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Is there a "sizeof if aligned as type T" in the C++ standard library. I speak of something like:

template<class U,class T>
constexpr size_t size_of(const T& x)
{
  return (sizeof(x) + sizeof(U) - 1)/sizeof(U);
}

If I knew the name I would easily find it but searching for functionality is much harder that searching for name.

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Is not alignof what you search? en.cppreference.com/w/cpp/language/alignof –  ForEveR May 29 at 7:23
    
@ForEveR No, alignof gives the alignment, not the size: size_of<size_t>('X')==8 bytes on 64 bit machine, but alignof('X')==1 byte –  user877329 May 29 at 7:26

1 Answer 1

up vote 1 down vote accepted

I'm not aware of any function that provides an "size of X with alignment adjuested to size of U".

Your calculation seems wrong tho, I would use:

return (sizeof(x) + sizeof(U) - 1) & ~(sizeof(U)-1);

This assumes the size of U is always a power of two. If it's not always a power of two, then you need:

return (sizeof(x) + sizeof(U) - 1) - sizeof(x) % sizeof(U);

or

return ((sizeof(x) + sizeof(U) - 1)/sizeof(U)) * sizeof(U);

(Your function calculates the size of x as units of U)

However, if you want to "fix" the alignment of a struct or class, you could use attributes - unfortunately, compilers have different ideas on how to solve this:

in gcc and clang:

struct T { ... } __attribute__((aligned(sizeof(U))));

in msvc and compatible:

__declspec( align( sizeof(U) ) )  struct T { ... }

(I'm not 100% sure that sizeof(U) actually works - you may need to code it as 2, 4, 8, 16 or whatever, and I believe both of these will require the alignment to always be a power of 2)

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"Your function calculates the size of x as units of U": Yes it does. This is also usable because I will use the function to place POD:s so if the value was rescaled I would need to divide back to get units of U. –  user877329 May 29 at 7:38

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