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Why isn’t sizeof for a struct equal to the sum of sizeof of each member?

Given the following class, with no other data members:

typedef uint32_t id_t;
typedef int64_t loc_t;

class foo:
{
public:
    enum bar : uint8_t
    {
        BAR1,
        BAR2,
        BAR3
    };
private:
    id_t id;
    loc_t  start;
    loc_t  stop;
    bar std;
};

Can anyone explain why:

sizeof( id_t ) returns 4...
sizeof( loc_t ) returns 8...
sizeof( bar ) returns 1...

4+(2*8)+1 = 21

Yet:

sizeof( foo ) returns 32?

Removing the uint8_t requirement on the bar enum type only succeeds in making sizeof( bar ) return 4 (int) while sizeof( foo ) still returns 32 when 24 would be properly byte aligned.

EDIT: The why has been satisfactorily answered. I thank everyone who commented as each brought a different set of detail to the table.

The fix I need is for being able to use sizeof() to create file location offsets. So that when I write a foo to a file in binary format I can find the location immediately following it if I am later given it's location. I'll update here if I find an elegant solution.

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marked as duplicate by Griwes, sehe, Mooing Duck, Tony D, Daniel Fischer Nov 7 '12 at 1:32

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
It sounds like you're already aware if the concept of alignment. What part of the alignment calculation are you not understanding? –  Mysticial Nov 7 '12 at 0:41
    
I just did not think of the expansion to 8 byte alignment... my thoughts were that 24 bytes (in the case that a bar is actually stored internally as an "int") would be aligned. Below bames53 has explicitly shown me the errors of my judgment. –  user1445306 Nov 7 '12 at 0:57

3 Answers 3

up vote 1 down vote accepted

The type is probably 8 byte aligned due to the int64_ts, so

sizeof(id_t) + 4 bytes padding + 2*sizeof(loc_t) + `sizeof(uint8_t)` + padding up to the next multiple of 8 =
4 + 4 bytes of padding + 16 + 1 + (padding up to the next multiple of 8) =
25 + padding to multiple of 8 =
32

Some compilers have a warning for padding (clang has -Wpadded):

warning: padding class 'foo' with 4 bytes to align 'start' [-Wpadded]
    loc_t  start;
           ^
warning: padding size of 'foo' with 7 bytes to alignment boundary [-Wpadded]
class foo
      ^

You may also be able to control this using compiler extensions such as #pragma pack(1)

#pragma pack(1)
class foo:
{
public:

Of course there's a performance penalty for this, but this way sizeof(foo) comes out as 21 for me on this system.

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I guess I was thinking of byte alignment very incorrectly. Thank you and Sarang for straightening me out. I was thinking that the padding would be less substantial and be more inclined toward 2 or four byte alignment. –  user1445306 Nov 7 '12 at 0:44

That's because of memory alignment. Processor fetches data depending upon width of bus, 32-bit OS will align data on 4 byte boundary and 64-bit OS on 8-byte boundary. Non-Aligned memory requires two memory-reads and leads to degraded performance.

Read all about memory alignment here:

  1. http://www.devx.com/tips/Tip/13265
  2. http://msdn.microsoft.com/en-us/library/83ythb65.aspx
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I ninja edited you sorry. I understand that it will try for some sort of byte alignment. But in the case where the enum takes a full 4 byte integer the total size should be 24 right? And 24 would yield appropriate byte alignment would it not? –  user1445306 Nov 7 '12 at 0:41
    
@user1445306, the alignment is compiler-dependent and architecture-dependent. The total size may be 24, 32, or even 64 or other, if compiler decides that it's best for performance. –  Griwes Nov 7 '12 at 0:48
    
I think I'll have to look and see what all of the values are for my cross compilation tools (embedded Linux for ARM built on x86_64 Linux) –  user1445306 Nov 7 '12 at 1:00

This is due to padding. The compiler may leave "spaces" in your struct, to ensure the variables inside the struct are well-aligned, for more efficient access.

You may override the default struct member alignment (at least in MSVC, by specifying #pragma pack.

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Got the answer for GCC? I tried things like __attribute__((packed)) and ((align... –  user1445306 Nov 7 '12 at 0:45

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