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Consider the following two structs:

struct A
{
    // A bunch of standard layout data
};

struct B:public A
{
    // Other data
};

And an object

B foo;

Supposing sizeof(A) does not differ between the compilers, the packing is the same and B does not add any virtual methods, will foo have the A members at the same address relative to &foo when compiling using gcc or msvc for the Windows x86 or x86-64 platform?

EDIT: I relized that the best way to implement inheritance is to place A before B. Otherwise, upcast would require offseting the this pointer by sizeof(B) which is silly. At least GCC puts the content of B after the content of A.

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no, even when using the same exe on the same computer, the bits can move. en.wikipedia.org/wiki/Address_space_layout_randomization. – Mooing Duck Jan 3 '13 at 7:38
    
Please edit the question to clarify if foo is in global scope, and why you think they will/wont have the same address. – Mooing Duck Jan 3 '13 at 7:41
1  
OP doesn't ask, if foo will be in the same place in executable file, but if contents of B will be ordered the same way on different platforms. The order will be kept, but platform may influence padding (see #pragma pack) – Spook Jan 3 '13 at 7:42
    
@user - This sounds like an XY problem. You try to solve X by doing Y, and now you ask us if Y is going to work. Please tell us a bit about X as well. What are you going to use this for? – Bo Persson Jan 3 '13 at 8:53
    
@BoPerrson Virtual calls accross dll boundaries. A will contain a manually constructed vtable where each entry points to a normal c function whose first argument is this. A will also contain non-virtual wrapper methods that uses the corresponding entry in the vtable. – user877329 Jan 3 '13 at 8:59

The x86_64 architecture is a problem, GCC and MSVC chose different memory models. GCC is LP64, MSVC is LLP64. In other words, the long type is 64-bits in GCC, 32-bits in MSVC.

"Same address" is pretty ambiguous in the question, but clearly you'll have a problem if A and B are not compiled by the same compiler. In which case possibly different packing will be an issue as well. Interpolating from that same ambiguity, if B contains any virtual members and A does not then the layout of A and B are not compatible. B will have the v-table pointer inserted.

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2  
Considering it's a DLL, it would be reasonable to use only SDK types. DWORD is 4 bytes on any compiler targeting Windows, even for Windows on ARM. And given that the Win32 SDK relies on structure layouts, Win32 compilers do not have freedom to choose arbitrary packings. – MSalters Jan 3 '13 at 9:13
    
@MSalters What about the order when inheriting. Can I be sure that members of A comes first or last? – user877329 Jan 3 '13 at 9:52
    
@user877329: The SDK uses inheritance when compiling C++, but only for COM interfaces and those have no data members. You therefore can't deduce inheritance layout from that. – MSalters Jan 3 '13 at 10:03
    
@MSalters: Remember the vtable pointer! Or how does COM work. Other black magic? – user877329 Jan 3 '13 at 10:08
    
@user877329: That too; COM always assumes a vtable ptr and your struct A doesn't have one. Therefore any conclusions drawn from COM layouts doesn't apply to A. – MSalters Jan 3 '13 at 10:11

Hans has explained everything correctly. The general answer is NO. This will not work out of the box for any class/compiler, etc.

Nevertheless. C++ has features like #pragma pack, alignment record in the class, etc. All these stuffs are for generating required or predefined memory layout. If you will carefully use them (maybe with some #ifdefs also), you will have compatibility that you want. This was used in tons of projects and it worked.

But still you will have to carefully check layouts for every compiler that you use.

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