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Every now and then, someone on SO points out that char (aka 'byte') isn't necessarily 8 bits.

It seems that 8-bit char is almost universal. I would have thought that for mainstream platforms, it is necessary to have an 8-bit char to ensure its viability in the marketplace.

Both now and historically, what platforms use a char that is not 8 bits, and why would they differ from the "normal" 8 bits?

When writing code, and thinking about cross-platform support (e.g. for general-use libraries), what sort of consideration is it worth giving to platforms with non-8-bit char?

In the past I've come across some Analog Devices DSPs for which char is 16 bits. DSPs are a bit of a niche architecture I suppose. (Then again, at the time hand-coded assembler easily beat what the available C compilers could do, so I didn't really get much experience with C on that platform.)

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The CDC Cyber series had a 6/12 bit encoding. The most popular characters were 6 bits. The remaining characters used 12 bits. –  Thomas Matthews Jan 20 '10 at 0:07
    
I'm sure there are some platforms that have non 8-bit chars but in 15 years coding including working with custom hardware through to games consoles, I've never encountered one yet. Still time though.... –  zebrabox Jan 20 '10 at 0:09
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The PDP-11 nailed it down. The notion that a character can be encoded in a char is seriously obsolete. –  Hans Passant Jan 20 '10 at 1:38
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"The PDP-11 nailed it down" -- You mean because C was first implemented for the PDP-11 with 8 bit bytes? But C was next implemented for Honeywell machines with 9 bit bytes. See K&R version 1. Also, the question asked about char (i.e. byte) not about character (one or more bytes encoding something that wasn't asked about). –  Windows programmer Jan 20 '10 at 3:40
    
DEC-10 and DEC-20 had 36-bit words. Five 7-bit ASCII characters per word was quite common. Also six 6-bit characters were used. –  David R Tribble Jan 20 '10 at 17:12

12 Answers 12

up vote 25 down vote accepted

char is also 16 bit on the Texas Instruments C54x DSPs, which turned up for example in OMAP2. There are other DSPs out there with 16 and 32 bit char. I think I even heard about a 24-bit DSP, but I can't remember what, so maybe I imagined it.

Another consideration is that POSIX mandates CHAR_BIT == 8. So if you're using POSIX you can assume it. If someone later needs to port your code to a near-implementation of POSIX, that just so happens to have the functions you use but a different size char, that's their bad luck.

In general, though, I think it's almost always easier to work around the issue than to think about it. Just type CHAR_BIT. If you want an exact 8 bit type, use int8_t. Your code will noisily fail to compile on implementations which don't provide one, instead of silently using a size you didn't expect. At the very least, if I hit a case where I had a good reason to assume it, then I'd assert it.

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TI C62xx and C64xx DSPs also have 16-bit chars. (uint8_t isn't defined on that platform.) –  msemack Jan 20 '10 at 2:35
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Many DSPs for audio processing are 24-bit machines; the BelaSigna DSPs from On Semi (after they bought AMI Semi); the DSP56K/Symphony Audio DSPs from Freescale (after they were spun off from Motorola). –  David Cary Jul 6 '12 at 13:52

Machines with 36-bit architectures have 9-bit bytes. According to Wikipedia, machines with 36-bit architectures include:

  • Digital Equipment Corporation PDP-6/10
  • IBM 701/704/709/7090/7094
  • UNIVAC 1103/1103A/1105/1100/2200,
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Also Honeywell machines, such as maybe the second machine where C was implemented. See K&R version 1. –  Windows programmer Jan 20 '10 at 3:44
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Actually, the Dec-10 had also 6-bit characters - you could pack 6 of these into a 36-bit word (ex-Dec-10 programmer talking) –  anon Jan 20 '10 at 14:52
    
The DEC-20 used five 7-bit ASCII characters per 36-bit word on the TOPS-20 O/S. –  David R Tribble Jan 20 '10 at 17:19
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This reminds me of the joke UTF-9 tools.ietf.org/html/rfc4042 –  Josh Lee Jan 28 '10 at 6:10
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I imagine that the reason octal was ever actually used was because 3 octal digits neatly represent a 9-bit byte, just like we usually use hexadecimal today because two hexadecimal digits neatly represent an 8-bit byte. –  bames53 Jul 11 '12 at 0:20

When writing code, and thinking about cross-platform support (e.g. for general-use libraries), what sort of consideration is it worth giving to platforms with non-8-bit char?

It's not so much that it's "worth giving consideration" to something as it is playing by the rules. In C++, for example, the standard says all bytes will have "at least" 8 bits. If your code assumes that bytes have exactly 8 bits, you're violating the standard.

This may seem silly now -- "of course all bytes have 8 bits!", I hear you saying. But lots of very smart people have relied on assumptions that were not guarantees, and then everything broke. History is replete with such examples.

For instance, most early-90s developers assumed that a particular no-op CPU timing delay taking a fixed number of cycles would take a fixed amount of clock time, because most consumer CPUs were roughly equivalent in power. Unfortunately, computers got faster very quickly. This spawned the rise of boxes with "Turbo" buttons -- whose purpose, ironically, was to slow the computer down so that games using the time-delay technique could be played at a reasonable speed.


One commenter asked where in the standard it says that char must have at least 8 bits. It's in section 5.2.4.2.1. This section defines CHAR_BIT, the number of bits in the smallest addressable entity, and has a default value of 8. It also says:

Their implementation-defined values shall be equal or greater in magnitude (absolute value) to those shown, with the same sign.

So any number equal to 8 or higher is suitable for substitution by an implementation into CHAR_BIT.

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I haven't seen a Turbo button in at least 20 years - do you really think it's germane to the question? –  Mark Ransom Jan 20 '10 at 3:30
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@Mark Ransom: That's the whole point. Developers often rely on assumptions which seem to be true at the moment, but which are much shakier than they initially appear. (Can't count the number of times I've made that mistake!) The Turbo button should be a painful reminder not to make unnecessary assumptions, and certainly not to make assumptions that aren't guaranteed by a language standard as if they were immutable facts. –  John Feminella Jan 20 '10 at 3:33
    
Could you point out to place in C++ Standard which says that the bye has at least 8 bits? It is a common belief however I personally failed to find it in the Standard. The only thing I found in Standard is which characters must be representable by char there are more then 64 of them but less that 128 so 7 bits would be enough. –  Adam Badura Jan 20 '10 at 6:48
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Section 18.2.2 invokes the C standard for it. In the C standard it's section 7.10 and then section 5.4.2.4.1. Page 22 in the C standard. –  Windows programmer Jan 21 '10 at 3:48

A few of which I'm aware:

  • DEC PDP-10: variable, but most often 7-bit chars packed 5 per 36-bit word, or else 9 bit chars, 4 per word
  • Control Data mainframes (CDC-6400, 6500, 6600, 7600, Cyber 170, Cyber 176 etc.) 6-bit chars, packed 10 per 60-bit word.
  • Unisys mainframes: 9 bits/byte
  • Windows CE: simply doesn't support the `char` type at all -- requires 16-bit wchar_t instead
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I'd be surprised by C support for the first few... –  ephemient Jan 20 '10 at 0:56
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Did the Windows CE compiler really not support the char type at all? I know that the system libraries only supported the wide char versions of functions that take strings, and that at least some versions of WinCE removed the ANSI string functions like strlen, to stop you doing char string-handling. But did it really not have a char type at all? What was sizeof(TCHAR)? What type did malloc return? How was the Java byte type implemented? –  Steve Jessop Jan 20 '10 at 1:33
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Windows CE supports char, which is a byte. See Craig McQueen's comment on Richard Pennington's answer. Bytes are needed just as much in Windows CE as everywhere else, no matter what sizes they are everywhere else. –  Windows programmer Jan 20 '10 at 3:44
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The C standard would not allow 7-bit chars packed 5 per 36-bit word (as you mentioned for the PDP-10), nor would it allow 6-bit chars, as you mentioned for the Control Data mainframes. See parashift.com/c++-faq-lite/intrinsic-types.html#faq-26.6 –  Ken Bloom Aug 7 '11 at 23:58
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@Jerry: BTW, I didn't mean to say you couldn't implement a C compiler on that hardware, just that you'd have to use different char sizes to do it. –  Ken Bloom Aug 8 '11 at 3:55

Many DSP chips have 16- or 32-bit char. TI routinely makes such chips for example.

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That's an interesting link. –  Craig McQueen Jan 20 '10 at 4:19

The C and C++ programming languages, for example, define byte as "addressable unit of data large enough to hold any member of the basic character set of the execution environment" (clause 3.6 of the C standard). Since the C char integral data type must contain at least 8 bits (clause 5.2.4.2.1), a byte in C is at least capable of holding 256 different values. Various implementations of C and C++ define a byte as 8, 9, 16, 32, or 36 bits

Quoted from http://en.wikipedia.org/wiki/Byte#History

Not sure about other languages though.

http://en.wikipedia.org/wiki/IBM_7030_Stretch#Data_Formats

Defines a byte on that machine to be variable length

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"Not sure about other languages though" -- historically, most languages allowed the machine's architecture to define its own byte size. Actually historically so did C, until the standard set a lower bound at 8. –  Windows programmer Jan 20 '10 at 3:45

It appears that you can still buy an IM6100 (i.e. a PDP-8 on a chip) out of a warehouse. That's a 12-bit architecture.

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ints used to be 16 bits (pdp11, etc.). Going to 32 bit architectures was hard. People are getting better: Hardly anyone assumes a pointer will fit in a long any more (you don't right?). Or file offsets, or timestamps, or ...

8 bit characters are already somewhat of an anachronism. We already need 32 bits to hold all the world's character sets.

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True. The name char is a bit quaint now in Unicode days. I care more about 8-bit units (octets) when dealing with binary data, e.g. file storage, network communications. uint8_t is more useful. –  Craig McQueen Jan 20 '10 at 0:48
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Unicode never needed a full 32 bits, actually. They originally planned for 31 (see the original UTF-8 work), but now they're content with only 21 bits. They probably realized they wouldn't be able to print the book any more if they actually needed all 31 bits :P –  me22 Aug 30 '13 at 4:34

The DEC PDP-8 family had a 12 bit word although you usually used 8 bit ASCII for output (on a Teletype mostly). However, there was also a 6-BIT character code that allowed you to encode 2 chars in a single 12-bit word.

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what sort of consideration is it worth giving to platforms with non-8-bit char?

magic numbers occur e.g. when shifting;

most of these can be handled quite simply by using CHAR_BIT and e.g. UCHAR_MAX instead of 8 and 255 (or similar).

hopefully your implementation defines those :)

those are the "common" issues.....

another indirect issue is say you have:

struct xyz {
   uchar baz;
   uchar blah;
   uchar buzz; 
}

this might "only" take (best case) 24 bits on one platform, but might take e.g. 72 bits elsewhere.....

if each uchar held "bit flags" and each uchar only had 2 "significant" bits or flags that you were currently using, and you only organized them into 3 uchars for "clarity", then it might be relatively "more wasteful" e.g. on a platform with 24-bit uchars.....

nothing bitfields can't solve, but they have other things to watch out for ....

in this case, just a single enum might be a way to get the "smallest" sized integer you actually need....

perhaps not a real example, but stuff like this "bit" me when porting / playing with some code.....

just the fact that if a uchar is thrice as big as what is "normally" expected, 100 such structures might waste a lot of memory on some platforms..... where "normally" it is not a big deal.....

so things can still be "broken" or in this case "waste a lot of memory very quickly" due to an assumption that a uchar is "not very wasteful" on one platform, relative to RAM available, than on another platform.....

the problem might be more prominent e.g. for ints as well, or other types, e.g. you have some structure that needs 15 bits, so you stick it in an int, but on some other platform an int is 48 bits or whatever.....

"normally" you might break it into 2 uchars, but e.g. with a 24-bit uchar you'd only need one.....

so an enum might be a better "generic" solution ....

depends on how you are accessing those bits though :)

so, there might be "design flaws" that rear their head.... even if the code might still work/run fine regardless of the size of a uchar or uint...

there are things like this to watch out for, even though there are no "magic numbers" in your code ...

hope this makes sense :)

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There is no such thing as a completely portable code. :-)

Yes, there may be various byte/char sizes. Yes, there may be C/C++ implementations for platforms with highly unusual values of CHAR_BIT and UCHAR_MAX. Yes, sometimes it is possible to write code that does not depend on char size.

However, almost any real code is not standalone. E.g. you may be writing a code that sends binary messages to network (protocol is not important). You may define structures that contain necessary fields. Than you have to serialize it. Just binary copying a structure into an output buffer is not portable: generally you don't know neither the byte order for the platform, nor structure members alignment, so the structure just holds the data, but not describes the way the data should be serialized.

Ok. You may perform byte order transformations and move the structure members (e.g. uint32_t or similar) using memcpy into the buffer. Why memcpy? Because there is a lot of platforms where it is not possible to write 32-bit (16-bit, 64-bit -- no difference) when the target address is not aligned properly.

So, you have already done a lot to achieve portability.

And now the final question. We have a buffer. The data from it is sent to TCP/IP network. Such network assumes 8-bit bytes. The question is: of what type the buffer should be? If your chars are 9-bit? If they are 16-bit? 24? Maybe each char corresponds to one 8-bit byte sent to network, and only 8 bits are used? Or maybe multiple network bytes are packed into 24/16/9-bit chars? That's a question, and it is hard to believe there is a single answer that fits all cases. A lot of things depend on socket implementation for the target platform.

So, what I am speaking about. Usually code may be relatively easily made portable to certain extent. It's very important to do so if you expect using the code on different platforms. However, improving portability beyond that measure is a thing that requires a lot of effort and often gives little, as the real code almost always depends on other code (socket implementation in the example above). I am sure that for about 90% of code ability to work on platforms with bytes other than 8-bit is almost useless, for it uses environment that is bound to 8-bit. Just check the byte size and perform compilation time assertion. You almost surely will have to rewrite a lot for a highly unusual platform.

But if your code is highly "standalone" -- why not? You may write it in a way that allows different byte sizes.

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For one, Unicode characters are longer than 8-bit. As someone mentioned earlier, the C spec defines data types by their minimum sizes. Use sizeof and the values in limits.h if you want to interrogate your data types and discover exactly what size they are for your configuration and architecture.

For this reason, I try to stick to data types like uint16_t when I need a data type of a particular bit length.

Edit: Sorry, I initially misread your question.

The C spec says that a char object is "large enough to store any member of the execution character set". limits.h lists a minimum size of 8 bits, but the definition leaves the max size of a char open.

Thus, the a char is at least as long as the largest character from your architecture's execution set (typically rounded up to the nearest 8-bit boundary). If your architecture has longer opcodes, your char size may be longer.

Historically, the x86 platform's opcode was one byte long, so char was initially an 8-bit value. Current x86 platforms support opcodes longer than one byte, but the char is kept at 8 bits in length since that's what programmers (and the large volumes of existing x86 code) are conditioned to.

When thinking about multi-platform support, take advantage of the types defined in stdint.h. If you use (for instance) a uint16_t, then you can be sure that this value is an unsigned 16-bit value on whatever architecture, whether that 16-bit value corresponds to a char, short, int, or something else. Most of the hard work has already been done by the people who wrote your compiler/standard libraries.

If you need to know the exact size of a char because you are doing some low-level hardware manipulation that requires it, I typically use a data type that is large enough to hold a char on all supported platforms (usually 16 bits is enough) and run the value through a convert_to_machine_char routine when I need the exact machine representation. That way, the platform-specific code is confined to the interface function and most of the time I can use a normal uint16_t.

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The question didn't ask about characters (whether Unicode or not). It asked about char, which is a byte. –  Windows programmer Jan 20 '10 at 3:41
    
Also, the execution character set has nothing to do with opcodes, it's the character set used at execution, think of cross-compilers. –  ninjalj Jul 8 '10 at 20:15

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