Why does the sizeof operator return a size larger for a structure than the total sizes of the structure's members?
This is because of padding added to satisfy alignment constraints. Data structure alignment impacts both performance and correctness of programs:
Mis-aligned access might be a hard error (often SIGBUS).
Mis-aligned access might be a soft error.
Either corrected in hardware, for a modest performance-degradation.
Or corrected by emulation in software, for a severe performance-degradation.
In addition, atomicity and other concurrency-guarantees might be broken, leading to subtle errors.
Here's an example using typical settings for an x86 processor (all used 32 and 64 bit modes):
struct X
{
short s; /* 2 bytes */
/* 2 padding bytes */
int i; /* 4 bytes */
char c; /* 1 byte */
/* 3 padding bytes */
};
struct Y
{
int i; /* 4 bytes */
char c; /* 1 byte */
/* 1 padding byte */
short s; /* 2 bytes */
};
struct Z
{
int i; /* 4 bytes */
short s; /* 2 bytes */
char c; /* 1 byte */
/* 1 padding byte */
};
const int sizeX = sizeof(struct X); /* = 12 */
const int sizeY = sizeof(struct Y); /* = 8 */
const int sizeZ = sizeof(struct Z); /* = 8 */
One can minimize the size of structures by sorting members by alignment (sorting by size suffices for that in basic types) (like structure Z in the example above).
IMPORTANT NOTE: Both the C and C++ standards state that structure alignment is implementation-defined. Therefore each compiler may choose to align data differently, resulting in different and incompatible data layouts. For this reason, when dealing with libraries that will be used by different compilers, it is important to understand how the compilers align data. Some compilers have command-line settings and/or special #pragma statements to change the structure alignment settings.
Packing and byte alignment, as described in the C FAQ here:
It's for alignment. Many processors can't access 2- and 4-byte
quantities (e.g. ints and long ints) if they're crammed in
every-which-way.
Suppose you have this structure:
struct {
char a[3];
short int b;
long int c;
char d[3];
};
Now, you might think that it ought to be possible to pack this
structure into memory like this:
+-------+-------+-------+-------+
| a | b |
+-------+-------+-------+-------+
| b | c |
+-------+-------+-------+-------+
| c | d |
+-------+-------+-------+-------+
But it's much, much easier on the processor if the compiler arranges
it like this:
+-------+-------+-------+
| a |
+-------+-------+-------+
| b |
+-------+-------+-------+-------+
| c |
+-------+-------+-------+-------+
| d |
+-------+-------+-------+
In the packed version, notice how it's at least a little bit hard for
you and me to see how the b and c fields wrap around? In a nutshell,
it's hard for the processor, too. Therefore, most compilers will pad
the structure (as if with extra, invisible fields) like this:
+-------+-------+-------+-------+
| a | pad1 |
+-------+-------+-------+-------+
| b | pad2 |
+-------+-------+-------+-------+
| c |
+-------+-------+-------+-------+
| d | pad3 |
+-------+-------+-------+-------+
If you want the structure to have a certain size with GCC for example use __attribute__((packed)).
On Windows you can set the alignment to one byte when using the cl.exe compier with the /Zp option.
Usually it is easier for the CPU to access data that is a multiple of 4 (or 8), depending platform and also on the compiler.
So it is a matter of alignment basically.
You need to have good reasons to change it.
This can be due to byte alignment and padding so that the structure comes out to an even number of bytes (or words) on your platform. For example in C on Linux, the following 3 structures:
#include "stdio.h"
struct oneInt {
int x;
};
struct twoInts {
int x;
int y;
};
struct someBits {
int x:2;
int y:6;
};
int main (int argc, char** argv) {
printf("oneInt=%zu\n",sizeof(struct oneInt));
printf("twoInts=%zu\n",sizeof(struct twoInts));
printf("someBits=%zu\n",sizeof(struct someBits));
return 0;
}
Have members who's sizes (in bytes) are 4 bytes (32 bits), 8 bytes (2x 32 bits) and 1 byte (2+6 bits) respectively. The above program (on Linux using gcc) prints the sizes as 4, 8, and 4 - where the last structure is padded so that it is a single word (4 x 8 bit bytes on my 32bit platform).
oneInt=4
twoInts=8
someBits=4
See also:
for Microsoft Visual C:
http://msdn.microsoft.com/en-us/library/2e70t5y1%28v=vs.80%29.aspx
and GCC claim compatibility with Microsoft's compiler.:
https://gcc.gnu.org/onlinedocs/gcc-4.6.4/gcc/Structure_002dPacking-Pragmas.html
In addition to the previous answers, please note that regardless the packaging, there is no members-order-guarantee in C++. Compilers may (and certainly do) add virtual table pointer and base structures' members to the structure. Even the existence of virtual table is not ensured by the standard (virtual mechanism implementation is not specified) and therefore one can conclude that such guarantee is just impossible.
I'm quite sure member-order is guaranteed in C, but I wouldn't count on it, when writing a cross-platform or cross-compiler program.
The size of a structure is greater than the sum of its parts because of what is called packing. A particular processor has a preferred data size that it works with. Most modern processors' preferred size if 32-bits (4 bytes). Accessing the memory when data is on this kind of boundary is more efficient than things that straddle that size boundary.
For example. Consider the simple structure:
struct myStruct
{
int a;
char b;
int c;
} data;
If the machine is a 32-bit machine and data is aligned on a 32-bit boundary, we see an immediate problem (assuming no structure alignment). In this example, let us assume that the structure data starts at address 1024 (0x400 - note that the lowest 2 bits are zero, so the data is aligned to a 32-bit boundary). The access to data.a will work fine because it starts on a boundary - 0x400. The access to data.b will also work fine, because it is at address 0x404 - another 32-bit boundary. But an unaligned structure would put data.c at address 0x405. The 4 bytes of data.c are at 0x405, 0x406, 0x407, 0x408. On a 32-bit machine, the system would read data.c during one memory cycle, but would only get 3 of the 4 bytes (the 4th byte is on the next boundary). So, the system would have to do a second memory access to get the 4th byte,
Now, if instead of putting data.c at address 0x405, the compiler padded the structure by 3 bytes and put data.c at address 0x408, then the system would only need 1 cycle to read the data, cutting access time to that data element by 50%. Padding swaps memory efficiency for processing efficiency. Given that computers can have huge amounts of memory (many gigabytes), the compilers feel that the swap (speed over size) is a reasonable one.
Unfortunately, this problem becomes a killer when you attempt to send structures over a network or even write the binary data to a binary file. The padding inserted between elements of a structure or class can disrupt the data sent to the file or network. In order to write portable code (one that will go to several different compilers), you will probably have to access each element of the structure separately to ensure the proper "packing".
On the other hand, different compilers have different abilities to manage data structure packing. For example, in Visual C/C++ the compiler supports the #pragma pack command. This will allow you to adjust data packing and alignment.
For example:
#pragma pack 1
struct MyStruct
{
int a;
char b;
int c;
short d;
} myData;
I = sizeof(myData);
I should now have the length of 11. Without the pragma, I could be anything from 11 to 14 (and for some systems, as much as 32), depending on the default packing of the compiler.
C99 N1256 standard draft
http://www.open-std.org/JTC1/SC22/WG14/www/docs/n1256.pdf
6.5.3.4 The sizeof operator:
3 When applied to an operand that has structure or union type,
the result is the total number of bytes in such an object,
including internal and trailing padding.
6.7.2.1 Structure and union specifiers:
13 ... There may be unnamed
padding within a structure object, but not at its beginning.
and:
15 There may be unnamed padding at the end of a structure or union.
The new C99 flexible array member feature (struct S {int is[];};) may also affect padding:
16 As a special case, the last element of a structure with more than one named member may
have an incomplete array type; this is called a flexible array member. In most situations,
the flexible array member is ignored. In particular, the size of the structure is as if the
flexible array member were omitted except that it may have more trailing padding than
the omission would imply.
Annex J Portability Issues reiterates:
The following are unspecified: ...
The value of padding bytes when storing values in structures or unions (6.2.6.1)
C++11 N3337 standard draft
http://www.open-std.org/jtc1/sc22/wg21/docs/papers/2012/n3337.pdf
5.3.3 Sizeof:
2 When applied
to a class, the result is the number of bytes in an object of that class including any padding required for
placing objects of that type in an array.
9.2 Class members:
A pointer to a standard-layout struct object, suitably converted using a reinterpret_cast, points to its
initial member (or if that member is a bit-field, then to the unit in which it resides) and vice versa. [ Note:
There might therefore be unnamed padding within a standard-layout struct object, but not at its beginning,
as necessary to achieve appropriate alignment. — end note ]
I only know enough C++ to understand the note :-)
It can do so if you have implicitly or explicitly set the alignment of the struct. A struct that is aligned 4 will always be a multiple of 4 bytes even if the size of its members would be something that's not a multiple of 4 bytes.
Also a library may be compiled under x86 with 32-bit ints and you may be comparing its components on a 64-bit process would would give you a different result if you were doing this by hand.
C language leaves compiler some freedom about the location of the structural elements in the memory:
memory holes may appear between any two components, and after the last component. It was due to the fact that certain types of objects on the target computer may be limited by the boundaries of addressing
"memory holes" size included in the result of sizeof operator. The sizeof only doesn't include size of the flexible array, which is available in C/C++
Some implementations of the language allow you to control the memory layout of structures through the pragma and compiler options
The C language provides some assurance to the programmer of the elements layout in the structure:
compilers required to assign a sequence of components increasing memory addresses
Address of the first component coincides with the start address of the structure
unnamed bit fields may be included in the structure to the required address alignments of adjacent elements
Problems related to the elements alignment:
Different computers line the edges of objects in different ways
Different restrictions on the width of the bit field
Computers differ on how to store the bytes in a word (Intel 80x86 and Motorola 68000)
How alignment works:
The volume occupied by the structure is calculated as the size of the aligned single element of an array of such structures. The structure should
end so that the first element of the next following structure does not the violate requirements of alignment
p.s More detailed info are available here: "Samuel P.Harbison, Guy L.Steele C A Reference, (5.6.2 - 5.6.7)"
The idea is that for speed and cache considerations, operands should be read from addresses aligned to their natural size. To make this happen, the compiler pads structure members so the following member or following struct will be aligned.
struct pixel {
unsigned char red; // 0
unsigned char green; // 1
unsigned int alpha; // 4 (gotta skip to an aligned offset)
unsigned char blue; // 8 (then skip 9 10 11)
};
// next offset: 12
The x86 architecture has always been able to fetch misaligned addresses. However, it's slower and when the misalignment overlaps two different cache lines, then it evicts two cache lines when an aligned access would only evict one.
Some architectures actually have to trap on misaligned reads and writes, and early versions of the ARM architecture (the one that evolved into all of today's mobile CPUs) ... well, they actually just returned bad data on for those. (They ignored the low-order bits.)
Finally, note that cache lines can be arbitrarily large, and the compiler doesn't attempt to guess at those or make a space-vs-speed tradeoff. Instead, the alignment decisions are part of the ABI and represent the minimum alignment that will eventually evenly fill up a cache line.
TL;DR: alignment is important.
In addition to the other answers, a struct can (but usually doesn't) have virtual functions, in which case the size of the struct will also include the space for the vtbl.
Among the other well-explained answers about memory alignment and structure padding/packing, there is something which I have discovered in the question itself by reading it carefully.
"Why isn't sizeof for a struct equal to the sum of sizeof of each member?"
"Why does the sizeof operator return a size larger for a structure than the total sizes of the structure's members"?
Both questions suggest something what is plain wrong. At least in a generic, non-example focused view, which is the case here.
The result of the sizeof operand applied to a structure object can be equal to the sum of sizeof applied to each member separately. It doesn't have to be larger/different.
If there is no reason for padding, no memory will be padded.
One most implementations, if the structure contains only members of the same type:
struct foo {
int a;
int b;
int c;
} bar;
Assuming sizeof(int) == 4, the size of the structure bar will be equal to the sum of the sizes of all members together, sizeof(bar) == 12. No padding done here.
Same goes for example here:
struct foo {
short int a;
short int b;
int c;
} bar;
Assuming sizeof(short int) == 2 and sizeof(int) == 4. The sum of allocated bytes for a and b is equal to the allocated bytes for c, the largest member and with that everything is perfectly aligned. Thus, sizeof(bar) == 8.
This is also object of the second most popular question regarding structure padding, here:
Memory alignment in C-structs
given a lot information(explanation) above.
And, I just would like to share some method in order to solve this issue.
You can avoid it by adding pragma pack
#pragma pack(push, 1)
// your structure
#pragma pack(pop)
If there is a C structure like
struct abc
{
uint16_t port_no; //2 Bytes
uint8_t src_mac[6]; //6 Bytes
}
How would the compiler apply padding to align into 4 byte word on 32 bit sys:
Will it be
2 Bytes
Pad[2]
6 Bytes
Pad[2]
or
2 Byte
6 Byte
That depends on the architecture of the system.
On a 32-bit MIPS your structure would have no
padding whatsoever because uint16_t must be aligned
even addresses and uint8_t need not be aligned at all.
However a variable of type struct abc would be aligned at
even addresses thereby eventually forcing padding outside the
struct (say, when struct abc is a member of a surrounding struct).
In C/C++ every type has a size and an alignment that can differ from architecture to architecture, kernel or even just C/C++ ABI.
Gcc provides a function __alignof__ and C++11 has an alignof(type-id) function oficially that can be used to print the alignment requirement for a type. Plain C doesn't seem to have that but each type still has that property.
In memory every type has to be aligned to at least the alignment requirement and the compiler will insert padding into structs that ensure that is the case. The struct as a whole then has the largest alignment required for any of its members and a size that includes padding to a multiple of the alignment of the struct.
Generally an uint16_t has a 2 byte aligment requirement and chars a 1 byte alignment requirement. So th struct has a 2 byte alignment requirement and no padding is needed at all. Giving a total size of 8 byte for the struct.
But beware that the calling conventions for an architecture can require more alignment or padding for one reason or another.
Padding is on by default. It inserts "gaps" into your structure automatically. It comes out as though there were a fourth intervening variable, like this:
struct abc
{
uint16_t port_no; // 2 Bytes
char pad_0[2]; // 2 Bytes
uint8_t src_mac[6]; // 6 Bytes
char pad_1[2]; // 2 Bytes
}
This question already has answers here:
Why isn't sizeof for a struct equal to the sum of sizeof of each member?
(13 answers)
Closed 8 years ago.
I've made a doubly linked structure in C, and need to know how to calculate the size of custom made structures. I understand the size of certain data types, and that pointers are 8 bytes on my machine.
However when I create this data type
struct doublylinked {
int data;
struct doublylinked *next;
struct doublylinked *prev;
};
I get that all the values inside add up to 20 bytes in total.
size of data = 4
size of next = 8
size of prev = 8
However when I print out the size of this data type it equals 24.
size of doublylinked = 24
Where are these extra 4 bytes coming from?
Thanks
The extra space come from the padding added by the compiler, which make access faster on some CPU.
It might actually look like this in memory:
data [4 bytes]
padding [4 bytes] <- That way, next is aligned on a multiple of his own size
next [8 bytes]
prev [8 bytes]
The 8-byte next and prev variables need to have an 8-byte alignment.
In other words, they need to be located in memory addresses divisible by 8.
So the compiler adds a 4-byte padding before or after the 4-byte data variable.
Please note that this is generally platform-dependent (i.e., some processors may support unaligned load/store operations, in which case, the compiler may choose to avoid the padding).
This question already has answers here:
Are stack variables aligned by the GCC __attribute__((aligned(x)))?
(4 answers)
Closed 5 years ago.
I have the following local variable (that will get stored in the stack).
struct test1 {
int a;
int b;
char c;
};
How do I align the starting address of integer a to a 16byte boundary in the stack?
I am running this C code on a custom written MIPS ISA processor.
Here is some non-standard way of aligning your data.
struct test1 *pdata;
// here we assume data on stack is word aligned
pdata = alloca(sizeof(*pdata) + 14);
if (pdata & 0xF)
{
pdata = (unsigned char*)pdata + 16 - (pdata & 0xF);
}
AFAIK On MIPS ISA C compilers are forced align to word boundaries in this case, just add an int (which is 32 bit) to the structure. so:
struct test1 {
int a; // 4 bytes
int b; // 4 bytes
int foralign;// 4 bytes for 16 byte alignment
char c; // 1 byte but will be aligned 4 bytes
};
Unfortunately there's no standard way to get objects aligned like that. There's almost always some compiler-specific trick, such as __attribute__ in GCC, but you'll have to check your compiler's documentation.
(Of course there's no standard use for that kind of alignment either, which is why there's no standard method for achieving it. So you're probably resorting to extensions already, so there's no real harm going further.)
A union that contains a large-enough elemental object often does the trick, but I believe the largest elemental C objects for MIPS CPUs are long long and double, which are only 8 bytes.
This question already has answers here:
Closed 13 years ago.
Possible Duplicate:
Why isn’t sizeof for a struct equal to the sum of sizeof of each member?
Consider the following C code:
#include <stdio.h>
struct employee
{
int id;
char name[30];
};
int main()
{
struct employee e1;
printf("%d %d %d", sizeof(e1.id), sizeof(e1.name), sizeof(e1));
return(0);
}
The output is:
4 30 36
Why is the size of the structure not equal to the sum of the sizes of its individual component variables?
The compiler may add padding for alignment requirements. Note that this applies not only to padding between the fields of a struct, but also may apply to the end of the struct (so that arrays of the structure type will have each element properly aligned).
For example:
struct foo_t {
int x;
char c;
};
Even though the c field doesn't need padding, the struct will generally have a sizeof(struct foo_t) == 8 (on a 32-bit system - rather a system with a 32-bit int type) because there will need to be 3 bytes of padding after the c field.
Note that the padding might not be required by the system (like x86 or Cortex M3) but compilers might still add it for performance reasons.
As mentioned, the C compiler will add padding for alignment requirements. These requirements often have to do with the memory subsystem. Some types of computers can only access memory lined up to some 'nice' value, like 4 bytes. This is often the same as the word length. Thus, the C compiler may align fields in your structure to this value to make them easier to access (e.g., 4 byte values should be 4 byte aligned) Further, it may pad the bottom of the structure to line up data which follows the structure. I believe there are other reasons as well. More info can be found at this wikipedia page.
Your default alignment is probably 4 bytes. Either the 30 byte element got 32, or the structure as a whole was rounded up to the next 4 byte interval.
Aligning to 6 bytes is not weird, because it is aligning to addresses multiple to 4.
So basically you have 34 bytes in your structure and the next structure should be placed on the address, that is multiple to 4. The closest value after 34 is 36. And this padding area counts into the size of the structure.