5
   struct stats
   {
       char top         : 1; 
       char bottom      : 1;
       char side        : 2;
   } MyStat;  

I have seen this format with integers but how does the above char bit field work and what does it represent?

Thank You.

3 Answers 3

7

Char bit fields work in the same way as int, just the base type is 8-bit wide, not 32-bit. So you'd get a struct stats, which has the size of 1 byte, and 3 member variables, occupying a total of 4 bits.

2
  • 1
    @Tommy: you should really be careful with char here because this is not portable and they have the ambiguity that they may be signed or unsigned types. If you may, avoid this and use unsigned or _Bool. Two bits of an unsigned need exactly as much space as two bits of a char ;-) Oct 19, 2010 at 18:42
  • 1
    Not to mention you should avoid bitfields to begin with. Oct 19, 2010 at 21:20
5

Bitfields should be declared with type signed int, unsigned int, or bool from <stdbool.h>. Other types may or may not be legal (depending on the platform), but be careful about the signedness — plain int may be taken to be unsigned for a bitfield.

That said, it may be a hint to the compiler that the alignment of the struct should be 1 and not sizeof(int). And the compiler is allowed to accept char and assign it such meaning.

According to C99 6.7.2.1/9,

A bit-field is interpreted as a signed or unsigned integer type consisting of the specified number of bits. If the value 0 or 1 is stored into a nonzero-width bit-field of type _Bool, the value of the bit-field shall compare equal to the value stored.

and a footnote:

As specified in 6.7.2 above, if the actual type specifier used is int or a typedef-name defined as int, then it is implementation-defined whether the bit-field is signed or unsigned.

5
  • 3
    C99 explicitly says in 6.7.2.1/4 "_Bool, signed int, unsigned int, or some other implementation-defined type". Presumably the implementation is free to define whether the bit-field container object is really as small as a single char as it appears it could be in this case.
    – RBerteig
    Oct 19, 2010 at 18:34
  • 1
    @RBerteig: Did I say something to contradict that? Oct 19, 2010 at 18:46
  • 1
    Sorry, I apparently read "Other types may or may not be legal..." as not really saying "implementation defined". (My only excuse is immersion in standardese with insufficient caffeine.) I can't find any clear answer from the standard about what sizeof() should say in this case, however.
    – RBerteig
    Oct 19, 2010 at 18:52
  • 1
    @RBerteig: I (think I) clarified it a bit. I'm pretty sure sizeof is implementation-defined when there's a bitfield, and I seem to recall doing an experiment with GCC where the size of the declared type did make a difference. Oct 19, 2010 at 18:55
  • 1
    the embedded systems cross compilers I've used generally have taken the declared type holding the bit fields as an indication of what kind of memory access to do. So a bitfield in a char would use byte-acess, a short would use 16-bit accesses, and a long would use 32-bit accesses. This matters a great deal in some architectures where a 16-bit wide device may not be legally accessed 8 bits at a time without doing two reads which could loose some information in registers that are cleared when read. That is very implementation defined, and non-portable, though.
    – RBerteig
    Oct 24, 2010 at 21:21
2

it just defines the size of the variable that you will use.

char
int

This is not supported by the standard (typical use is unsigned int), but it's a nice attempt :)

re: your query, it's an attempt by the implementer to use less memory for their bitfields (char as opposed to unsigned int)

Additionally, from Atmel, we get:

in the C Standard, only “unsigned (int)” and “int” are acceptable datatypes for a bitfield member. Some compilers allow “unsigned char” ........

8
  • 1
    it's not a one bit char, it's one bit inside of a char
    – KevinDTimm
    Oct 19, 2010 at 17:59
  • 2
    char is one byte in size, so it takes values -128 to 127 (signed) or 0 to 255 (unsigned). If you want to use it as a bit field, you need to use masks and the bitwise operators | & ^ ~ << and >>
    – Tristan
    Oct 19, 2010 at 18:02
  • 1
    @Tristan - not really. Most compilers (regardless of what the Standard says) allow bit operations like the OP details on a char. These operations CAN use the bitwise operators but don't HAVE to use them. For example, bitfields are a great way to define which pieces of data are sent in a stream, in which case you would turn them on and off as appropriate
    – KevinDTimm
    Oct 19, 2010 at 18:08
  • 1
    from C++ (2003 version) standard: It is implementation-defined whether a plain (neither explicitly signed nor unsigned) char, short, int or long bit-field is signed or unsigned. >>>> I think it's reasonable to think char is supported
    – user283145
    Oct 19, 2010 at 18:13
  • 2
    @buratinas - unfortunately, the OP refers to C and C++. The good news is we're both right ;)
    – KevinDTimm
    Oct 19, 2010 at 18:26

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