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Allocate memory for 2D array with minimum number of malloc calls

As far my knowledge of concern in C void pointer is automatically converted into appropriated data type. Below is the program in which I found the warning:

initialization from incompatible pointer type [enabled by default]

#define ROW 3
#define COL 2

int main()
{

        void **ptr = malloc( ROW*COL* sizeof(int) );

        int (*p)[COL] = ptr;

        int i, j;

        for( i = 0; i < ROW; ++i )
                for( j = 0; j < COL; ++j )
                        scanf("%d", &p[i][j]);

        for( i = 0; i < ROW; ++i )
        {
                for( j = 0; j < COL; ++j )
                        printf("%d ", p[i][j]);
                printf("\n");
        }
        free(ptr);
        return 0;
}

but it worked perfectly. If void** pointer is type casted into a "pointer to a COL size integer array" then it's behavior should change and behave like 2D array?

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marked as duplicate by undur_gongor, kiamlaluno, AProgrammer, tereško, netcoder Aug 27 '12 at 16:17

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

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pointers to pointers and 2-dimensional arrays are completely different beasts. They are not compatible. And so void** is something completely different from what you want. You want an untyped data pointer, so use void* and not void**. –  Jens Gustedt Aug 27 '12 at 5:57
    
And as used here, the use of the variable ptr is superfluous. Just initialize p with malloc and use free(p) at the end. –  Jens Gustedt Aug 27 '12 at 6:01

2 Answers 2

up vote 2 down vote accepted

Firstly, void ** pointer is not a void * pointer. void ** and void * are two completely different types. Whatever conversion properties apply to void * don't apply to your ptr. Your initialization is indeed invalid, as compiler told you in the warning message.

Secondly, there's absolutely no need for a void ** pointer in your program. Where did it come form anyway? If you wanted to have an "intermediate" pointer ptr in your program, you should have declared it with void * type

void *ptr = malloc(ROW * COL * sizeof(int));
int (*p)[COL] = ptr;

and the warning would disappear. However, as I said in my previous answer, there's no real need for any intermediate pointer in this case. You can just do

int (*p)[COL] = malloc(ROW * sizeof *p);
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As far my knowledge of concern int (*p)[COL] means "pointer to a COL size integer array" and void *ptr is a pointer . Is it relevant to equate it? –  karthik Aug 27 '12 at 6:14
    
@aakasha: Well, as you correctly said yourself at the beginning of your question, a void * pointer can be implicitly converted to any other data pointer type. –  AnT Aug 27 '12 at 6:43

You can assign a pointer to void pointer to any pointer. However, you assign a pointer to void pointer: that is something different.

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