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There is this code:

#include <iostream>

struct A {
   double a;
};

int main(){
   std::cout << alignof(A) << std::endl; // prints 4
   std::cout << alignof(double) << std::endl; // prints 8
   return 0;
}

Why alignment of structure A and raw double type is different? I'm using Linux 32 bit.

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1 Answer 1

up vote 3 down vote accepted

I found a possible explanation here: Implementation of alignof

Amazing facts about alignment

On modern x86 processors, the type double is most efficiently aligned at multiples of 8. And in fact, gcc aligns "free" doubles at multiples of 8 within stack frames. Unfortunately, ancient ABIs require that the alignment of a double within a struct is 4. The unexpected consequence is that, on x86 Linux, gcc has

  struct Double { double d; };
  __alignof__ (double) == 8
  __alignof__ (Double) == 4;

The same ancient ABIs specify that the size of long double is 12. Because the alignment must be a factor of the size, we have the curious situation that:

  __alignof__ (double) == 8
  __alignof__ (long double) == 4;

even though long double "wants" to be at least as aligned as double.

Fortunately, it doesn't matter very much, because we never care about the alignment of types that aren't struct members.

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