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I have an array 'y' with x no. of elements inside it (the number 'x' is given by user), I need to create an array of structures which has elements of exactly the same type as that in array 'y' i.e the array of structures would have 'x' elements.

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1  
Nice. What's the problem you're having? –  AusCBloke Apr 16 '12 at 12:40
    
If you have an array, you must have a length to safely work with it. Why can't you allocate an array of structures of the same length? –  Z.T. Apr 16 '12 at 12:48
    
What have you tried? –  Aaron Dufour Apr 16 '12 at 15:21

3 Answers 3

up vote 0 down vote accepted

If I understand you right, you have an "array" of some type, and the number of elements is decided by the user. I'm guessing you allocate it using malloc like this:

type_of_y *y = malloc(x * sizeof(type_of_y));

And now you want to create a similar "array" from a structure, with the same number of elements. Why can't you do it just like you do for y? I.e:

struct my_structure *new_array = malloc(x * sizeof(struct my_structure));
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You probably need a structure such as this. The type of the array is shown as ArrayType; you could write int or double or whatever else is appropriate for you.

typedef struct array
{
    size_t     num_elements;  // stores the 'x' value
    ArrayType *arr_elements;
} array;

You can then allocate an array of that type:

array *list = calloc(sizeof(array), number);
for (int i = 0; i < number; i++)
{
    list[i].arr_elements = malloc(sizeof(*list[i].arr_elements) * array_size);
    list[i].num_elements = array_size;
}

You should error check the memory allocations:

if (list == 0)
   ...error...

   if (list[i].arr_elements == 0)
   {
       ...release already allocated space...
       ...error...
   }

Note that each array in the list of arrays (probably not the best choice of name) could have a different number of elements in it; the num_elements tells you how big that specific array is.

Note that the C99 flexible array member is not really a help here. You cannot have an array of a structure containing a flexible array member, though you could have an array of pointers to them.

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Using calloc() when you set the two parts of the struct right after is not optimised :) –  Eregrith Apr 16 '12 at 13:20
/* new array */
MYSTRUCT *abc = (MYSTRUCT *)calloc(x, sizeof(MYSTRUCT));
/* copy contents of 'y' into new array */
for (int i = 0; i < x; i++)
    abc[i] = y[i];
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