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Say we have a class A that contains as a member of the same class:

Class A{
   const A &a;
}

I want to create a parametized constructor that passed the value of that member, but I do not want to define the copy constructor of the class.

A(const A& memberA): a(memberA)     {}

How could indicate the compiler such thing?

Thanks

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2  
Show us how you want to use A. In particular, how the first instance is created. –  avakar Nov 16 '12 at 9:07
5  
Wouldn't you get an infinite recursion problem here? I cannot see how you could instantiate an A, unless it refers to itself. –  juanchopanza Nov 16 '12 at 9:08
    
@juanchopanza though A a(a); seems like it would be entertaining as a joke someday, somewhere... –  WhozCraig Nov 16 '12 at 9:11
    
"Show us how you want to use A. In particular, how the first instance is created" That made me think. Is it possible? lol I will use pointers :) There should be one instance that will have no member. You are right @juanchopanza –  Mario A. Corchero Jiménez Nov 16 '12 at 9:19
1  
I meant A first(*((A*)0)); –  nanda Nov 16 '12 at 9:30

2 Answers 2

up vote 4 down vote accepted

A constructor that can take just a reference to the class it constructs is a copy constructor, whether you want it to be one or not. Copy constructors are defined thus:

A non-template constructor for class X is a copy constructor if its first parameter is of type X&, const X&, volatile X& or const volatile X&, and either there are no other parameters or else all other parameters have default arguments.

You could declare it explicit to restrict how the class can be copied (preventing A a = A() for example), but it's still a copy constructor as long as it has that signature.

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You can define this constructor as explicit.

(That's a good rule for all constructors that can be called with one parameter.)

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1  
How explict make a difference? It just prevents = sign. –  iammilind Nov 16 '12 at 9:10
1  
@iammilind: normally, a constructor like Mario's would automatically become the copy constructor of the class and thus be called implicitly in situations like e.g. pass-by-value Making it explicit means you need to call it explicitly to invoke it, it will not be invoked implicitly by the compiler. –  Zane Nov 16 '12 at 9:18

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