Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

This question already has an answer here:

Could you please explane to me why the output of this code is 12 (1100b)

and how the sizeof(bit1) is 4byte???

#include <stdio.h>
#include <stdlib.h>
struct bitfield
  {
   unsigned a:5;
   unsigned c:5;
   unsigned b:6;

  };

void main()
{

 char *p;
 struct bitfield bit1={1,3,3};  //a=00001 ,c=00011 ,b=000011
 p=&bit1;                           // p get the address of bit1
 p++;                               // incriment the address of p in 1

 printf("%d\n",*p); 

 printf("%d\n",sizeof(bit1));            
}
share|improve this question

marked as duplicate by Bo Persson, Jonathan Leffler, thaJeztah, pradeek, Jean Apr 13 '13 at 11:41

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

1  
You might want to review the standard on member-addresses, bitfield members, and how bitfields are "special". I'm also curious how you're not getting a phat warning with that direct assignment to char * from a struct bitfield * type. –  WhozCraig Apr 12 '13 at 17:10
    
doesn't the sizeof(bit1) is 2byte(16bit) and output should be 195(11000011b)??? –  Anklon Apr 12 '13 at 17:11
3  
@Anklon The compiler typically will add padding to structs for alignment purposes (so that you could create an array of them). Your compiler might have something like a #pragma pack option to control that. c-faq.com/struct/endpad.html –  jamesdlin Apr 12 '13 at 17:13
1  
C99 6.7.2.1p11 An implementation may allocate any addressable storage unit large enough to hold a bit-field. If enough space remains, a bit-field that immediately follows another bit-field in a structure shall be packed into adjacent bits of the same unit. If insufficient space remains, whether a bit-field that does not fit is put into the next unit or overlaps adjacent units is implementation-defined. The order of allocation of bit-fields within a unit (high-order to low-order or low-order to high-order) is implementation-defined. The alignment of the addressable storage unit is unspecified. –  WhozCraig Apr 12 '13 at 17:21
3  
I suggest using %zu to print values of the type size_t (eg. the result of a sizeof expression). –  undefined behaviour Apr 12 '13 at 17:34

2 Answers 2

You have declared your bit fields as unsigned. On most modern systems, that's a 32 bit integer. (unsigned short is 16, char 8, long 64, etc.) So, you're declaring a 32 bit bitfield container. The size of each individual bit field argument is given by the integer after the bitfield name, but the size of the container they are packed in is a multiple of the data type specified... typically the smallest multiple the total indicated number of bits will fit in -- though word boundaries and other things will play into that.

I'm surprised any of the rest of it works at all. Aside from the casting issues in the pointer, the printf is printing the first 8 bits of the entire field... a single char. That will not break on the bit fields themselves, but on the byte/char memory boundary. Depending on whether your system is big endian or little endian, it will be either the MSB or LSB of the entire field.

share|improve this answer
2  
Um, no. The size of a bit field is determined by the number following it; the widths in bits are 5, 5, and 6 respectively. –  Keith Thompson Apr 12 '13 at 17:15
    
The size of the individual bit fields, yes. But the size of the container they are packed in is defined by the type. It will be a multiple of the type. –  K Scott Piel Apr 12 '13 at 17:17
    
when I mention it as signed or don't mension it as signed or unsigned...both case it shows sizeof(bit1) is 4 byte ... –  Anklon Apr 12 '13 at 17:17
    
And if you declare is an unsigned short? –  K Scott Piel Apr 12 '13 at 17:18
    
then its 2bytes –  Anklon Apr 12 '13 at 17:21

The pointer p contains the address of structure variable bit1.

I believe your system is having little endian addressing due to which the variable b is placed in the location pointed by pointer p and *p prints the content of the first two bytes of bit1.

In your case b=3 (000011)

But the two bytes contains,

00000000 00001100  (12)
         ------
            ^
            |
         Value of b

To better understand this,

change the value of b to 5 (000101) as follows,

struct bitfield bit1={1,1,5}; 

Then your output will be 20 because,

00000000 00010100  (20)
         ------
           ^
           |
        Value of b

The structure bitfield packs a, c and b into a single unsigned integer. The size of unsigned integer is 4 Bytes.

share|improve this answer

Not the answer you're looking for? Browse other questions tagged or ask your own question.