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I am missing something about shared/weak pointers:

When a shared_ptr is constructed using make_shared, only one memory allocation is used (to allocate memory for control block and object itself). What happens when last shared_ptr is destroyed but there are weak_ptr-s left? At this point managed object has to be deallocated. But if memory allocated by make_shared gets deallocated, that would make weak pointers invalid, since same deallocation would destroy control block.

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1  
20.7.2.2.6/6: "Remarks: Implementations are encouraged, but not required, to perform no more than one memory allocation." (Emphasis mine.) – cHao Aug 28 '13 at 20:36
up vote 8 down vote accepted

With make_shared and allocate_shared, there's only one single reference control block that contains the object itself. It looks something like this:

struct internal_memory_type
{
    unsigned char[sizeof T] buf;   // make sure the object is at the top for
                                   // efficient dereferencing!
    // book keeping data
} internal_memory;

The object is constucted in-place: ::new (internal_memory.buf) T(args...).

Memory for the entire block is allocated with ::operator new, or in case of allocate_shared with the allocator's allocate() function.

When the object is no longer needed, the destructor is called on the object itself, some thing like internal_memory.buf->~T();. When the reference control block is no longer needed, i.e. when all the weak references have disappeared as well as all the strong ones, the reference control block as a whole is freed with ::operator delete, or with the allocator's deallocate() function for allocate_shared.

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So when shared pointer count goes to zero, object memory may not be immediately freed, only destructor is called? – user2052436 Aug 28 '13 at 20:37
    
@user2052436: Naturally :-) – Kerrek SB Aug 28 '13 at 20:37
1  
one more question: this means if there is a cycle of weak pointers, the memory will be consumed during entire program life, even if there are no shared pointers left? – user2052436 Aug 28 '13 at 20:40
1  
@user2052436: Thing is, A and B aren't keeping each other alive, because they only have weak pointers to each other. Once all the shared pointers to A are gone, A -- and the weak_ptr it contains -- will be destroyed. – cHao Aug 28 '13 at 20:52
1  
@user2052436: Think again what the problem of a cycle is: You have two smart pointers that both die, but they keep the resource alive. That can't happen with weak pointers. When all the weak pointers die, the resource does die as well. The weak pointers don't observe each other, but the common shared pointer. – Kerrek SB Aug 28 '13 at 20:56

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