68

If exists is there header file to include?

This code give compilation error:

#include <iostream>

using namespace std;

int main()
{
    byte b = 2;

    cout << b << endl;

    return 0;
}
  • 11
    It's called char. – Avidan Borisov Nov 16 '13 at 22:25
  • 11
    @Ben char is necessarily one byte. It's just that a byte isn't necessarily 8 bits. – Avidan Borisov Nov 16 '13 at 22:30
  • 3
    @Ben: You're apparently not familiar with the more exotic platforms in existence. A byte is certainly not defined to be 8 bits, regardless of the fact that 8 bit bytes are predominant. That's why we have CHAR_BIT. I have worked on more than one embedded system where bytes are not 8 bits in length. A char is defined to have a size of 1, so yes, a char is always a byte. – Ed S. Nov 16 '13 at 22:35
  • 8
    @Ben: The C and C++ standards unambiguously define a "byte" as the size of a char, which is at least 8 bits. The term "byte" may be defined differently in other contexts, but when discussing C or C++ it's better to stick to the standard's definition. – Keith Thompson Nov 17 '13 at 1:03
  • 2
    OP, I'd reconsider your accepted answer. Really. Also, If a char is guaranteed to have size 1, why note write using byte = unsigned char and be done with it (like rmp's answer suggests)? – einpoklum Dec 21 '15 at 10:56
27

No there is no byte data type in C++. However you could always include the bitset header from the standard library and create a typedef for byte:

typedef bitset<8> BYTE;

NB: Given that WinDef.h defines BYTE for windows code, you may want to use something other than BYTE if your intending to target Windows.

Edit: In response to the suggestion that the answer is wrong. The answer is not wrong. The question was "Is there a 'byte' data type in C++?". The answer was and is: "No there is no byte data type in C++" as answered.

With regards to the suggested possible alternative for which it was asked why is the suggested alternative better?

According to my copy of the C++ standard, at the time:

"Objects declared as characters (char) shall be large enough to store any member of the implementations basic character set": 3.9.1.1

I read that to suggest that if a compiler implementation requires 16 bits to store a member of the basic character set then the size of a char would be 16 bits. That today's compilers tend to use 8 bits for a char is one thing, but as far as I can tell there is certainly no guarantee that it will be 8 bits.

On the other hand, "the class template bitset<N> describes an object that can store a sequence consisting of a fixed number of bits, N." : 20.5.1. In otherwords by specifying 8 as the template parameter I end up with an object that can store a sequence consisting of 8 bits.

Whether or not the alternative is better to char, in the context of the program being written, therefore depends, as far as I understand, although I may be wrong, upon your compiler and your requirements at the time. It was therefore upto the individual writing the code, as far as I'm concerned, to do determine whether the suggested alternative was appropriate for their requirements/wants/needs.

  • 54
    How is bitset<8> better than unsigned char? – Keith Thompson Nov 17 '13 at 3:15
  • 7
    Its not. use unsigned char – YasserAsmi Feb 24 '17 at 6:27
  • The answer is wrong, and all the other ones are wrong, except jwodder which is the only correct answer. byte is BIT_CHAR bits, not 8 bits. – Mark Galeck Apr 28 '17 at 19:07
  • 11
    You might want to update this answer as there is now a std::byte – NathanOliver Mar 27 '18 at 13:28
76

No, there is no type called "byte" in C++. What you want instead is unsigned char (or, if you need exactly 8 bits, uint8_t from <cstdint>, since C++11). Note that char is not necessarily an accurate alternative, as it means signed char on some compilers and unsigned char on others.

  • 8
    Not quite. char, signed char, and unsigned char are three distinct types. char has the same representation as one of the other two. – Keith Thompson Nov 17 '13 at 1:05
  • 2
    If unsigned char is bigger than 8 bits, then uint8_t will not be defined. – Keith Thompson Nov 17 '13 at 1:06
  • 1
    if you're in objective-c, you may need to include <stdint.h> instead of <cstdint>. – orion elenzil Mar 7 '17 at 0:43
  • 1
    @orionelenzil The question was about C++, not objective C. – Pharap Aug 2 '17 at 10:23
  • 1
    @pharap - one writing C or C++ in an Objective-C context may find my comment useful. – orion elenzil Aug 2 '17 at 17:15
27

Yes, there is std::byte (defined in <cstddef>).

C++ 17 introduced it.

  • 1
    std::byte cannot have arithmetic performed on it, which might be a deal breaker. – Pharap Aug 2 '17 at 10:22
  • 1
    @Pharap, it depends - not being able to accidentally do arithmetic may be seen as advantage for some use cases. Since std::byte is just an addition one can choose the right tool for the job (i.e. either std::byte, char, unsigned char or uint_8). – maxschlepzig Aug 2 '17 at 19:53
22

if you are using windows, in WinDef.h you have:

typedef unsigned char BYTE;
20

Using C++11 there is a nice version for a manually defined byte type:

enum class byte : std::uint8_t {};

That's at least what the GSL does.

Starting with C++17 (almost) this very version is defined in the standard as std::byte (thanks Neil Macintosh for both).

  • 3
    Why is this enum better, in your opinion, than typedef unsigned char byte; or typedef std::uint8_t byte; ? – einpoklum Apr 27 '17 at 14:53
  • 2
    @einpoklum, it increases type safety. For example, you get a compile error when you accidentally multiply such a byte value. Although it doesn't help with aliasing. When you want properly alias some bytes you need char*, unsigned char* or std::byte*. – maxschlepzig Jun 15 '17 at 21:29
  • Except std::byte cannot have arithmetic performed on it, which might be a deal breaker. – Pharap Aug 2 '17 at 10:21
2

No, but since C++11 there is [u]int8_t.

0

There's also byte_lite, compatible with C++98, C++11 and later.

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