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So what happens to a pointer if you release an object owned by auto_ptr but do not actually assign it to a raw pointer? It seems like it's supposed to be deleted but it never gets the chance to. So does it get leaked out "into the wild"?

void usingPointer(int* p); 

std::auto_ptr<int> point(new int);
*point = 3;

usingPointer(point.release());

Note: I don't use auto_ptr anymore, I use tr1::shared_ptr now. This situation just got me curious.

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Change "So does it get leaked out "into the wild"?" to "So does it get released "into the wild"?" and you'll have your answer, and the inspiration behind the name. :) Yes, release'ing relieves the auto_ptr of all management duties. –  GManNickG Jan 16 '10 at 9:04
    
usingPointer could delete it in this example. However, when you want a plain pointer while still letting the smart pointer manage the object, you'd use point.get() (also with shared_ptr) –  UncleBens Jan 16 '10 at 12:31

2 Answers 2

up vote 2 down vote accepted

release isn't suppose to delete the owned point, from the docs:

Sets the auto_ptr internal pointer to null pointer (which indicates it points to no object) without destructing the object currently pointed by the auto_ptr.

Also, it's overkill to replace all uses of your auto_ptr with tr1::shared_ptr - you should be using unique_ptr where a shared one isn't necessary.

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I mostly replaced it when I realized auto_ptr doesn't apply a const copy constructor, and I would need the pointer to be copied and used among different instances of a class. –  Chris C Jan 16 '10 at 9:22

Unless usingPointer is calling delete on p, this is a memory leak. If you would call get instead of release then the memory will be automatically deleted when point falls out of scope.

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