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It is a simple question. Code first.

struct A {
    int x; 
};
struct B {
    bool y;
};
struct C {
    int x;
    bool y;
};

In main function, I call

cout << " bool : " << sizeof(bool) <<
     "\n int : " << sizeof(int) <<
     "\n class A : " << sizeof(A) <<
     "\n class B : " << sizeof(B) <<
     "\n class C : " << sizeof(C) << "\n";

And the result is

bool : 1 int : 4 class A : 4 class B : 1 class C : 8

Why is the size of class C 8 instead of 5? Note that this is compiled with gcc in MINGW 4.7 / Windows 7 / 32 bit machine.

share|improve this question
    
That is called padding. –  Marlon Oct 2 '12 at 1:05
    
@Marlon so, what is the main purpose of the padding? –  Sungmin Oct 2 '12 at 1:19
    
@Sungmin: Think about arrays. –  Kerrek SB Oct 2 '12 at 1:21
4  
The extra space is padding, but the purpose is alignment: most architectures are better suited for aligned access to data, so a 32bit int aligned to 4 bytes is faster to access (sometimes even atomic) than unaligned memory. In some architectures it is even worse and you cannot use unaligned types directly. –  David Rodríguez - dribeas Oct 2 '12 at 1:28
    

3 Answers 3

up vote 3 down vote accepted

The alignment of an aggregate is that of its strictest member (the member with the largest alignment requirement). In other words the size of the structure is a multiple of the alignment of its strictest (with the largest alignment requirement) member.

struct D
{
  bool a;
  // will be padded with char[7]
  double b; // the largest alignment requirement (8 bytes in my environment)
};

The size of the structure above will be 16 bytes because 16 is a multiple of 8. In your example the strictest type is int aligning to 4 bytes. That's why the structure is padded to have 8 bytes. I'll give you another example:

struct E
{
  int a;
  // padded with char[4]
  double b;
};

The size of the structure above is 16. 16 is multiple of 8 (alignment of double in my environment).

I wrote a blog post about memory alignment for more detailed explanation http://evpo.wordpress.com/2014/01/25/memory-alignment-of-structures-and-classes-in-c-2/

share|improve this answer
    
It's not the longest type; it's the alignment of the type whose alignment is "strictest" (i.e. longest). In many ABIs, double's are 8-byte long but only 4-byte aligned, for example. (Theoretically, it should be the LCM of all the alignments, but the standard requires that "Every alignment value shall be a non-negative integral power of two" (3.11, para 4), so you can just take the longest one.) –  rici Oct 2 '12 at 4:03
    
Thanks. I modified the answer. –  evpo Oct 2 '12 at 4:27
    
@evpo Sorry for the late reply. Thanks for more kind explanation. –  Sungmin Oct 5 '12 at 8:20

Aligning structures to the size of a word, which is 4 bytes here.

share|improve this answer
    
Can I ask further? What is the reason of the aligning structure? –  Sungmin Oct 2 '12 at 1:24
    
This doesn't explain the alignment strategy or may be the answer is not complete. If it aligned to 4, then struct B would be 4 bytes too. However, its size is 1 byte. Also in my answer I demonstrated that the compiler aligned to 8 bytes which is not 4 again. My point is that it aligns the size of the structure to a multiple of the largest type it contains. That explains it better. –  evpo Oct 2 '12 at 2:15

Looking at the definition of your struct, you have 1 byte value followed by 4 byte Integer. This integer needs to be allocated on 4 byte boundary, which will force compiler to insert a 3 byte padding after your 1 byte bool. Which makes the size of struct to 8 byte. To avoid this you can change order of elements in the struct.

Also for two sizeof calls returning different values, are you sure you do not have a typo here and you are not taking size of pointer or different type or some integer variable.

Answered by Rohit J on struct size is different from typedef version?

share|improve this answer
    
In my case, changing the order of elements in struct C did not influence the result. –  Sungmin Oct 2 '12 at 1:22
    
@Sungmin: The order of the members does not usually affect the padding. Consider that if the int must be aligned to a 4 byte boundary, it can be ordered as bool, padding, int; or int, bool, padding. Note that in an array, each element is located sizeof(type) bytes beyond the previous one. –  David Rodríguez - dribeas Oct 2 '12 at 1:29
    
@Sungmin: You're correct. In this case changing the order would not change the size of the struct. –  David Hammen Oct 2 '12 at 1:30

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