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please can anybody help me to implement sizeof() operator in c..

i know the usage .. but i was not able to implement it.

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closed as too localized by BЈовић, WhozCraig, Pfitz, Mr. Alien, j0k Nov 14 '12 at 8:40

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What have you tried? Where are you getting stuck? Do you get any errors? Are you writing a compiler? –  Greg Hewgill Nov 30 '10 at 5:55
    
no .. actually am going to implement behaviour of the sizeof operator –  RAVI J V Nov 30 '10 at 5:57
    
for example if sizeof('t') den output is 1 –  RAVI J V Nov 30 '10 at 5:59
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please be more specific. The only context in which "implement sizeof" makes sense is if you were writing a compiler. It cannot be implemented as a library function (otherwise it probably would have been...). –  Evan Teran Nov 30 '10 at 5:59
    
your example doesn't really make sense. Do you want to do something like: printf("%d\n", sizeof('t'));? –  Evan Teran Nov 30 '10 at 6:02
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3 Answers 3

You cannot implement sizeof() as a library function, it is a compiler intrinsic. Are you writing a compiler?

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for example if sizeof('t') den output is 1 –  RAVI J V Nov 30 '10 at 5:59
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@RAVI J V: It is unlikely that the result of sizeof('t') is 1 on your computer because a character constant is of type int in C, not char (yes, int could be one byte in size if a byte has at least 16 bits; it's just unlikely that you have a system where this is the case). –  James McNellis Nov 30 '10 at 6:02
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@Paul: in c character constants have a type of int. in c++ they have a type of char. –  Evan Teran Nov 30 '10 at 6:03
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@Paul: "An integer character constant has type int." (§6.4.4.4) –  Stephen Canon Nov 30 '10 at 6:05
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@Paul: not a cast. An implicit conversion. –  R.. Nov 30 '10 at 6:13
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You can't implement sizeof in C; it's a basic operator (you can't implement + either).

You could write a macro that has a limited subset of sizeof's behavior, by doing something along the lines of:

#define thisIsAHorribleHackDontDoThis(a) \
    ((size_t)((intptr_t)(&a + 1) - (intptr_t)&a))

but that only works if a is an lvalue (and it's horrible to behold). sizeof is not so limited, and that's why you should use it instead of reinventing a wheel that isn't actually round.

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Or #define mysizeof(type) ((size_t)((char *)((type *)0+1) - (char *)0)) –  R.. Nov 30 '10 at 6:18
    
@R: one should mix your two approaches to be "maximum portable". intptr_t is not necessarily defined but (char*)(void*)&a is. On the other hand, if I remember correctly, doing arithmetic on null pointers is UB. –  Jens Gustedt Nov 30 '10 at 8:20
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Below is the implementation of sizeof operator

#define SZOF(x) (size_t)(((x*)(0))+1)
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that only works for some type x; sizeof also works on variable names. Also , this is pretty much the same as R.'s comment to Stephen Canon's answer, above. –  luser droog Aug 19 '11 at 4:54
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