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Why must a copy constructor be passed its parameter by reference?

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7 Answers 7

up vote 84 down vote accepted

Because if it's not by reference, it's by value. To do that you make a copy, and to do that you call the copy constructor. But to do that, we need to make a new value, so we call the copy constructor, and so on...

(You would have infinite recursion because "to make a copy, you need to make a copy".)

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Is there a reason it couldn't be pass-by-pointer to instance? –  Barry Wark Apr 21 '10 at 20:52
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Then it is no longer a copy constructor, but just a regular old constructor that happens to accept a pointer. –  Dennis Zickefoose Apr 21 '10 at 21:01
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@Barry you commonly implement a copy-constructor when the compiler tries to make a copy of an object on its own by calling object o(other_object). But this only works if object has a constructor that takes another object by value or by reference. You already know why passing by value doesn't work, so the only way is passing by reference or const reference. If your "copy-constructor" would take a pointer to an object then the compiler's code would have to be object o(&other_object). So in essence you write a constructor that satisfies what the compiler and users expect. –  wilhelmtell Apr 21 '10 at 23:46
    
Yes, that makes complete sense. Thanks. –  Barry Wark Apr 22 '10 at 4:41
    
Another good reason, noted by my compiler, is if you have a base class with pure virtual functions the intialization of this variable by value would not be possible –  user451498 May 14 '12 at 23:52

Because pass-by-value would invoke the copy constructor :)

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Excellent. Quite simply. ;) –  wilhelmtell Apr 21 '10 at 23:47

The alternative to pass-by-reference is pass-by-value. Pass-by-value is really pass-by-copy. The copy constructor is needed to make a copy.

If you had to make a copy just to call the copy constructor, it would be a conundrum.

(I think the infinite recursion would occur in the compiler and you'd never actually get such a program.)

Besides rational reasons, it's forbidden by the standard in §12.8/3:

A declaration of a constructor for a class X is ill-formed if its first parameter is of type (optionally cv- qualified) X and either there are no other parameters or else all other parameters have default arguments.

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Compilers can happily spit out infinite recursion; I suspect this isn't a special case. However, the program is ill-formed if you declare a copy constructor with a non-reference parameter. So you're right that it shouldn't compile. –  Dennis Zickefoose Apr 21 '10 at 20:09
    
@Dennis: I mean, if you attempted to compile such a program, the compiler would get stuck trying to generate the code. It would not generate a recursive function because the conundrum occurs before the function call, in the caller. –  Potatoswatter Apr 21 '10 at 20:55
    
Either way, the program is ill formed whether you try to use it or not. Simply defining the constructor is enough to cause the compiler to yell at you. –  Dennis Zickefoose Apr 21 '10 at 21:04
    
@Dennis: Indeed, although that is simply a rule. –  Potatoswatter Apr 21 '10 at 21:18
    
+1 for quoting the standard and explaining with reason. –  wilhelmtell Apr 21 '10 at 23:49

It would be infinitely recursive if you passed it in by value

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whenever you call a function (example: int f(car c)) which takes its arguments other than built-in data types (here car) a requirement to copy the actual object supplied by the caller to the variable in the called function's parameter.
example: car carobj; f(carobj);

that is, copy carobj to c.

carobj need to be coped to parameter c in function f.

To achieve copying, copy constructor is called.

In this case, function f called using pass by value or in other words, function f is declared to take pass by value.

If function f takes pass by reference, then its declaration is int f(car &c);

In this case, car carobj; f(carobj); does not need a copy constructor.

In this case, c become alias of carobj.

Using the above 2 scenarios, for your clarity i am summarising them as: 1. If a function declared to take a parameter as value of a object, then copy constructor of the object is called. 2. If a function declared to take a parameter as pass by reference, the parameter become alias of object supplied by caller. No need of copy constructor!

Now the question is why pass by reference is required. If copy constructor accepts reference, the receiving variable become aliases of supplied object. Hence, no need of copy constructor (in this case, call to itself) to copy the value in caller supplied object to copy constructor's variable in argument list.

Otherwise, if copy constructor takes caller supplied object as value, i.e. pass by value, then it need copy constructor of given object; Hence, to get the supplied object from caller into our function itself (in this case copy constructor) we need to call copy constructor, which is nothing but calling the same function during function parameter initialization itself. This is the reason of passing a reference to copy constructor.

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While you are correct, there were already four answers explaining this, and doing so much more clearly. I don't understand why you thought a fifth answer to this question would be helpful. –  Ben Voigt Mar 13 '12 at 0:32

If its not passed by reference then it would pass by value. If the argument is passed by value, its copy constructor would call itself to copy the actual parameter to formal parameter. This process would go on until the system runs out of memory. So, we should pass it by reference , so that copy constructor does not get invoked.

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It is very essential to pass objects as reference. If an object is passed as value to the Copy Constructor then its copy constructor would call itself, to copy the actual parameter to the formal parameter. Thus an endless chain of call to the copy constructor will be initiated. This process would go on untill the system run out of memory.

Hence, in a copy constructor, the parameter should always be passed as reference.

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