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I read the microsoft documentation about pin_ptr and it is not clear to me if it is release automatically or not. Can anyone shed some light?

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    Why does this quote from the linked doc not answer your question? "An object is pinned only while a pin_ptr points to it. The object is no longer pinned when its pinning pointer goes out of scope, or is set to nullptr. After the pin_ptr goes out of scope, the object that was pinned can be moved in the heap by the garbage collector. Any native pointers that still point to the object will not be updated, and de-referencing one of them could raise an unrecoverable exception." Commented Jan 23, 2018 at 14:59
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    It is automatic. Works the exact same way as the fixed keyword in C# does, cheapest way to pin. Talking about "scope block" is fairly misleading, variables in IL have no scope and the garbage collector already knows when a variable can no longer be used, but in practice it works that way. Commented Jan 23, 2018 at 16:42

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Going off of this bit

The object is no longer pinned when its pinning pointer goes out of scope, or is set to nullptr.

it looks like you don't have to call any release function on a pin_ptr; that it is done automatically.

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    What does a smart pointer have to offer if it never automatically releases it's resource? Commented Jan 23, 2018 at 15:05
  • If a smart pointer requires manual deletion, how can it be called a smart pointer? In what way is it smarter than an ordinary pointer? Commented Jan 23, 2018 at 15:05
  • I suggest you remove the irrelevant part on "bad smartpointers". This seems to be what makes people to downvote the acceptable answer.
    – SergeyA
    Commented Jan 23, 2018 at 15:11
  • Ah, I see. Edited.
    – hegel5000
    Commented Jan 23, 2018 at 15:36
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    Possibly because VTK is language agnostic vtk.org/features-language-agnostic or the smartpointer was added before C++ had move semantics. Commented Jan 23, 2018 at 15:48

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