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Take this example

class A
{
public:
  int a; 
  char b;
  int c;
};

Every compiler (for x86, 32 or 64 bit) I see allocates 12 bytes for class A, instead of 9. So they are aligning b to the integer boundary or bus boundary you can say. My question is if this is in C++ standard to do so and if there are any compilers who does not do like that.

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5 Answers 5

up vote 15 down vote accepted

The C++ standard specifies that:

  • objects have an alignment requirement of which their size is a multiple (so if int is 4 bytes wide, then it requires an alignment of 1, 2 or 4 bytes, depending on the implementation).
  • member objects (if they are not separated by access specifiers such as public) are all allocated in the order they're declared
  • and they are allocated respecting their alignment requirements.

So no, the standard doesn't say exactly that the class should have a size of 12 bytes.

But it does say that b should be allocated after a, and that c should be allocated after b.

On a platform where int is 4 bytes wide, and requires 4-byte alignment, this leaves 12 bytes as the smallest valid size:

  • a takes the first 4 bytes
  • b takes one byte
  • c needs 4 bytes, but must be allocated on a 4-byte boundary. b ended one byte past such a boundary, so the next valid position to place c at is found by inserting 3 bytes of padding.

So the total size of the class ends up being the size of the members (4 + 1 + 4 = 9) plus three bytes of padding, for a total of 12.

There is another rule which has no effect here, but which would matter if you had defined the members in the order a, c, b instead.

The containing class (A) inherits the alignment requirement from the strictest-aligned member object. That is, because it contains an int, it has the same alignment requirement as an int does. And because the object's total size must be a multiple of its alignment requirement, a class containing the members in the order a, b, c would still require 12 bytes of storage. It'd just shift the 3 bytes of padding to the end of the class, instead of between b and c.

However, in some other cases, reordering members in descending order of size can sometimes reduce the size of a class.

Suppose we'd had a class like this instead:

class B {
  char a;
  double b;
  int c;
};

This would have required 24 bytes of storage (1 bytes for a, 8 byte for b, and 4 bytes for c, but then to ensure b ends up on an 8-byte boundary, we'd need 7 bytes of padding between a and b, and to ensure that the whole class ends up with a size that is a multiple of 8, we need another 4 bytes after c.

But reordering the members according to size, like this:

class B {
  double b;
  int c;
  char a;
};

results in a class requiring only 16 bytes:

the same 1 + 4 + 8 bytes for the member objects themselves, but now c is already aligned on a 4-byte boundary (because it comes after b which ends on an 8-byte boundary), and a never needs any alignment, so the only alignment we need is to ensure that B has a size that is a multiple of 8. The members take 13 bytes, so we can add 3 bytes of padding, and the class ends up at 16 bytes, 33% smaller than the first version.

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1  
You might also point out that on most architectures, accessing a mis-aligned object will result in some sort of a bus error, which will cause the program to crash. On an Intel, the program won't crash, but it will still run a lot slower if the data is misaligned. –  James Kanze Nov 8 '12 at 15:27

In your case 'b' is always correctly aligned. It's padded to align c in 32-bit boundaries. Even though there is some room for specific implementations, most compilers follow the rule of aligning 2 and 4-byte variables to 2 and 4 byte boundaries.

In 32-bit systems also doubles and long ints (8 bytes) are aligned to 4-byte boundaries, but aligned to 8-byte in 64-bit systems.

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How the systems aligns different types is very implementation dependent. I've used 32 bit systems where doubles were aligned on 8 byte boundaries, and I've seen all sorts of alignments for long double. –  James Kanze Nov 8 '12 at 15:31
    
Well yes, maybe long double is pushing the limits of compatibility. –  Aki Suihkonen Nov 8 '12 at 19:40

It is possible to control structure packing at compile-time, using pragma directives. See #Pragma Pack

For example, the following does not align the members, and places them right next to each other.

#pragma pack(push, 1)
struct A4
{
  char a;
  double b;
  char c;
};
#pragma pack(pop)

Example from here.

GCC also supports pragma pack. The directive isn't the part of some standard, but a lot of compilers do support it.


However, there shouldn't be a reason to do the above. The compiler aligns them to speed up access to members, and there should be no reason to change that.

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Is #pragma pack portable? Does it work other compilers? –  Alessandro Pezzato Nov 8 '12 at 14:07
    
But is it defined in C++ standard that the default case would to be to align to bus boundary. –  user1018562 Nov 8 '12 at 14:07
1  
GCC supports a set of #pragma directives, but they support that because MS's compilers do as well. The pack directive isn't a part of any standard AFAIK. –  DarkCthulhu Nov 8 '12 at 14:13
3  
In fact, #pragma anything is by definition not part of any standard. –  MSalters Nov 8 '12 at 14:16
1  
"There shouldn't be a reason to do the above" There are use cases for this, such as packing structures for network transport. –  Justin ᚅᚔᚈᚄᚒᚔ Nov 8 '12 at 15:47

Yes, alignment is mentioned everywhere in the standard, mainly section 3.11 (Alignment). It is platform-dependent, so any program that depends on the actual size of an object is inherently non-portable.

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Standard allows the compilers to padd more bytes if necessary. It basically depends on the architecture of the host rather than compiler.

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