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I´m working on a memory manager using help of the book Game Engine Architecture. At the moment I´m reading about memory alignment (in the book and web) and I´m not sure how the alignment is used correctly for classes. I understand the concept of memory alignment (e.g. a 4 byte data chunk should be located at an address ending with 0x0, 0x4, 0x8 or 0xC) but at the allocateAligned()-function in the book is a comment that says that the alignment has to be power of two. If i have a class that has two int´s and one char, sizeof(classs) tells me, that the class is 12 bytes big. So, would you pass 32 as alignment? Would it not be a waste of memory and maybe lead to fragmentation?
My question is, how do classes have to be aligned correctly, could you explain me it more detailed (what happens if you want to align bigger data chunks, like 121 bytes) and does it make sense for the bigger chunks to be aligned (because the processor fetches only 8 bytes in one call, if I´m informed right)?

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16 is also a power of two. –  chepner Feb 17 '13 at 19:19
    
I've never heard of this power of two rule. I recently learned about alignment in class, and it seems like the class should be 12 bytes (padded to match the size of an int). –  gsingh2011 Feb 17 '13 at 19:20
    
Alignment is a power of two, but size isn't. –  Kerrek SB Feb 17 '13 at 19:22
1  
Alignment of an aggregate is normally the maximal alignment of its elements, not the sum. –  n.m. Feb 17 '13 at 19:22

2 Answers 2

up vote 5 down vote accepted

The alignment of a type can never be greater than the size of a type. This is because in an array, there can be no padding between elements.

Just as importantly, though, the alignment of a type may be smaller than the size of the type.

Let's consider your class type: it has three members, two 4-byte integers and one 2-byte integer. Let's assume that the alignment of a 4-byte integer is 4 bytes and the alignment of a 2-byte integer is 2 bytes (this is common). In this case, the alignment of your class type is only 4 bytes. It can be located on any 4-byte boundary and each of its members will be correctly aligned.

This is why your class type has two bytes of padding: 12 is evenly divisible by four, but 10 is not. If your class had no padding, its size would only be 10 bytes, and in an array of elements half of the objects would be misaligned.

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and what would happen if i have a class with a class instance-member that is 12 bytes big? –  immerhart Feb 17 '13 at 19:22
    
@immerhart: Alignment would still probably be four bytes. Bigger/stricter alignment is caused only by stranger data types (maybe long double?), not by stuffing members into a struct. –  aschepler Feb 17 '13 at 19:26
    
@immerhart: In that case, the alignment of that type would be one of 1 byte, 2 bytes, or 4 bytes (those are the factors of 12 that are powers of 2). –  James McNellis Feb 17 '13 at 19:29
    
ok, I think I understood that. could somebody tell me, why a SIMD (16 bytes) should be aligned with 16 bytes and not 4 bytes? –  immerhart Feb 17 '13 at 19:36
    
The SSE instructions require that their operands be aligned on 16 byte boundaries. Thus, SSE data types require alignment on such boundaries. I do not know why the SSE instructions require overaligned data. –  James McNellis Feb 18 '13 at 23:21

A type's alignment can be smaller than, but not bigger than, its size. On a typical 32-bit implementation, your

struct X {
    int a;
    int b;
    char c;
};

would likely have sizeof(X) == 12 and alignof(X) == 4. Obviously you can't have an X every four bytes because they would then overlap, but the alignment means that 0x1000, 0x1004, 0x1008, and 0x100c are all potential places you might begin an X.

Note that the type size as returned by sizeof is always a multiple of the alignment, since sizeof specifies the number of bytes between array elements, and you wouldn't want the first entry in an array to be aligned but not the second.

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