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.

I'd like to understand more about alignment. Why does the Microsoft compiler (Visual Studio 2012 Express) complain about the alignment for the following snippet of code?

__declspec(align(16)) class Foo
{
public:
    virtual ~Foo() {}
    virtual void bar() = 0;
};

This is the warning the compiler presents to me:

warning C4324: 'Foo' : structure was padded due to __declspec(align())

It does not even matter whether or not the class has any virtual methods. Even for an empty class the compiler complains with the same warning message. How is an empty class aligned? How does the compiler pad this class?

share|improve this question
1  
It's aligned the way that you specifically told the compiler to align it -- to 16 bytes. This requires 16 bytes of padding. An empty struct without that would be 1-aligned, I expect, and of size 1. Empty classes are "special" because the standard requires that no complete object have size 0, so a class with no data members or bases always requires some padding if it doesn't have a vtable. The alignment requirement means it needs more. –  Steve Jessop Sep 19 '12 at 19:18
    
Try turning down your warnings to level 4 instead of "all". With "all" warnings enabled, it'll complain about everything including your favorite color and the name of your dog. –  Mysticial Sep 19 '12 at 19:18
    
Ok, but it does not seem to be the natural alignment. I'd like to understand how an empty class is aligned if I do not explicitly tell the compiler to align it in a certain way. –  Fair Dinkum Thinkum Sep 19 '12 at 19:19
1  
@FairDinkumThinkum: by definition, a class's alignment must be a factor of its size, so look at the size of an empty class with no __declspec(align()). If it's 1, then necessarily the alignment is 1. Also C++11 has an alignof operator, so if you can get that value from Visual C++ then it removes all doubt. –  Steve Jessop Sep 19 '12 at 19:21
    
Oh wait, nevermind. I retract my comment (without actually deleting it). The warning you're getting is not the same struct-padding warning that I usually see when I turn on Wall. –  Mysticial Sep 19 '12 at 19:23

3 Answers 3

up vote 9 down vote accepted

A warning does not necessarily mean you've done something wrong, but tells you that you might not have intended this behaviour. Note that a compiler is allowed to warn about anything the developers considered worth warning about. In principle, you could also be warned about compiling on Friday the 13th.

In this specific case the assumption probably is that when you specify alignment, you don't want to make the class bigger. Therefore if the class gets bigger due to the alignment requirement you gave, it's not unlikely that you made a mistake.

Of course that leaves the question why the alignment requirement makes the class bigger. Now we are back in standards land (although the __declspec itself is a Microsoft extension and not standard). The C++ standard requires that in arrays, the objects follow each other without any space in between. Therefore if your objects must be aligned to 16-byte boundaries, the object must have a size which is a multiple of 16. If the size of the members (both explicit and implicit) doesn't give the necessary size, the compiler has to add unused bytes to the object. These bytes are called padding. Note that this padding is present even in objects which are not members of arrays.

Now your class only contains an implicit virtual pointer (because it contains virtual functions) which, depending on the architecture, probably is either 4 or 8 bytes large. Since you've requested 16 byte alignment, the compiler has to add 12 or 8 bytes of padding to get the size to a multiple of 16, which it would not have had to add without that manual alignment specification. And this is what the compiler warns about.

share|improve this answer
3  
There should totally be a Warning: you started at 9 this morning and it's 8pm. Get some freaking food, you're in a hypoglycemic haze and your code is nonsense. –  Steve Jessop Sep 20 '12 at 10:57

In x86 Foo needs 4 bytes, so a 12-byte pad is needed. In x64 Foo needs 8 bytes, so a 8-byte pad is needed.

share|improve this answer

What this warning says is that the size of the class (as returned by sizeof) has changed (increased) as a result of using the __declspec(align()). That may break things, thus the warning.

An empty class has a size, of course, and must be greater than 0, so it is at least 1.

Normally the size doesn't change with the alignment, but in your case it does, because you specified an alignment that is bigger than the unpadded size of the class. And remember that in C the alignment of a type cannot be smaller than its size, actually the size must be a multiple of the alignment, so the size is increased to match the alignment.

Why must the size be a multiple of the alignment? Well, imagine an array of this type: consecutive elements are required to be separated by exactly sizeof(T), but each object must be in a memory address multiple of the alignment. The only solution to this equation is that sizeof(T) must be a (non-null) multiple of the alignment.

share|improve this answer
    
"because you specified an alignment that is bigger than the unpadded size of the class" That's not quite right. An object with 3 chars, aligned to 2, will get 1 extra byte of padding. –  Mooing Duck Sep 19 '12 at 19:52
    
@MooingDuck: You are right, of course. What I meant: "if the required alignment is bigger than the size then the size will grow", (not "if and only if"). –  rodrigo Sep 20 '12 at 6:31

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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