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Given a pointer to structure, can I write a #define that would access a member of the structure?

struct s_block {
 size_t size;
 struct s_block *ptr;
};

#define SIZER(ptr) // will access size member ???? 
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Yes, but why would you want to do so? Or do you mean: given a pointer to the ptr member of the structure, is there a way to write a macro to access the corresponding size member? –  Jonathan Leffler Dec 12 '10 at 3:54
    
No, I actually want macro that would give me result based on ptr to structure, not member of structure. But, I already got the answer. Thanks for clarification . –  newprint Dec 12 '10 at 4:14
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2 Answers

up vote 3 down vote accepted
#define SIZER(ptr) (ptr)->size

Do note though that you must pass in a pointer to an s_block for this to work.

Finally, this should be in any reference manual covering the C programming language. I suggest you pick one up. K&R is very good, even today.

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I just wanted to note that #define SIZER(p) (p)->size is equivalent. I want to make sure there is no confusion with similar names. –  caveman Dec 12 '10 at 3:39
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#define SIZER(ptr) (ptr)->size
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