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I have defined function, which returns multidimensional array.

allocation for rows

arr = (char **)malloc(size);

allocation for columns (in loop)

arr[i] = (char *)malloc(v);

and returning type is char**

Everything works fine, except freeing the memory. If I call free(arr[i]) and/or free(arr) on array returned by function, it crashes.

EDIT:

allocating function

pole = malloc(zaznamov);  
char ulica[52], t[52], datum[10];  
float dan;  
int i = 0, v;
*max = 0;
while (!is_eof(f))
{
    get_record(t, ulica, &dan, datum, f);
    v = strlen(ulica);
pole[i] = malloc(v);
strcpy(pole[i], ulica);
pole[i][v-1] = '\0';
if (v - 1 > *max)
{
    *max = v;
}
i++;
}
return pole;

part of main where I am calling function

pole = function();

releasing memory

int i;
for (i = 0; i < zaznamov; i++)  
{  
    free(pole[i]);  
    pole[i] = NULL;  
}  
free(pole);  
pole = NULL;
share|improve this question
1  
Don't cast the result of malloc. – Kevin Nov 10 '13 at 21:38
1  
Can you show a full example that fails? In general, every call to malloc should be later followed with exactly one call to free so the code you're describing should work. The bug is presumably in code you haven't yet told us about. – simonc Nov 10 '13 at 21:39
1  
Show a short, self-contained, compilable example! – Oswald Nov 10 '13 at 21:39
    
Most likely it's crashing because you're writing out-of-bounds somewhere in your code, clobbering the metadata that malloc stores. – Kevin Nov 10 '13 at 21:39
1  
Please edit your question above instead of writing so much code in a comment. – pzaenger Nov 10 '13 at 21:46

Few things, you shouldn't cast the result of malloc.

char** alloc_2d_char(int rows, int cols) {
  char *data = malloc(rows*cols*sizeof(char));
  char **array= malloc(rows*sizeof(char*));
  for (int i=0; i<rows; i++)
   array[i] = &(data[cols*i]);
 return array;
}

of course, you need to check for NULL's coming back from malloc

to free:

void free_2d_pixel(char **data){
  free(data[0]);
  free(data);
}
share|improve this answer

Since you don't show the full allocation code, it is hard to know what you're doing wrong. Given what we see, you should have something like:

size_t n = 27;
size_t size = n * sizeof(char *);
char **arr = (char **)malloc(size);
size_t v = 39;

if (arr == 0)
    ...report error and bail out...

for (size_t i = 0; i < n; i++)
{
    if ((arr[i] = (char *)malloc(v)) == 0)
    {
        // Out of memory — release what was already acquired
        for (size_t j = 0; j < i; j++)
             free(arr[i]);
        free(arr);
    }
}

And then for freeing the data:

for (size_t i = 0; i < n; i++)
    free(arr[i]);
free(arr);

You have to keep track on the number of elements in the array (n in my code) somehow. Getting that wrong is problem. So too is doing the freeing in the other order; releasing arr before the elements would be a bad mistake.

As for casting, or not casting, the return value from malloc(), as far as I'm concerned, it is up to you. C++ demands it. C used to require it in the days before standard C. It does no harm as long as you always compile with options such that malloc() must be declared before you call it. C99 demands that in strict conformance mode. Make your compiler demand it. I almost always use stringent compiler options to make sure that happens:

gcc -O3 -g -std=c11 -Wall -Wextra -Wmissing-prototypes -Wstrict-prototypes -Wold-style-definition -Werror ...

If you're sloppy about this, don't cast malloc(). If you're careful, you can cast if it suits you.

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