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#include <iostream>
#include <string.h>

using namespace std;

class withCC
{
public:
    withCC() {}
    withCC(const withCC&) {
        cout<<"withCC(withCC&)"<<endl;
    }
};

class woCC
{
    enum {bsz = 100};
    char buf[bsz];
public:
    woCC(const char* msg = 0) {
        memset(buf, 0, bsz);
        if(msg) strncpy(buf, msg, bsz);
    }
    void print(const char* msg = 0)const {
        if(msg) cout<<msg<<":";
        cout<<buf<<endl;
    }
};

class composite
{
    withCC WITHCC;
    woCC WOCC;
public:
    composite() : WOCC("composite()") {}
    void print(const char* msg = 0) {
        cout<<"in composite:"<<endl;
        WOCC.print(msg);
    }
};

int main()
{
    composite c;
    c.print("contents of c");
    cout<<"calling composite copy-constructor"<<endl;
    composite c2 = c;
    c2.print("contents of c2");
}

The running result is below:

$ ./a.out 
in composite:
contents of c:composite()
calling composite copy-constructor
withCC(withCC&)
in composite:
contents of c2:composite()

And I don't understand why withCC(withCC&) is given as part of output. I guess composite c2 = c; causes copy-constructor to be executed. But as below shown, WITHCC is part of class composite, why it will be invoked to handle this copy-constructor? Thanks!

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4  
Because a copy needs to be made? –  Oliver Charlesworth Jan 1 '13 at 15:15
1  
@AshRj: I don't think this is quite a duplicate: here the user wonders about the behavior of copy constructors w.r.t. composition, not inheritance. –  Mr Fooz Jan 1 '13 at 15:21
    
@MrFooz My mistake. Removed link. –  AsheeshR Jan 1 '13 at 15:22
    
@MrFooz Although answer is the same, by-design. –  AsheeshR Jan 1 '13 at 15:24
    
@AshRj: agreed that the solution is the same. –  Mr Fooz Jan 2 '13 at 23:22

3 Answers 3

up vote 7 down vote accepted

The copy constructor withCC(withCC&) was invoked because the default copy constructor of composite will call all copy constructors of it's member data. And since you have a withCC object as a member data in the composite class, the copy constructor withCC(withCC&) is called.

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Copy constructor is called

  • When instantiating one object and initializing it with values from another object or
  • When ever you pass an object by value as an argument to a function or
  • return the object by value from the function

The default copy constructor of composite class will call the copy constructor of its members, that's why withCC(withCC&) is getting printed.

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1  
No, Foo f2 = f; does not invoke operator=, it invokes a copy constructor. It may look like =, but it is actually construction. –  Yakk Jan 1 '13 at 15:24
    
@Yakk I mentioned that when objects are passed to a function, the copy constructor is invoked. In this case the function is the = overloading function –  Alfred Jan 1 '13 at 15:25
    
operator= on composite objects is never, ever called in the original poster's code. No interaction with operator= occurs that involves withCC(const withCC&). –  Yakk Jan 1 '13 at 15:29
    
thanks for the correcction –  Alfred Jan 1 '13 at 15:35

statement composite c2 = c; will try to copy the object through copy constructor but class composite does not have user defined copy constructor hence default copy constructor of compiler will be used in your case. And you want to construct WOCC object also with the creation of composite hence for WOCC construction the user define copy constructor of with cc gets called

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