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Does delete ptr differ from operator delete(ptr) only in this, that delete calls ptr destructor? Or in other words, does delete ptr first call a destructor of ptr and then operator delete(ptr) to free allocated memory? Then is delete ptr technically equivalent to the following:

T * ptr = new T;

//delete ptr equivalent:
ptr->~T();
::operator delete(static_cast<void *>(ptr));

?

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3  
Yes, that's the only difference, besides the fact that you can overload operator delete. – Seth Carnegie May 13 '12 at 17:22
up vote 5 down vote accepted

delete ptr will do overload resolution for operator delete, so it may not call the global ::operator delete

But otherwise, yes. The delete operator calls the relevant destructor, if any, and then calls operator delete.

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