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I have a struct like

struct T {
    int first, int second
} Tstruct;

now i want to define somewhere

pointer = struct.base + sizeof(Tstruct.second);

but i get error telling me put ")" befor "." , what is my mistake here? Sizeof(Tstruct) is working... Thanks.

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Post your code! – hari Nov 3 '11 at 20:25

sizeof ( TStruct.second ) is perfectly valid.

struct.base isn't because struct is a reserved keyword in C and should point to the member name of the structure.

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From what I see in your question you might want the offsetof macro that is guaranteed to exist.

char* pointer = (void*)&Tstruct;
pointer += offsetof(struct T, second);

It also has the advantage to take care of possible padding between the fields.

If you really want to do what you say in your question, if you have C99 you can use a compound literal:

pointer += sizeof ((const struct T){ 0 }).second;

here ((const struct T){ 0 }) is a temporary of the struct type, but who's creation will be optimized out by any C99 conforming compiler without problems.

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You can't do that, but you can use sizeof(int) or even sizeof(struct.second) (assuming struct is an instance of struct T with an illegal name).

sizeof operates on both types and expressions. sizeof(Tstruct.second) is neither a type nor a valid expression. However, given a valid instance of Tstruct the following is an expression whose type is the type of Tstruct::second:

Tstruct properly_named_struct;
sizeof(properly_named_struct.second);
share|improve this answer
    
are you sure struct.second ? how will it work if multiple structs present ? – Pheonix Nov 3 '11 at 20:28
    
@Pheonix: The OP is using struct as an instance of type TStruct. sizeof can work on both types an expressions, and struct_instance.member is an expression whose type is the type of member. So other than the illegal naming in his example code, yes it will work. – K-ballo Nov 3 '11 at 20:30
    
I found this, its perfectly working #define member_size(type, member) sizeof(((type *)0)->member) ,but thx for help. – Starfighter911 Nov 3 '11 at 20:37
    
struct is a reserved keyword, so it can not be used as instanciation name. – Patrick Schlüter Nov 4 '11 at 7:16
    
@tristopia: Yes, yet the OP bogus sample code does. This is mentioned both in my answer and my comments, thank you for mentioning a third time for those in the back. – K-ballo Nov 4 '11 at 7:23

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