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I'm working with the ZeroMQ library which uses void * to represent blocks of arbitrary binary data. However I'd like to use std::vector to copy and move these blocks around. What is the preferred, idiomatic way to make a std::vector representing raw bytes? I'm currently using a std::vector<unsigned char> but I want to make sure my code makes sense to other people.

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unsigned char is OK. If you want to emphasize the octet part, you can also use uint8_t. – eq- Sep 12 '12 at 16:35
    
I would typedef uint8_t byte;, or maybe even make a class that you can't really do anything with. (no adding bytes togeather) – Mooing Duck Sep 12 '12 at 16:37
    
Does ZeroMQ itself specify anywhere whether it reads the data "as a char" or "as an unsigned char"? If not then unsigned char should be fine. If it specifies char then you might want to use that just to emphasise that you're supplying what the library expects. It shouldn't make any difference anyway. – Steve Jessop Sep 12 '12 at 16:38
    
ZeroMQ is a message passing library so it never does anything with the data besides copying and sending on the wire. So I think it doesn't matter... – japreiss Sep 12 '12 at 17:17
up vote 8 down vote accepted

Either

std::vector<unsigned char>

or

#include <cstdint>

std::vector<std::uint8_t>

both seem fine to me.

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2  
uint8_t won't exist on a system that doesn't have 8-bit bytes. uint_least8_t might be a better choice, but unsigned char is the best choice. – Pete Becker Sep 12 '12 at 16:41
    
This solution seems to be widely used for storing raw data. For me it is unclear why to use "uint8_t" and not "int8_t" - does anybody know the advantage? Java does only has signed data types, so why to use unsigned int in c++? – koch.trier Feb 13 '14 at 8:56

If you don't know the nature of your data, unsigned char is the smallest chunk of bits that you can represent without getting messy. Therefore it is a common type for any kind of arbitrary memory block.

So your vector looks perfectly fine the way it is.

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