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Below is the program to find the size of a structure without using sizeof operator:

struct MyStruct
{
  int i;
  int j;
};

int main()
{
   struct MyStruct *p=0;
   int size = ((char*)(p+1))-((char*)p);
   printf("\nSIZE : [%d]\nSIZE : [%d]\n", size);
   return 0;
}

Why is typecasting to char * required?

If I don't use the char* pointer, the output is 1 - why?

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Reminder: Size of a structure may not equal the sum of the size of its members (fields). Compilers are allowed to insert padding bytes between members in a structure. One example is to align variables at address that are efficient for a processor to fetch. –  Thomas Matthews Apr 9 '10 at 17:22

4 Answers 4

Because pointer arithmetic works in units of the type pointed to. For example:

int* p_num = malloc(10 * sizeof(int)); 
int* p_num2 = p_num + 5;

Here, p_num2 does not point five bytes beyond p_num, it points five integers beyond p_num. If on your machine an integer is four bytes wide, the address stored in p_num2 will be twenty bytes beyond that stored in p_num. The reason for this is mainly so that pointers can be indexed like arrays. p_num[5] is exactly equivalent to *(p_num + 5), so it wouldn't make sense for pointer arithmetic to always work in bytes, otherwise p_num[5] would give you some data that started in the middle of the second integer, rather than giving you the sixth integer as you would expect.

In order to move a specific number of bytes beyond a pointer, you need to cast the pointer to point to a type that is guaranteed to be exactly 1 byte wide (a char).

Also, you have an error here:

printf("\nSIZE : [%d]\nSIZE : [%d]\n", size);

You have two format specifiers but only one argument after the format string.

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If I don't use the char* pointer, the output is 1 - WHY?
Because operator- obeys the same pointer arithmetic rules that operator+ does. You incremented the sizeof(MyStruct) when you added one to the pointer, but without the cast you are dividing the byte difference by sizeof(MyStruct) in the operator- for pointers.

Why not use the built in sizeof() operator?

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1  
And if you do use sizeof be sure to use it on the pointed-to object, not the pointer itself. sizeof(p) will give you the size of a pointer, where as sizeof(*p) will give you the size of a MyStruct. –  Tyler McHenry Apr 9 '10 at 14:52

Because you want the size of your struct in bytes. And pointer arithmetics implicitly uses type sizes.

int* p;
p + 5; // this is implicitly p + 5 * sizeof(int)

By casting to char* you circumvent this behavior.

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1  
Well, sizeof return the size in units of whatever a char is stored in (i.e. sizeof(char) is always 1). That's bytes in typical implementations, but is not required to be so... –  dmckee Apr 9 '10 at 14:53
    
That is true, but whenever you ask for a byte type you get the answer unsigned char :) –  Nikola Smiljanić Apr 9 '10 at 14:56

Pointer arithmetic is defined in terms of the size of the type of the pointer. This is what allows (for example) the equivalence between pointer arithmetic and array subscripting -- *(ptr+n) is equivalent to ptr[n]. When you subtract two pointers, you get the difference as the number of items they're pointing at. The cast to pointer to char means that it tells you the number of chars between those addresses. Since C makes char and byte essentially equivalent (i.e. a byte is the storage necessary for one char) that's also the number of bytes occupied by the first item.

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