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This question already has an answer here:

I just came across this simple code snippet and am wondering why output of this program when it's compiled by a C compiler is 4 and when it's compiled by a C++ one is 8.

#include <stdio.h>

int x;

int main(){
    struct x {int a; int b;};
    printf("%d", sizeof(x));
    return 0;
}

C++ output is rational (8 = 4 + 4 = sizeof(x.a) + sizeof(x.b)), but output of C isn't. So, how does sizeof work in C?

Seems C prefers global variables over local ones. Is it right?

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marked as duplicate by Adam Maras, Martin R, Mat c Jan 8 at 8:53

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12  
As much as I can remember in C you cannot ommit struct unless you typedef it – Slava Jan 7 at 19:19
5  
This is a known trick for the interview question 'how would you write a program which would print out C or C++ depending on it's compiler without use of any preprocessor macro' – SergeyA Jan 7 at 19:26
1  
@SergeyA Much more simply, check sizeof('a'). – black Jan 7 at 20:17
2  
@black: That doesn't distinguish between C++ and a C implementation with sizeof (int) == 1 (which implies CHAR_BIT >= 16). – Keith Thompson Jan 7 at 20:21
1  
The correct format for printing a size_t value (such as the result of sizeof) is "%zu", not "%d". Or, if you're stuck with an old implementation that doesn't support it: printf("%d\n", (int)sizeof(x));. (The \n is highly recommended; failing print a newline at the end of a text stream may cause undefined behavior.) – Keith Thompson Jan 7 at 20:31
up vote 70 down vote accepted

In C, a struct definition like struct x { int a; int b; }; does not define a type x, it defines a type struct x. So if you remove the int x; global, you'll find the C version does not compile.

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7  
My brain entirely glossed over the the global declaration of x. – user1717828 Jan 8 at 0:08

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