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Consider the following code.

#include <iostream>

using namespace std;


class Test
{
        private:
                int x,y;
        public:
                Test () {
                        cout <<" Inside Constructor "<<endl;
                        x=100;
                }   
                explicit Test (const Test & t)
                {   
                        cout <<"Inside Copy Constructor "<<endl;
                        x = t.x;
                }   
                void display()
                {   
                        cout <<" X is "<<x<<endl;
                }   

};



int main (int argc, char ** argv){
  Test t;
  t.display(); 

 cout <<"--- Using Copy constructor "<<endl;
 Test t2(t);
 t2.display (); 

 Test t3=t2;
 t3.display (); 

}

Test (const Test & t) -> is a copy constructor

Question:

Is the same used as a "Conversion Operator" ? Test t3 = t2 [ Here copy Constructor is treated as a conversion operator]

I am not sure if my understanding is correct?. Kindly correct me if i am wrong?

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1  
This code has no conversion operator anywhere in it. Not even a conversion constructor nor a conversion assignment. In fact, there's no conversions in your code at all. –  Mooing Duck Sep 14 '12 at 18:20

3 Answers 3

 Test t3=t2;

Should never compile, if copy c-tor is explicit.

n3337 12.3.1/3

A non-explicit copy/move constructor (12.8) is a converting constructor. An implicitly-declared copy/move constructor is not an explicit constructor; it may be called for implicit type conversions.

This quote appears to following question: Implicit copy constructor

So, in your case, it's not conversion constructor.

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what if i remove the explicit?, then is it treated as a conversion operator? –  Whoami Sep 14 '12 at 15:28
    
@Whoami as conversion c-tor, not conversion operator. –  ForEveR Sep 14 '12 at 15:29
    
sorry. :). So, copy constructor is also a conversion constructor if not explicit? –  Whoami Sep 14 '12 at 15:31
    
@Whoami it may be used for implicit conversions, yeah. –  ForEveR Sep 14 '12 at 15:35
    
So, what understand is: implicit copy constructor is not an 'explicit copy constructor', and implicit copy constructor is a converting constructor, and it may be used for 'implicit type conversion'. KIndly correct me if my understanding is wrong? –  Whoami Sep 16 '12 at 7:11

In C++, the term conversion implies two different types : source type and destination type.

Copy-constructor, by definition, involves only one type : source type and destination type are same. So it cannot be called a conversion function.

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Not true, according to standard. –  ForEveR Sep 14 '12 at 15:29
    
@ForEveR: What exactly is wrong? –  Nawaz Sep 14 '12 at 15:30
1  
@ForEveR: Please elaborate. –  Nawaz Sep 14 '12 at 15:32
2  
@ForEveR: Why I think it doesn't make sense to me is that in implicit conversions the parameter gets converted into the class type before the copy-constructor is called, because as we know the copy-constructor of class T takes argument of type T const& (usually); it doesn't take argument of U. So the copy-constructor technically doesn't "convert" anything as such. –  Nawaz Sep 14 '12 at 15:47
1  
Taking in acoount answer to my question in stackoverflow.com/questions/12428308/… - it's really conversion constructor. –  ForEveR Sep 14 '12 at 16:26

when you use T t3 = t2. It will call the assignment operator which you haven't define it.

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2  
No – it doesn’t. –  Konrad Rudolph Sep 14 '12 at 15:25
    
t3 = t2; would call assignment, T t3 = t2; doesn't. –  Borgleader Sep 14 '12 at 15:32
    
@Borgleader Well, i see, thanks. –  cheneydeng Sep 14 '12 at 15:34
    
You needn't define a assignment operator in this case. –  Rontogiannis Aristofanis Sep 14 '12 at 16:08

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