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Is there a difference in C++ between copy initialization and direct initialization?
Copy constructors and Assignment Operators

I have a class C in which I have overloaded Normal, copy constructor and assignment operator to print a trace of what is being called..

I wrote following pieces of code to test what is being called when?

C c1;                --> Normal Constuctor .. // understood Fine

C c2;
c2 = c1;             --> Normal constructor + assignment operator .. //understood Fine

C * c3 = new C(C1)   --> Copy constructor  // Understood Fine

C c4 = c1          --> copy constructor // Not Able to understand

This seems to baffle me since in this code though I am initializing at the time of declaration, it is through assignment operator and not copy constructor .. Am I understanding it wrong ??

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marked as duplicate by Johnsyweb, Bo Persson, iammilind, Alok Save, Joe May 15 '12 at 13:15

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
That syntax is merely a confusing syntactical sugar that makes the = sign not be an assignment. –  Seth Carnegie May 15 '12 at 6:48

3 Answers 3

up vote 11 down vote accepted

Because C c4 = c1; is syntactically equivalent to:

C c4(c1);

which invokes copy constructor.

In layman's language, a variable (here c4) is constructed till the first ; is finished; till then everything is one or the other type of constructor.

Additional info:

In case of C c4 = c1; compiler doesn't have to check for most vexing parse, so I believe it's a superior syntax compared to C c4(c1); on compilation time perspective (I learned that this may not be true always from this answer).

However you can disable C c4 = c1; by declaring copy constructor explicit. For that matter any constructor can be made explicit and you can prevent = sign in the construction.

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Yeah.. that was my actual doubt .. Why C c4 = c1; is syntactically equivalent to C c4(C1) and not C C4; c4 = c1; Why was it made that way..? –  Anerudhan Gopal May 15 '12 at 6:49
    
@AnerudhanGopal because that's just the way it is (and maybe for the reason that the former is more efficient). –  Seth Carnegie May 15 '12 at 6:50
    
@AnerudhanGopal, in c++ for many constructs there are multiple syntax. this is one of them. I have edited my answer for more details. –  iammilind May 15 '12 at 6:59
1  
The first part of the answer is still misleading which states, C c4 = c1; is syntactically equivalent to: C c4(c1);, It is not! They might behave similarly sometimes but they are definitely not the same. –  Alok Save May 15 '12 at 7:11
2  
I have several problems with this answer. The first is purely linguistic: C c4 = c1; is clearly not syntactically equivalent to C c4( c1 );. You probably meant to say semantically equivalent, which is only true if the initializing expression (c1 in this case) has the same type as the new object. And finally, c4 is fully constructed at the end of the declarator, which may be before the ;, if you define two variables in the same statement: C c4 = c1, c5 = c4;. (Bad practice, IMHO, but perfectly legal.) –  James Kanze May 15 '12 at 7:53
C c4 = c1;

is Copy Initialization.

It tries to convert c1 to an type C if it is already of not that type by finding a suitable conversion function and then uses the the created C instance for copy constructing a new C instance.

Note that though,

C c4(c1);

is Direct Initialization

And it is important to note that there is a difference between Copy Initialization and Direct Initialization they are not the same!

Why C c4 = c1; is syntactically equivalent to C c4(C1) and not C C4; c4 = c1; Why was it made that way?
First, Copy Initialization & Direct Initialization are not the same.
As to the rationale of why no assignment operator is called, assignment only occurs when one assigns two completely formed objects to each other.

In case of:

C c4 = c1;

c1 is a completely constructed object while c4 yet does not exist all, When such an scenario arises and = is present, it doesn't really mean Assignment but it means Initialization.
So Basically, what happens here is Initialization and not Assignment and the C++ Standard defines specific rules as to how this initialization should be done.

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Because there's no assignment operator in:

C c4 = c1;

Like the comma, the equal sign can be either an operator or punctuation. In an expression, it is always an operator, but in the above, the initialization expression is simply c1; the = sign is punctuation, indicating that copy initialization, rather than direct initialization, is to be used. (Direct initialization would be

C c4( c1 );

and is, IMHO, generally preferable. In the case where the initialization expression has the same type as the new object, however, there is no difference.)

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