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I'm using the fixed width integer types std::int8_t and std::uint8_t which are included in C++ since C++11 (header <cstdint>). I use the gcc compiler for c++ programming (Linux, gcc --version 4.8.2).

On my machine the lines

#include <cstdint>
#include <type_traits>

//...

std::cout << std::is_same<std::uint8_t,unsigned char>::value << std::endl;
std::cout << std::is_same<std::int8_t,char>::value << std::endl;

give the output

1
0

In other words: std::uint8_t is implemented as unsigned char but std::int8_t is not implemented as char! I have no (reasonable) idea how it could be that std::int8_t is not implemented as char. Question: How can this result be interpreted?

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4  
Try std::is_same<std::int8_t, signed char>. – Matteo Italia Aug 10 '14 at 15:51
1  
char can be signed on some systems. Try comparing with signed char instead. – 0x499602D2 Aug 10 '14 at 15:52
    
@ Matteo Italia + 0x499602D2: For signed char it gives 1, you are right. Is the difference between char and signed char only formal? – sperber Aug 10 '14 at 15:55
1  
@sperber: Why do you say that? Sounds like you think char is always signed, but that is not true. 1) It can be changed by compiler flags; 2) it's not even necessarily signed by default on all systems. The signedness of char is entirely implementation-defined. – PreferenceBean Aug 10 '14 at 15:57
    
@LightnessRacesinOrbit: Thanks, I didn't know it was implementation defined and indeed believed it was required to be signed. – sperber Aug 10 '14 at 15:58
up vote 6 down vote accepted

Probably they used signed char, which is sensible since compiler options (in gcc -fsigned-char and -funsigned-char) can change the signedness of plain char.

Notice that char, signed char and unsigned char are guaranteed to be distinct types, so it's normal that, even if on your compiler char is signed, it isn't considered the same as signed char.

Is the difference between char and signed char only formal?

No; char can be signed or unsigned depending on compiler and compiler options; signed char is always signed, no matter what.

(now, if you ask me, plain char should always be unsigned, but that's just my opinion)

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"plain char should always be unsigned" What would be the point in that? That's what unsigned char is for... – PreferenceBean Aug 10 '14 at 15:59
    
@LightnessRacesinOrbit: because having a signed char by default (in most compilers) is only an annoyance - both when dealing with text and when dealing with "raw bytes" you never want to see signed values (= negative numbers for bytes >127); unsigned char is annoyingly long to type (especially when you are casting void pointers on the fly) and does not allow constructor-style casts. Also, in the rare cases when you actually want signed char you have to ask for it explicitly anyway. I don't know, the whole implementation-defined signedness seems to me gratuitous stupidity. – Matteo Italia Aug 10 '14 at 16:06
    
Considering that char is a number just like int is, sign should be given with the same rule as int: what about int signed int unsigned int? The sam shold be for char, signed char and unsigned char. But there are inconsistencies... – Emilio Garavaglia Aug 10 '14 at 16:09
    
@EmilioGaravaglia: IMO for practical usage unsigned char is needed way more often than signed char, but OK, that too would be better than the current state of affairs, at least in the rare occasions when you need a signed char you wouldn't have to specify signed explicitly. – Matteo Italia Aug 10 '14 at 16:10
    
@LightnessRacesinOrbit: yes, that was exactly my point: make evident a spec. inconsistency. – Emilio Garavaglia Aug 10 '14 at 16:14

The type char is not required to be signed, even though on many systems it is.
Even when that is the case, it is distinct from the type signed char.

It is likely that int8_t is an alias for signed char.

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