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Am I safe to assume that the offset of a data member (offsetof(mystruct, myfield)) is numerically equal to the raw value of a member pointer retrieved with &mystruct::myfield, or is it implementation dependent?

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No is should not be assumed so. You forget about the overhead(memory) the compiler may insert for managing the memory so allocated for the object. –  DumbCoder Jan 30 '12 at 16:35
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A better question would be: since you know the two forms, why would you not use the pointer to member ? :) –  Matthieu M. Jan 30 '12 at 16:41
    
I'm actually considering to use pointer to members, as my program does some low level tricks with offsetof, and I want to "elevate" them to a more standard form. –  Lorenzo Pistone Jan 30 '12 at 16:51
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From page 7 here: agner.org/optimize/calling_conventions.pdf "Borland compilers add an offset of 1 to data member pointers in order to distinguish a pointer to the first data member from a NULL pointer, represented by 0. The other compilers have no offset, but represent a NULL data member pointer by the value -1." So there's a very specific example of when you can't rely on it, in case you were wondering if this was simply academic. –  BoBTFish Jan 30 '12 at 16:58

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No; the implementation of a pointer-to-member is not specified, and there is no defined conversion to get the "raw" value.

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