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What does 'unsigned temp:3' means

This is C code sample of a reference page.

      signed int _exponent:8;

What's the meaning of the colon before '8' and '8' itself?

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marked as duplicate by Jörg W Mittag, schot, paxdiablo, dmckee, Greg Hewgill Oct 21 '10 at 20:46

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is this part of a struct definition? –  Mark Elliot Oct 21 '10 at 2:53
    
Yes. it's part of struct. –  Eonil Oct 21 '10 at 5:51
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4 Answers 4

up vote 9 down vote accepted

It's a bitfield. It means that the system will only use 8 bits for your integer.

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I believe this is only valid in a struct, though. –  Cameron Oct 21 '10 at 2:58
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It wouldn't make sense outside a struct. –  EboMike Oct 21 '10 at 3:34
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Yes, it's part of a struct –  Eonil Oct 21 '10 at 5:52
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It's a bitfield, an obscure and misguided feature of structures. That should be enough for you to lookup the information you need to know to deal with bitfields in other people's code. As for your own code, never use bitfields.

Edit: As requesed by Zack, bitfields have significant disadvantages versus performing your own bit arithmetic, and no advantages. Here are some of them:

  • You can only copy, compare, serialize, or deserialize one bitfield element at a time. Doing your own bit arithmetic, you can operate on whole words at a time.
  • You can never have a pointer to bitfield elements. With your own bit arithmetic, you can have a pointer to the larger word and a bit index within the word as a "pointer".
  • Directly reading/writing C structures to disk or network is half-way portable without bitfields, as long as you use fixed-size types and know the endianness. Throw in bitfields, though, and the order of elements within the larger type, as well as the total space used and alignment, become highly implementation-dependent, even within a given cpu architecture.
  • The C specification has very strange rules than allow the signedness of bitfield elements to be different from what you'd expect it to, and very few people are aware of these.

For single-bit flags, using your own bit arithmetic instead of bitfields is a complete no-brainer. For larger values you need to pack, if it's too painful to write out all the bit arithmetic all over the place, write some simple macros.

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That's an awfully strong statement, there. Care to elaborate? –  Zack Oct 21 '10 at 3:00
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+1 for "never use bitfields." –  Travis Gockel Oct 21 '10 at 3:00
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Disagree :). I don't agree on the "obscure and misguided feature of structures" and "never use bitfields" part. Bit fields are very necessary for economic use of space, and interface to hardware. –  Arun Oct 21 '10 at 3:04
    
@Zack: Bitfields are not portable for a variety of reasons, amongst other things. Although I've not experimented with a modern compiler (say in the last decade), using bitfields was apt to lead to code bloat. –  Jonathan Leffler Oct 21 '10 at 3:07
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@Travis: That is implementation-defined. All implementation-defined features must be documented. See §6.7.2.1/10. –  dreamlax Oct 21 '10 at 3:07
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When that statement is inside a structure, means bit fields.

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It is a bitfield specification.

It means _exponent takes only 8 bits out of the signed int which typically takes more than 8 bits. Typically, bit-fields are used with unsigned types.

IIRC, compiler would warn if a something that does not fit into 8-bits is written into _exponent.

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