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

I created a Struct randomly and the size of it surprised me because the result does not equal to my calculation:

int main( int argc, char ** argv ) {
    struct S
    {
        int i;
        int b;
        int c;
        long int e;
    };
    cout << sizeof (struct S) << endl; //sizeof is still an operator
    return 0;
}

Normally, 3*int + 1*long int = 3*4 + 8 = 20.

However, the result is 24.

Where are this 4 bytes comes from?

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marked as duplicate by GWW, Kerrek SB, Alok Save, Pete Becker, Mark B Sep 27 '12 at 15:57

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4  
Memory alignment for performance optimization. –  Sergey Sep 27 '12 at 15:49
2  
Padding –  Seth Carnegie Sep 27 '12 at 15:49
1  
This one could be closed as duplicate. Memory alignment is the cause. –  SinisterMJ Sep 27 '12 at 15:51
    
3  
@Sergey Not just for performance on some architectures: SPARC for example requires aligned access or you get a bus error. –  Mark B Sep 27 '12 at 15:58

1 Answer 1

up vote 5 down vote accepted

Your struct is padded by four bytes, presumably to place long int on the 8-byte boundary to speed up access to it. This is platform-dependent: not all compilers will add these bytes.

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Do you mean 8 rather than 4? (And no, it wouldn't.) –  Kerrek SB Sep 27 '12 at 15:52
    
@KerrekSB From stackoverflow.com/a/119128/1538531: "One can minimize the size of structures by putting the largest data types at the beginning of the structure and the smallest data types at the end of the structure (like structure Z in the example above)." –  Derek Sep 27 '12 at 15:54
2  
@Derek: Think arrays. –  Kerrek SB Sep 27 '12 at 15:56
1  
@Derek Won't make any difference in this case (if the compiler decides that a long has alignment 8 then the same is true for the whole struct even/in particular when the long is the first data member, and so the size will be padded to 24 so that the invariant regarding the relationship of alignment in arrays and sizeof holds). –  Seg Fault Sep 27 '12 at 15:57
2  
@Derek In e.g. struct foo { char a; long b; char c; long d; int e; }; you will probably get padding after both of the chars and the int, for a total of 7 + 7 + 4 = 18 bytes of padding (if long is 8 bytes and int 4), while struct bar { long b, d; int e; char a, c; }; would only get 2 bytes of padding at the end needed to make the size a multiple of 8. That's the point of ordering by data size. –  Daniel Fischer Sep 27 '12 at 16:05

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