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While implementing my own sizeof operator, I came across one example which is stated below.

#define my_sizeof(type) (char *)(&type+1)-(char*)(&type)
int main()
{
    double x;
    printf("%d", my_sizeof(x));
    getchar();
    return 0;
}

I am not sure about why they used (char *) in the #define and not any other type cast. I need to know exact significance of the stated syntax. Can someone help me in understanding this one..?

Thanks in advance.

share|improve this question
    
I want to understand what is stated in #define.. %lu is unsigned long.. but thn why it is casted to (char *)..? What is significance..?? – Hiren Pandya Apr 4 '13 at 5:05
1  
Well, first off, the argument is poorly named. it should be var since that it the only thing you can pass into this macro. Secondly, it is using typed-pointer arithmetic to advance a constant memory address (&type) one object past its current address (which is undefined behavior for anything but arrays, by the way). It then casts the result address to char pointer (which this code assumes is a single octet) and subtracts a char-pointer cast of the original address. in the end this is computing the "size" of the object in memory in sizeof(char) elements, using undefined behavior to do it. – WhozCraig Apr 4 '13 at 5:10
    
And back to the hint. Ask yourself, what is the size of a char ? Thus the statement, perhaps printf("%lu\n", sizeof(char)); may offer some insight as to why this uses char* for casting, but you won't understand that until you also understand how typed-pointer arithmetic works (which is the important part of the +1 in your macro). If you don't understand that, I'll be more than happy to explain it. It is pretty important to how pointers work in C. – WhozCraig Apr 4 '13 at 5:15
    
printf("%lu\n", sizeof(char)); This give me output as "1".. That i know very well. But I am still much confused about usage of (char).. What is the significance.. Just a simple question. Do you know what exactly is happening in the compiler side..?? – Hiren Pandya Apr 4 '13 at 5:19
2  
@WhozCraig: "which is undefined behavior for anything but arrays" -- A single object behaves like an array with one element, as far as pointer arithmetic is concerned. See 6.5.6 (7) in the standard. – Secure Apr 4 '13 at 5:41
up vote 7 down vote accepted

to understand it you need to know that when you write

double d[2];
double *p = d;
p = p + 1;      p is now pointing to the next double i.e. &d[1] 

in memory p has moved sizeof(double) bytes forward

if you treat p as a character pointer you can get the number of bytes that the offset has changed instead:

double d[2];
double *p = d;
char* start = (char*)p; 
p = p + 1;
char* end = (char*)p;

now end-start gives the offset in bytes (characters) IOW sizeof(double).

share|improve this answer
    
+1 Solid example of typed-pointer arithmetic. It is more precisely, indeed sizeof(double) as measured in char-size, which is almost always 1 octet. Also note that (p - d) will yield 1 in the first example (the same arithmetic that advanced p will also return that advancement, which is why the second example uses casts to char* to force a typed-pointer to be a type that is a single octet wide. Good example. – WhozCraig Apr 4 '13 at 5:20
    
Thnx to all.. this helped me a lot.. but what is the significance of this syntax thn.. -> #define MYSIZEOF(X) ((X*)0 +1).. It does the same thing ?? – Hiren Pandya Apr 4 '13 at 5:24
    
+1 Crystal clear – Abhineet Apr 4 '13 at 5:25
    
@HirenPandya very similar, but that takes a different road into Ub land. It uses the "value" of the address offset from 0 (assumed to be NULL) advanced by 1 type-of-X-bytes-wide distance. The resulting "pointer" would then be the size of the type (in theory). Ex: ((int *)0+1) If int is 4 bytes wide, this results of the expression being a pointer with the "address" of 0x00000004. However, this is totally undefined behavior, and would likely fall flat on its face in a system that uses a segment:offset pointer architecture. in the end, just use the built-in sizeof(). Hope that helps. – WhozCraig Apr 4 '13 at 5:29

In C, sizeof char is (by definition) 1. They cast to char * to be able to subtract pointers to get the size of the object pointed at.

This will mostly work, but AFAIU willy-nilly "pointing to the next object" if it isn't in an array is not always guaranteed to work right. Besides, the size of an object with the requited padding in an array isn't necessarilily the size of the object.

Bletcherous. Just use sizeof. `

share|improve this answer
    
As you have stated... "but AFAIU willy-nilly "pointing to the next object" if it isn't in an array is not always guaranteed to work right.".. Can you please provide me some example for the same ? – Hiren Pandya Apr 5 '13 at 4:54

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