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template<class T, typename U> ptrdiff_t foo(T U::* m)
{
    // return offset
}

How I can get the offset of the field 'm' in this context? I would prefer to use am compile-time expression.

Thanks in advance for any help. Best regards

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This is probably a bad idea. Why not use a pointer-to-member type instead? –  GManNickG Apr 11 '11 at 6:40
    
Hum, what exactly do you mean? The parameter above IS a pointer-to-member ... –  0xbadf00d Apr 12 '11 at 6:32
    
Right, and leave it at that. Offsets are simply too primitive to be used for most C++ classes (non-POD's). –  GManNickG Apr 12 '11 at 6:47
    
Okay, but you had written 'why not use a pointer-to-member type INSTEAD? How do you mean that? Btw.: I could write a compiler specific version of my member_offset function. –  0xbadf00d Apr 12 '11 at 14:06
    
It's impossible for me to suggest what you should use a pointer-to-member for instead, because you've only asked the step and not the goal. What are you trying to accomplish? –  GManNickG Apr 12 '11 at 17:08
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3 Answers

up vote 3 down vote accepted

Sounds like you're looking for the offsetof() macro.

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It is not legal to call offsetof with a member pointer, only a member name. (in many implementations it may work, but given how obscure this kind of thing is, it could break in any compiler updates) –  Yakk Mar 9 at 17:00
    
Hi @Yakk. I'm not quite sure what you mean. If you click on the word "offsetof" (above) it takes you to the docs for the macro. It looks kosher to me. By a "member pointer" to you mean a member of a struct that is a pointer? e.g. struct s { int i; char *p; }; size_t n = offsetof(struct s, p); –  Michael J Mar 9 at 18:10
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@Michael J

Thanks for your answer. This wasn't exactly what I was looking for, but it gives me the inspiration to doing that:

template<class T, typename U>
std::ptrdiff_t member_offset(U T::* member)
{
    return reinterpret_cast<std::ptrdiff_t>(
        &(reinterpret_cast<T const volatile*>(NULL)->*member)
    );
}
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2  
You are dereferensing a null pointer here. That is not allowed, unless you are implementing the library an get a special dispensation for use in the offsetof macro. Someone beat me to the -1. –  Bo Persson Apr 11 '11 at 7:16
    
That's what the offsetof macro does: (size_t)&reinterpret_cast<const volatile char&>((((s *)0)->m)). What's the difference? –  0xbadf00d Apr 11 '11 at 9:26
2  
The difference is that offsetof does that for a particual compiler, and only beacuse the library designer has made a special deal with the compiler writer. Then it might work. On other compilers offsetof uses as special __builtin_offsetof function instead. Or some other trick. The main reason for having an offsetof in the library is that you cannot write it portably, you need special support from the compiler. –  Bo Persson Apr 11 '11 at 11:16
    
Like I said in a comment above, offsetof and kin are bad ideas in C++. Use pointer-to-members. –  GManNickG Apr 11 '11 at 16:09
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The simple answer is that you can't. If the type U is a POD, you can use the macro offsetof, but formally, it's undefined behavior if the type isn't a POD: depending on the compiler, you'll get a compile time error, or simply wrong results some of the time. And you can't use it on a pointer to member. You have to invoke it with the name of the class, and the name of the member.

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