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Why does this bitfield have a size of 4?
Is there any way for me to make it have size 2 (as obviously intended in the code below), or is this impossible to do cleanly?

struct S
{
    unsigned short x : 15;
    bool a : 1;
};

int main() { return sizeof(S); }
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2  
I believe word size is 4 bytes (32 bit) in your system and structures are usually word aligned so 2 extra bytes are added for padding. –  KBart Feb 7 '13 at 11:09
    
@KBart: Why would the word size affect the alignment of unsigned short, which is a half-word? struct T { unsigned short s1, s2; }; certainly doesn't have an alignment of 4, as far as I know! Also, I should note that adding #pragma pack(1) decreases the size to 3, but not 2. –  Mehrdad Feb 7 '13 at 11:10
    
it does not affect size of unsigned short, it adds 2 byte for padding as I stated in my edited comment. –  KBart Feb 7 '13 at 11:11
    
I am getting output as 2! –  Krishnachandra Sharma Feb 7 '13 at 11:12
1  
#pragma pack(1) pads each member to the nearest byte, and you have two members, so the size becomes three (two for the first and one for the second). –  Joachim Pileborg Feb 7 '13 at 11:18
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1 Answer 1

It is impossible to do it with standard C++, but it is possible to use a compiler specific pragma or attribute for your structure.

in VC++, it is #pragma pack

Also to get size of 2 only, you have to do this:

#pragma pack(1)
struct s{
  unsigned short s1: 15;
  unsigned short b1: 1;
};

With #pragma pack on your code as follows:

struct S
{
    unsigned short x : 15;
    bool a : 1;
};

A hypothetical memory layout would be:

----------------------
+ 1 | 2 | 3 | 4 | 5 | ..
+   x   | a |
+---------------------

Hence it occupies 3 bytes

changing bool a to unsigned short a you get this:

-------------------------
+ 1 | 2 | 3 | 4 | 5| ..
+   x |a|
-------------------------

Which occupies only 2 bytes.

The compiler decides that, since the second short is only taking 1 bit, it is possible to just squeeze the structure into 2 bytes. But if a structure member of another type is used (such as bool in your implementation of S) the compiler thinks, since the types are different, it cannot actually squeeze the 1 bit into unsigned short(because it is crossing the type boundary - unfortunately implementation defined). Hence you get 3 bytes for sizeof() instead of 2.

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+1 because it works, but not because of the pragma you mentioned! It seems to be because of the type... but why does changing bool to unsigned short make a difference? –  Mehrdad Feb 7 '13 at 11:24
    
One reason only, bool will take an extra byte for 1 bit. with unsigned short, it will try to pack everything in a short. –  Aniket Feb 7 '13 at 11:25
    
@Aniket Actually, there's no reason other than that's what the implementers of the compiler decided to do. It's all very arbitrary and implementation defined. –  James Kanze Feb 7 '13 at 11:27
    
@Aniket: You're just repeating what's obviously happening, but I'm asking why does it do that? –  Mehrdad Feb 7 '13 at 11:27
1  
@JamesKanze as I said, its implementation defined. Its not standard C++ and C++ standard does not allow non-padded structures AFAIR –  Aniket Feb 7 '13 at 11:27
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