an alternative to malloc() and memset(), you can use calloc()

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Oh ...sry ..thanks –  john Jan 3 '12 at 19:44
    
It will do illegal accesses as soon as it gets to 1. –  R. Martinho Fernandes Jan 3 '12 at 19:44
    
@john If you find my answer any useful, please feel free to upvote! Thanks! –  Sangeeth Saravanaraj Jan 5 '12 at 16:33

You dont need many malloc's, one calloc is enough:

  int i;
  struct A **a = calloc(100,sizeof**a+sizeof*a),*mem=a+100;
  for(i=0;i<100;++i)
  {
    a[i]=&mem[i];
  }
  ...
  free(a);  /* and you only need ONE free */
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