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According to cppreference, std::construct_at(T*p, Args&&... args) is equivalent to

return ::new (const_cast<void*>(static_cast<const volatile void*>(p)))
    T(std::forward<Args>(args)...);

What is the need/purpose for the cast 'through' const volatile void*? In other words, why is construct_at not simply equivalent to

return ::new (static_cast<void*>(p))
    T(std::forward<Args>(args)...);

Under which conditions would this latter code cause undesirable behaviour?

1

std::construct_at accepts as T any type... which may have cv-qualifiers.

Meanwhile, static_cast may not cast away constness. The version you propose would fail for

const foo * ptr = get_mem();
ptr = std::construct_at(ptr); // Error here when naively static casting to void*

But static_cast may add cv-qualifiers. So in order to be generic, the version that is standardized avoids this problem. It static casts to the most cv-qualified version of of a void pointer, and then removes those qualifiers.

| improve this answer | |
  • Why not just (void*)p? – Ayxan Haqverdili Aug 9 at 10:55
  • 2
    @Ayxan - C-style cast... ewww – StoryTeller - Unslander Monica Aug 9 at 10:56
  • So the naive version will cause a compiler error, nothing more serious (a run-time error or worse undefined behaviour)? – Walter Aug 9 at 11:03
  • @Walter it would compile for types without const volatile and cause a compile time error for cv qualified types. – Ayxan Haqverdili Aug 9 at 11:07

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