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I have tried implementing the sizeof operator.. I have done in this way..

#define my_sizeof(x) ((&x + 1) - &x)

But it always ended up in giving the result as '1' for either of the data type..

I have then googled it for this.. and i found the code typecasted

#define my_size(x) ((char *)(&x + 1) - (char *)&x)

And the code is working if it is typecasted.. I dont understand why.. This code is also PADDING a STRUCTURE perfectly..

It is also working for

#define my_sizeof(x) (unsigned int)(&x + 1) - (unsigned int)(&x)

Can anyone please explain how is it working if typecasted and if not typecasted?

Thanks in advance..

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Casting to unsigned int is a bad idea. uintptr_t is better but still involves an annoying but unavoidable implicit conversion. –  Pascal Cuoq Jan 5 '13 at 11:12
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3 Answers

up vote 16 down vote accepted

The result of pointer subtraction is in elements and not in bytes. Thus the first expression evaluates to 1 by definition.

This aside, you really ought to use parentheses in macros:

#define my_sizeof(x) ((&x + 1) - &x)
#define my_sizeof(x) ((char *)(&x + 1) - (char *)&x)

Otherwise attempting to use my_sizeof() in an expression can lead to errors.

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i have put the parenthesis.. But it also worked if i dint.. :) –  Raghu Srikanth Reddy Jan 5 '13 at 11:08
8  
The macros are hopeless as a means of replacing sizeof. They evaluate the argument (twice too)... Think of my_sizeof(x++). –  Mat Jan 5 '13 at 11:09
    
@Mat: yes.. I got it.. :) –  Raghu Srikanth Reddy Jan 5 '13 at 11:11
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The sizeof operator is part of the C (and C++) language specification, and is implemented inside the compiler (the front-end). There is no way to implement it with other C constructs (unless you use GCC extensions like typeof) because it can accept either types or expressions as operand, without making any side-effect (e.g. sizeof((i>1)?i:(1/i)) won't crash when i==0 but your macro my_sizeof would crash with a division by zero). See also C coding guidelines, and wikipedia.

You should understand C pointer arithmetic. See e.g. this question. Pointer difference is expressed in elements not bytes.

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But it always ended up in giving the result as '1' for either of the data type

Yes, that's how pointer arithmetic works. It works in units of the type being pointed to. So casting to char * works units of char, which is what you want.

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