Dismiss
Announcing Stack Overflow Documentation

We started with Q&A. Technical documentation is next, and we need your help.

Whether you're a beginner or an experienced developer, you can contribute.

Sign up and start helping → Learn more about Documentation →

Possible Duplicate:
Why isn't sizeof for a struct equal to the sum of sizeof of each member?

I have the next code:

http://ideone.com/brmRy

#include <stdio.h>
#include <stdlib.h>

typedef struct Test
{
        int a;
        int b;
        char c;
} Test;

int main(void)
{
        Test *obj = (Test*)malloc(sizeof(Test));

        printf("Size results:\r\n\r\nstruct: %i\r\nint #1: %i\r\nint #2: %i\r\nchar #1: %i\r\n", 
                sizeof(Test), sizeof(obj->a), sizeof(obj->b), sizeof(obj->c));

        return 0;
}

The result is:

Size results:

struct: 12

int #1: 4

int #2: 4

char #1: 1

Why DOES struct size 12 bytes??? int - 4 bytes char - 1 byte

2 int + 1 char = 2 * 4 bytes + 1 byte = 9 bytes.

Why does 12 ???

share|improve this question

marked as duplicate by Bo Persson, Daniel Fischer, Hasturkun, Adam Wagner, Tim Sep 22 '12 at 16:54

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.

Memory is commonly aligned on 4-byte boundaries, so even though the char only takes up 1 byte, it's padded by 3 bytes to meet this segmentation requirement. Notably, individual elements of a struct don't have to be aligned, so if you made one of the ints into a short, you could reduce the struct size from 12 to 8 bytes. I believe you'd have to put the short next to the char in the struct declaration to receive this bonus, though.

share|improve this answer
1  
The point of the padding is to have the individual members of the struct suitably aligned, so that (here) the int members are four-byte-aligned. To achieve that, the structs must have (at least) the same alignment requirements as the member with the largest alignment requirements, so padding is inserted to make the size of the struct a multiple of that requirement. You can force(?) a smaller alignment with a pack(ed) attribute or pragma, but there are architectures where misaligned access causes program abortion. – Daniel Fischer Sep 22 '12 at 15:12
    
No, as this example shows (stackoverflow.com/questions/8539348/…) if you have a char, char, short, char, it only takes up 8 bytes. The point of padding is to align the overall struct. To get more of a saving, take a look at bitfields (msdn.microsoft.com/en-us/library/yszfawxh(v=vs.80).aspx). Their use is rather situational though. – 1'' Sep 22 '12 at 15:40
    
shorts will typically be two-byte-aligned, so a struct foo { short bar; char baz; }; will normally be padded to take four bytes. If you have a short and a char next to each other in a struct with an int, you'll again need one byte padding to have the int properly aligned. But in struct foo { short bar; int baz; char quux; }; you'll typically get two bytes padding between the short and the int, and three bytes next to the char (before or after, methinks after is more common), so putting the short and the char next to each other saves (usually) four bytes. – Daniel Fischer Sep 22 '12 at 15:41

If you're using gcc you can force "packing". This means that no nalignment is made and the struct entries stand next to each other. Try

typedef struct Test
{
    int a;
    int b;
    char c;
} __attribute__((packed)) Test;
share|improve this answer
    
I tested on MS C++ and GCC both, the result is idential – user1565077 Sep 22 '12 at 15:26
    
It works for me. gives me "struct: 9" see http://pastebin.com/Nv8bqpJ7 – Peter F. Sep 22 '12 at 15:34