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The output of this program is 28. I don't understand how? According to me this should be 32(4+4+4+4+12)+4(to maintain the alignment)=32. Please explain the reason for displaying the output 28??

struct test{
    char c;
    int d;
    int x;
    int y;
    long double p;
    }t1;

printf("%d",sizeof(t1));
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Which compiler do you use? Does it really have 12bytes long double? –  K-ballo May 24 '12 at 18:58
1  
Btw you should not rely on how padding works. –  user529758 May 24 '12 at 18:59
    
@K-ballo, 'sizeof(long double)' is 12 on my machine. (x64, gcc 4.5.3) –  DaV May 24 '12 at 19:16
    
how about first searching the stackoverflow before posting the question ? thank you. –  Jay D May 31 '12 at 6:11
    
possible duplicate of structure padding and structure packing –  jmort253 Jun 2 '12 at 5:12
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5 Answers 5

up vote 4 down vote accepted

Maybe your "long double" is actually the same as a double (8 bytes), and if you're on a 32bit processor the alignment is 4-byte.

4+4+4+4+8 = 24

What is sizeof(long double)?

EDIT:

I used GCC's __builtin_offset_of() and __alignof__ to investigate. The actual answer that explains the size of the struct is:

4+4+4+4+12 = 28

sizeof(long double) is 12.

No padding is necessary because __alignof__(long double) is 4 and. Interestingly, __alignof__(double) is 8.

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No, I am using the GCC compiler(Code Blocks) and sizeof(long double) is 12. And the processor is also 64bit and in that processor the alignment for long double is considered as 16bytes. –  som May 24 '12 at 19:19
    
Ok, my guess was wrong. On my machine with gcc 4.4.0 (target: mingw32), sizeof(long double) is 12 and the size of that struct is 28. –  David Grayson May 25 '12 at 0:13
    
Please see my edited answer. –  David Grayson May 25 '12 at 0:20
    
please tell me the procedure of how did u investigate through the said method. I searched for the alignment of long double on wikipedia (en.wikipedia.org/wiki/Data_structure_alignment) and according to this the alignment for long double is 16. –  som May 25 '12 at 6:26
    
I just ran this code: printf("%d,%d\n", sizeof(long double), __alignof__(long double)); –  David Grayson May 25 '12 at 6:56
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On a 64 bit system sizes are char - 1 byte(its not 4 bytes) int - 4 bytes long double - 12 bytes

so total is 1+4+4+4+12+padding = 28 bytes!!

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sizeof(char) is 1, yes, but the int following that char must be 4-byte aligned, so the compiler will add 3 bytes of padding between c and d. –  blindauer May 24 '12 at 20:53
    
that is the padding that i have included in the end.. –  Akash May 25 '12 at 7:25
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According to this, long doubles in gcc 32-bit mode (using gcc -m32 or with a gcc that was built to produce 32-bit output, regardless of what your platform actually is) are only 4-byte aligned. Might be good to consult the gcc manual to verify that, though.

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That seems right to me. A field immediately following p would be 4-byte aligned, so there's no need for padding at the end of the structure.

4+4+4+4+12=28

On my system, the output is 32, but on my system, sizeof(long double) is 16. (x86_64, LLVM3).

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The 28 sizeof output is of course correct = 1 byte for char, 3 bytes padding, 3 x 4 int and 12 bytes for long double (96 bits size but 80 bit precision), which makes in total 28 bytes.

Remember that even tho you compile on x86-64 machine, you probably compile for x86-32 machine using mingw32 and that makes a difference.

Mingw32 uses 4 byte allignement for long double.

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