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For the following code snippet,

class A{
  const int a;
  public:
  A(): a(0){}
  A(int m_a):a(m_a){};
  A& operator =(const A &other);
};
A & A::operator =(const A &other)
{
  const_cast<int&>(a) = other.a;
  return *this;
}

what do the lines of

A & A::operator =(const A &other)

const_cast<int&>(a) = other.a;

mean? Or why this operator is defined this way? In other words, I feel confused about its usage and the way it is defined/written.

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In this line -- A(int m_a):a(m_a){}; -- the normal idiom of m_ being prepended to member variables is reversed. The argument to the constructor has the m_ and the member variable doesn't. –  Rob K Sep 14 '11 at 22:09

2 Answers 2

up vote 2 down vote accepted

The const_cast removes the const from the const member a, thus allowing the assignment from other.a to succeed (without the const_cast the type of a would be const int, and thus it wouldn't be modifiable).

Probably the idea is that a is initialized at class construction and can't be modified "by design" in any other place, but the author of the class decided to make an exception for assignment.

I have mixed feelings against this piece of code, very often the use of a const_cast is a symptom of bad design, on the other hand it can be logical to allow assignment but retain the const for all the other operations.

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This is kinda like trying to implement move semantics pre-rvalue references - take a const object and assign yourself whatever resource it is managing and then modify a mutable flag in the source object to indicate it no longer manages the resource. Feels ugly but it was the only way to get it done. –  Praetorian Sep 14 '11 at 21:52
    
IMO, it means more like: a is const ... but anyone can modify it anywhere (*this = A(some_value)) –  UncleBens Sep 14 '11 at 22:17

a is a const member variable. const_cast(a) bypasses the const-correctness rules. Otherwise, you could only assign a in the initializer list of the constructor.

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