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I am just starting C++. I am a bit confused about the return type of assignment and dereference operator. I am following the book C++ Primer. At various occasions, the author says that the return type of assignment operator is reference to the type of left hand operand but later on, he says that the return type is the type of the left hand operand. I have referred C++11 Standard Sec. 5.17, where the return type is described as "lvalue referring to left hand operand".

Similarly, I can't figure out whether dereference returns the pointed-to object or the reference to the object.

Are these statements equivalent? If so, then how? Any explanation would be appreciated.

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    Plz everyone take note. thanks for all the replies but i did not mean to ask about operator overloading. i m not there yet, i was just asking about assignment operation built in the language. – rahul1210 Mar 8 '13 at 11:53
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The standard correctly defines the return type of an assignment operator. Actually, the assignment operation itself doesn't depend on the return value - that's why the return type isn't straightforward to understanding.

The return type is important for chaining operations. Consider the following construction: a = b = c;. This should be equal to a = (b = c), i.e. c should be assigned into b and b into a. Rewrite this as a.operator=(b.operator=(c)). In order for the assignment into a to work correctly the return type of b.operator=(c) must be reference to the inner assignment result (it will work with copy too but that's just an unnecessary overhead).

The dereference operator return type depends on your inner logic, define it in the way that suits your needs.

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    "The standard correctly defines the return type of an assignment operator" - how? – Luchian Grigore Mar 8 '13 at 11:53
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    @LuchianGrigore as OP has quoted: C++11 Standard Sec. 5.17, where the return type is described as "lvalue referring to left hand operand". – SomeWittyUsername Mar 8 '13 at 11:58
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    This last comment is already more useful than the whole answer. – Javi V Mar 7 '16 at 12:43
9

They can both be anything, but usually operator = returns the current object by reference, i.e.

A& A::operator = ( ... )
{
   return *this;
}

And yes, "reference to the type of left hand operand" and "lvalue referring to left hand operand" mean the same thing.

The dereference operator can have basically any return type. It mostly depends on the logic of the program, because you're overloading the operator that applies to an object, not to a pointer to the object. Usually, this is used for smart pointers, or iterators, and return the object they wrap around:

struct smart_ptr
{
   T* innerPtr;
   T* smart_ptr::operator* ()
   {
      return innerPtr;
   }
}

smart_ptr p; 
T* x = *p;  
  • Can you please expand on the "lvalue referring to left hand operand" meaning the same as "reference to the type of left hand operand". Is reference an lvalue? – rahul1210 Mar 8 '13 at 11:49
  • @user2148032 yes, a reference is an lvalue. The left hand operand is the object itself (because x = y has the left hand operand x). – Luchian Grigore Mar 8 '13 at 11:51
  • thanks i think i got it – rahul1210 Mar 8 '13 at 11:56
1

I have seen similar issues, but I guess it would be best to use

X& X::operator=(const X&);

Using this, you will be able to reuse the object in a chain-assignment.

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