14

Does it make sense to qualify bit fields as signed / unsigned?

10 Answers 10

14

The relevant portion of the standard (ISO/IEC 9899:1999) is 6.7.2.1 #4:

A bit-field shall have a type that is a qualified or unqualified version of _Bool, signed int, unsigned int, or some other implementation-defined type.

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  • 2
    I think the question is asking about ANSI C (c89/c90) not ISO C (c99). – nebuch Jul 21 '16 at 16:39
8

Yes. An example from here:

struct {
  /* field 4 bits wide */
  unsigned field1 :4;
  /*
   * unnamed 3 bit field
   * unnamed fields allow for padding
   */
  unsigned        :3;
  /*
   * one-bit field
   * can only be 0 or -1 in two's complement!
   */
  signed field2   :1;
  /* align next field on a storage unit */
  unsigned        :0;
  unsigned field3 :6;
}full_of_fields;

Only you know if it makes sense in your projects; typically, it does for fields with more than one bit, if the field can meaningfully be negative.

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  • +1 for showing possible portability issue (one vs two complement) when using bitfields – Shmil The Cat Mar 23 '14 at 7:54
7

It's very important to qualify your variables as signed or unsigned. The compiler needs to know how to treat your variables during comparisons and casting. Examine the output of this code:

#include <stdio.h>

typedef struct
{
    signed s : 1;
    unsigned u : 1;
} BitStruct;

int main(void)
{
    BitStruct x;

    x.s = 1;
    x.u = 1;

    printf("s: %d \t u: %d\r\n", x.s, x.u);
    printf("s>0: %d \t u>0: %d\r\n", x.s > 0, x.u > 0);

    return 0;
}

Output:

s: -1    u: 1
s>0: 0   u>0: 1

The compiler stores the variable using a single bit, 1 or 0. For signed variables, the most significant bit determines the sign (high is treated negative). Thus, the signed variable, while it gets stored as 1 in binary, it gets interpreted as negative one.

Expanding on this topic, an unsigned two bit number has a range of 0 to 3, while a signed two bit number has a range of -2 to 1.

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2

I don't think Andrew is talking about single-bit bit fields. For example, 4-bit fields: 3 bits of numerical information, one bit for sign. This can entirely make sense, though I admit to not being able to come up with such a scenario off the top of my head.

Update: I'm not saying I can't think of a use for multi-bit bit fields (having used them all the time back in 2400bps modem days to compress data as much as possible for transmission), but I can't think of a use for signed bit fields, especially not a quaint, obvious one that would be an "aha" moment for readers.

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  • There are szenarios where it is usefull. In computational geometry you often have to store informations like "next, previous, none, the-same". That meks exactly two bits. It it happends that you can compress your structure to a nice size such as 2^n you may get a nice to have peformance boost. – Nils Pipenbrinck Sep 29 '08 at 19:03
2

Most certainly ANSI-C provides for signed and unsigned bit fields. It is required. This is also part of writing debugger overlays for IEEE-754 floating point types [[1][5][10]], [[1][8][23]], and [[1][10][53]]. This is useful in machine type or network translations of such data, or checking conversions double (64 bits for math) to half precision (16 bits for compression) before sending over a link, like video card textures.

// Fields need to be reordered based on machine/compiler endian orientation

typedef union _DebugFloat {
   float f;
   unsigned long u;
   struct _Fields {
        signed   s :  1;
        unsigned e :  8;
        unsigned m : 23;
      } fields; 
   } DebugFloat;

Eric

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1

Yes, it can. C bit-fields are essentially just limited-range integers. Frequently hardware interfaces pack bits together in such away that some control can go from, say, -8 to 7, in which case you do want a signed bit-field, or from 0 to 15, in which case you want an unsigned bit-field.

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1

One place where signed bitfields are useful is in emulation, where the emulated machine has fewer bits than your default word.

I'm currently looking at emulating a 48-bit machine and am trying to work out if it's reasonable to use 48 bits out of a 64-bit "long long" via bitfields... the generated code would be the same as if I did all the masking, sign-extending etc explicitly but it would read a lot better...

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0

According to this reference, it's possible:
http://publib.boulder.ibm.com/infocenter/macxhelp/v6v81/index.jsp?topic=/com.ibm.vacpp6m.doc/language/ref/clrc03defbitf.htm

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0

Bit masking signed types varies from platform hardware to platform hardware due to how it may deal with an overflow from a shift etc.

Any half good QA tool will warn knowingly of such usage.

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-4

if a 'bit' is signed, then you have a range of -1, 0, 1, which then becomes a ternary digit. I don't think the standard abbreviation for that would be suitable here, but makes for interesting conversations :)

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  • Wrong. You get -1, -0, +0, +1. Two bits, four states. – Thorsten79 Sep 29 '08 at 18:00
  • probably something like -2, -1, 0, 1 makes more sense, you almost never need a -0 – davr Sep 29 '08 at 18:01
  • 1
    Um. I don't think that the C standard includes the notion of negative zero in integer arithmetic. – tzot Sep 29 '08 at 18:17
  • 3
    Actuallly, from a single bit you get only two states (no surprise if you understand twos complement arithmetic) Those are 0 and -1. – Nils Pipenbrinck Sep 29 '08 at 18:53
  • @Nils: Yes, from a single bit you get only two states, and from two bits you get four states. If you meant your comment as a reply to workmad3, perhaps you should prefix your comment with "@workmad3". – tzot Sep 29 '08 at 20:45

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