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I want to define a byte type in my C++ program, basically an unsigned char what is the most idiomatic way to go about doing this?

I want to define a byte type to abstract away the different representations and make it possible to create typesafe arrays of this new byte ( 8 bit ) type that is backed by an unsigned char for a bit manipulation library I am working on for a very specific use case of a program I am creating. I want it to be very explicit that this is an 8 bit byte specific to the domain of my program and that is is not subject to the varying implementations based on platform or compiler.

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4 Answers 4

char, unsigned char, or signed char are all one byte; std::uint8_t (from <cstdint>) is an 8-bit byte (a signed variant exists too). This last one only exists on systems that do have 8-bit bytes. There is also std::uint_least8_t (from the same header), which has at least 8 bits and std::uint_fast8_t, which has at least 8 bits and is supposed to be the most efficient one.

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Surely char can be more than 8 bits wide according to the standard –  David Heffernan Nov 9 '12 at 16:26
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@Jarrod to abstract what away? If you want an 8bit byte, that is already abstracted away: std::uint8_t. There is no point in abstracting your abstractions. –  R. Martinho Fernandes Nov 9 '12 at 16:28
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@juanchopanza Well, my impression is that Jarrod takes "byte" to mean an 8 bit type. –  David Heffernan Nov 9 '12 at 16:31
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@Jarrod - On platforms without a uint8_t you probably cannot get any 8-bit datatype anyway. And you will have lots of other problems that cannot be abstracted away. –  Bo Persson Nov 9 '12 at 16:35
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@Jarrod then I have no idea what the question is. "I want it to be very explicit that this is an 8 bit byte specific to the domain of my program." There's very little that can be more explicit about this than std::uint8_t. Maybe something like typedef std::uint8_t this_is_an_8_bit_byte_specific_to_the_domain_of_my_program; is more explicit, but I see no point in doing it. –  R. Martinho Fernandes Nov 9 '12 at 16:38

The most idiomatic way is to just use signed char or unsigned char. You can use typedef if you want to call it byte or if you need it to be strongly typed you could use BOOST_STRONG_TYPEDEF.

If you need it to be exactly 8 bits, you can use uint8_t from <cstdint> but it is not guaranteed to exist on all platforms.

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unint8_t will exist on the platforms I am specifically concerned about. –  Jarrod Roberson Nov 9 '12 at 16:42
    
Then go ahead and use it. It will most likely be a typedef for unsigned char so if you want type-safety you have to use something like BOOST_STRONG_TYPEDEF. –  Dirk Holsopple Nov 9 '12 at 17:08

To be honest, this is one of the most irritating "features" in C++ for me.

Yes, you can use std::uint8_t or unsigned char, which on most systems the former will be the typedef of the latter.

But... This is not type safe, as typedef will not create a new type. And commitee refused to add a "strong typedef" to the standard.

consider

void foo (std::uint8_t);
void foo (unsigned char); // ups...
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I don't see the problem here. If you want to force an 8 bit byte, then use uint8_t. If you want to use a byte, whatever size that happens to be, use char. –  David Heffernan Nov 9 '12 at 16:44
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@DavidHeffernan, I want to use both and with different symantics. char is not int8, they are different types (not in c++ though). –  user1773602 Nov 9 '12 at 16:46
    
Yes I understand what you mean. –  David Heffernan Nov 9 '12 at 16:47

I am currently using the uint8_t approach. The way I see it is, if a platform does not have an 8 bit type (in which case my code will not function on that platform), then I don't want it to be running anyways, because I would end up with unexpected behaviour due to the fact that I am processing data with the assumption that it is 8 bits, when in fact it is not. So I don't see why you should use unsigned char, assume it is 8 bits, and then perform all your calculations based on that assumption. It's just asking for trouble in my opinion.

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