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struct Y{
  int int_one;
  int int_two;
  void * pointer;
}

struct X{
    char char_one;
    char char_two;
    struct Y y_structures[20];
 }

the padding is different on 32 and 64 bit machines. I don't know why. As far as I know the padding should be as follows :

 0x0 char_one <br>
 0x1 char_two <br>
 0x4 y_structures[0].int_one <br>
 0x8 y_structures[0].int_two <br>
 0x12 y_structure[0].pointer <br>

the structure on 32 bit is similar as mentioned above but on 64 bit machine the difference between addresses of char_two and y_structures[0].int_one is 7 bytes. I think that it should be 3 bytes because the type to be aligned after char_two is an int of the y_structures[0] and it's size is 4 on both architectures. Kindly help

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Just curious, what tool are you using to detect padding amount? –  merlin2011 Aug 19 '14 at 8:08
    
The real question is: why do you care? If you just want to learn, fine. But if you want to write portable code, don't write a code that relies on specific padding. –  user694733 Aug 19 '14 at 8:18
    
There are semicolons missing after the struct definitions. –  joop Aug 19 '14 at 9:12

3 Answers 3

up vote 2 down vote accepted

The problem is not the int, it's the pointer. pointer have a size of 8 bytes on 64bit machines, therefore they must start at a memory address mod 8.

0x0 char_one
0x1 char_two
0x8 y_structures[0].int_one
0x12 y_structures[0].int_two
0x16 y_structure[0].pointer
0x24 y_structures[1].int_one
0x28 y_structures[1].int_two
0x32 y_structure[1].pointer
...

so there must be 6 padding bytes. This is not necessary on 32 bit machines, because there pointer only have 4 byte.

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2  
You may be correct on this case, do not assume that values are always 8 for 64bit and 4 for 32bit. C standard gives no such restriction, it comes from the design of the hardware. –  user694733 Aug 19 '14 at 8:23

There's a difference between 32/64 bit systems: 32-bit systems will still align 8-byte variables to 32-bit boundaries. 64-bit systems will align long int and double to 8-byte boundaries.

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1  
no, 8byte variables will also align on multiples of 8 on 32bit machines, see: geeksforgeeks.org/… question number 6 –  mch Aug 19 '14 at 8:14

Also you have to keep in mind that some architectures require data alignment (can access data only if the address is aligned). It can be 32bit architecture, you can use 4 char elements and structure size to be 16 bytes of size for example.

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