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I am reading about copy constructor. can any body tell me what is happening in the below statement

class Base {
public:
Base() {cout << "Base constructor";}
Base(const Base& a) {cout << "copy constructor with const arg";}
Base(Base& a) {cout << "copy constructor with non-const arg"; return a;}
const Base& operator=(Base &a) {cout << "assignment operator with non-const arg"; return a;}
}

void main()
{
    Base a;
    Base b = Base(); // This is neither calling copy constructor nor assignment operator.
}

Please tell me what is happening at "Base b = Base()" statement.

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does it call Base()? –  user1227804 Feb 28 '12 at 12:56

1 Answer 1

Copy constructor will be called in three casess:

When an object is returned by value 
When an object is passed (to a function) by value as an argument 
When an object is thrown 
When an object is caught 
When an object is placed in a brace-enclosed initializer list 

assignment opertator will be called when below:

B b;
b=a;

so your statement:

Base b = Base(); 

does not suit any of the above.

share|improve this answer
    
Then what is happening here. The Base() is creating a temp object, isn't that assigning to b? –  user1235206 Feb 28 '12 at 13:18

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