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No code to show but a general question

If you have a class that has a unique ptr in it, how is the difference between shallow copy and deep copy relevant?

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    since the copy ctor of std::unique_ptr<T> is deleted, compiler cannot generate the default copy ctor (which performs shallow copy for raw pointers) for a class that contains std::unique_ptr. And when implementing copy ctor by hand, deep copy must be used to ensure correctness. The deprecated std::auto_ptr is an negative example. – test failed in 1.08s Oct 19 '20 at 9:44
  • The big difference is that shallow copy is impossible, deep copy isn't. – molbdnilo Oct 19 '20 at 11:56
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Shallow copy will leave you with double-free and dangling pointer errors, generally UB.

You can't have shallow copy with std::unique_ptr<T> members since the whole point of std::unique_ptr<T> is single ownership. On the other hand a type with members of typestd::shared_ptr<T> will work as expected, since shared_ptr is reference counted.

To expand upon the above difference from another direction, in an attempt to better explain the comment, the unique ownership premise of unique_ptr requires both unique_ptr(const unique_ptr<T>&) and unique_ptr& operator=(const unique_ptr<T>&) be = delete; since either would violate the guarantee. Moreover, you'll need to provide some extension method which allowed cloning the pointed to object. shared_ptr conceptually involves incrementing a reference count in either case and there's no cloning required.

You could, in theory, allocate objects from some other reusable pool and provide a custom deleter to your unique_ptr which does nothing. But why bother? Simply use shared_ptr if you want shared ownership.

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  • “Shallow copy will leave you with double-free and dangling pointer errors, generally UB.” — No, that isn’t true. Default copying does. This isn’t the same thing as shallow copying, however. There are implementations of shallow copying that are neither UB nor leak (notably via std::shared_ptr). – Konrad Rudolph Oct 19 '20 at 9:58
  • @KonradRudolph But isn't default copying shallow copying? What's the difference? – Tanveer Badar Oct 19 '20 at 10:00
  • No it isn’t. “shallow” just means the opposite of deep copying, i.e. no transitive copy constructor calling on nested objects. – Konrad Rudolph Oct 19 '20 at 10:02
  • @KonradRudolph I beg to differ with you on that. We clearly have somewhat different ideas of what either of us considers shallow copying. I will, however, read more on the subject and update this answer in the future if my views change. – Tanveer Badar Oct 19 '20 at 10:09
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    unique_ptr(const T&) you probably mean unique_ptr(const unique_ptr&) i.e. the copy constructor – JHBonarius Oct 19 '20 at 10:20
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Shallow copying pointers with default copy constructor will leave you with dangling pointers. (pointer to unallocated/freed memory)

unique_ptr is non-copyable. The pointer can be only moved into another unique_ptr or made into shared_ptr. The whole purpose of unique_ptr is to have one reference (in this case a pointer) to some block of memory

This means that shallow copy with unique_ptr is impossible.

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