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I have googled these terms but I am still confused.

Some people said that memberwise copy is deep copy and the bitwise copy is shadow copy but someone said it is not.

Can anyone explain to me that which type of copy of the default copy constructor and the user-defined copy constructor use?

closed as too broad by πάντα ῥεῖ, Bill the Lizard, Rakete1111, Julian, Christian Hackl Mar 12 '17 at 16:46

Please edit the question to limit it to a specific problem with enough detail to identify an adequate answer. Avoid asking multiple distinct questions at once. See the How to Ask page for help clarifying this question. If this question can be reworded to fit the rules in the help center, please edit the question.

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    A deep copy might include copy construction, while bitwise copy doesn't. – πάντα ῥεῖ Mar 12 '17 at 15:47
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    if this question was in fact "too broad" then you would expect to see a multitude of answers, none of which would manage to give it a satisfactory coverage. As we see, so far there have been only two answers, and they both do a pretty decent job at covering it. Please do not vote to close a question just because you are bored to write the lengthy enough text needed to cover it. There are others who do like writing, and will write. – Mike Nakis Mar 13 '17 at 8:07
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Member-wise Copy

Is when you visit each member and explicitly copy it, invoking its copy constructor. It is usually tantamount to deep-copy. It is the right and proper way of copying things. The opposite is bit-wise copy, which is a hack, see below.

Bit-wise Copy

Is a specific form of shallow copy. It is when you simply copy the bits of the source class to the target class, using memcpy() or something similar. Constructors are not invoked, so you tend to get a class which appears to be all right but things start breaking in horrible ways as soon as you start using it. This is the opposite of member-wise copy, and is a quick and dirty hack that can sometimes be used when we know that there are no constructors to be invoked and no internal structures to be duplicated. For a discussion of what may go wrong with this, see this Q&A: C++ bitwise vs memberwise copying?

Shallow Copy

Refers to copying just the immediate members of an object, without duplicating whatever structures are pointed by them. It is what you get when you do a bit-wise copy.

(Note that there is no such thing as "shadow copy". I mean, there is such a thing, in file systems, but that's probably not what you had in mind.)

Deep Copy

Refers to not only copying the immediate members of an object, but also duplicating whatever structures are pointed by them. It is what you normally get when you do member-wise copy.

To summarize:

There are two categories:

  • Shallow Copy
  • Deep Copy

Then, there are two widely used techniques:

  • Bit-wise Copy (a form of Shallow Copy)
  • Member-wise Copy (a form of Deep Copy)

As for the hear-say about someone who said something and someone who said something else: bit-wise copy is definitely always shallow copy. Member-wise copy is usually deep copy, but you may of course foul it up, so you may be thinking that you are making a deep copy while in fact you are not. Proper member-wise copy relies on having proper copy constructors.

Finally:

The default copy constructor will do a bit-wise copy if the object is known to be trivially copyable, or a member-wise copy if not. However, the compiler does not always have enough information to perform a proper copy of each member. For example, a pointer is copied by making a copy of the pointer, not by making a copy of the pointed object. That's why you should generally not rely on the compiler providing you with a default copy constructor when your object is not trivially copyable.

A user-supplied constructor may do whatever type of copy the user likes. Hopefully, the user will choose wisely and do a member-wise copy.

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    The C++11 template std::is_trivially_copyable is intended to determine when shallow copy is valid and specifically when memcpy() is OK. – Persixty Mar 12 '17 at 16:34
  • "For example, a pointer is copied by making a copy of the pointer, not by making a copy of the pointed object." I was looking for a reason behind the name bit-wise and this sentence somehow connects the dots for me, thanks! – harshvchawla Aug 17 '17 at 12:22
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The short version:

  • a bitwise copy is a copy of a block of memory
  • a memberwise copy is a copy that requires intimate knowledge of the structure of data that's being copied

The simplest way to illustrate the difference is with a pointer member:

  • by performing a bitwise copy, you're only gonna copy the address of memory it points to.
  • by performing a memberwise copy, you would make a copy of the memory the pointer points to, and then initialize the copied member pointer with the address to that new memory area

Example:

struct A 
{
   int* m_a;

   A() 
   {
      m_a = new int[1];
   }

   ~A()
   {
     delete [] m_a;
   }
};

A obj;

printf("%p\n", obj.m_a);  // prints: 0x10001000 (for example)

Bitwise copy

A copiedObj = obj;        // the default copy constructor is employed
                          // it will perform a bitwise copy

printf("%p\n", copiedObj.m_a);  // prints: 0x10001000 - the same address

now both obj.m_a and copiedObj.m_a point to the same address in memory.

Notice, that with a class definition like that, if you would try to delete both objects, you would run into a memory access exception (the object to be deleted as the second one would try deallocating the memory that's already been deallocated).

Memberwise copy

struct A 
{
    A(const A& rhs)  // let's define a custom copy constructor
    {
        m_a = new int[1];
        memcpy(m_a, rhs.m_a, sizeof(int) * 1);
    }
}

A copiedObj = a;

printf("%p\n", copiedObj.m_a);  // prints: 0x9a001234 - a totally different address

The custom operation we performed in our custom copy constructor made a copy of the memory the pointer of the original object was pointing to.

Last but not least - memberwise copy is not limited to copy constructors. Think of it as an operation that operates on the memory area an object resides in.

  • The two are one and the same. I meant that by performing a bitwise copy, only the contents of the pointer is gonna be copied. A pointer is just a 4(or 8) byte long value that contains an address of memory. Only that value will be copied, not the memory the address points to. – Piotr Trochim Mar 13 '17 at 14:32

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