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For writing/reading files, I do some low-level/binary manipulation with tuples and vectors. When I do std::vector<bool> v(8) or std::tuple<bool, bool, bool, bool, bool, bool...>, do I have the guarantee that the boolean are not concatenated ? (and consequently the vector and the tuples weights at least n bytes (where n is the number of booleans).

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What do you mean with “concatenated”? Bit-packed? Anyway, you have no such guarantees for std::vector<bool>. –  Konrad Rudolph Oct 3 '12 at 12:38
    
Yes I mean bit-packed. If they are bit-packed, what would be the result of &v[0] and &v[1] ? They point to the same address ? –  Vincent Oct 3 '12 at 12:42

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It is implementation-defined whether std::vector<bool> is bit-packed. Its interface doesn't provide any way to directly access the bool values, thus trying to access the underlying array directly, you will certainly get burnt at some point.

std::tuple is a generalization of std::pair. Thus std::tuple<bool, bool, bool> is equivalent to struct SomeStruct { bool a, b, c; };, in other words, bool values won't be bit-packed.

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"Vector specialization: vector< bool > The vector class template has a special template specialization for the bool type.

This specialization is provided to optimize for space allocation: In this template specialization, each element occupies only one bit.." quoted from here.

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