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const ClassA& curShot = vec_shots[curShotIndx];

In the above code the curShot object is constructed and assigned at the same step. My question is which constructor is used in the above statement. I thought it will be the default constructor followed by the assignment operator, but it seems to call the copy constructor instead. Why is that the case?

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That ampersand (&) is a typo in your question, isn't it? –  Barnabas Szabolcs Dec 6 '12 at 6:35
    
curShot is a const reference. Analogically you are doing something equivalent to: const ClassA* const curShot = vec_shots[curShotIndx]; –  iammilind Dec 6 '12 at 6:36
    
@vkaul11 BTW: You should work on your accept rate. From your question upvotes, I think that you asked some good questions, so make sure to accept an answer in case the question is actually answered. –  Andreas Dec 6 '12 at 6:49

4 Answers 4

up vote 4 down vote accepted

What happens is that

vec_shots[curShotIndx];

returns a reference which you assign to const ClassA& curShot. There is no object creation involved in this step. Therefore no constructor is invoked (neither default nor copy constructor).

The assignment operator is not invoked either since you are not assigning one object instance to another, but only a reference. You are not handling more than one (existing) object instance in this code. So, no construction or assignment is invoked.

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Thanks Andreas, just that I had a type above with the &. However, I appreciate your answer because I was not sure what it would do with the & either. –  vkaul11 Dec 6 '12 at 11:18

Since you wrote "it seems to call copy constructor", I assume the ampersand in your question is a typo.
In that case, if you would do

const ClassA curShot = vec_shots[curShotIndx];

it is evaluated as copy construction. It is just the same as the ugly const ClassA curShot( vec_shots[curShotIndx] ).

However, if you write

ClassA curShot;  // I skipped the "const", because otherwise the example would be invalid.
curShot = vec_shots[curShotIndx]; 

then a default constructor gets called and an opearator= is called on the second line.


Moreover, "=" so much can mean calling NEITHER copy constructor NOR operator=, that you can have this:

const ClassA f(){ return ClassA(); }
//...
const ClassA curShot = f();  // we would expect here a copy constructor call

Here -- if the compiler uses return value optimization and usually it does -- only a default constructor gets called for curShot.

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it does not, that's right, I'll correct it. –  Barnabas Szabolcs Dec 6 '12 at 6:41
    
It was indeed a typo. Thanks. –  vkaul11 Dec 6 '12 at 11:20

No constructor is used, curShot is a reference, an alias to an already existing object, not a stand-alone object by itself.

Also, initialization and assignment cannot be done at the same step. For example, say you had

 ClassA original;
 ClassA copy = original;

Here, copy is not assigned original, it's initalized using original. This is called copy initialization.

If you did

 ClassA copy2(original);

this would be called direct initialization.

The copy constructor would be called in both instances. (copy elision can occur, so it might not be called, but it must be available)

Assignment is when you use operator = on an already existing object:

 ClassA x;
 ClassA y;
 x = y;     //assignment
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-1 The copy constructor would be called in both instances. Misleading rather wrong. –  Alok Save Dec 6 '12 at 6:38
    
@Als in which one is it not called? –  Luchian Grigore Dec 6 '12 at 6:39
    
Whether or not the copy constructor will be called during Copy Initilization completely depends on the class definition.If the class provides an appropriate conversion operator which is a better match than the copy constructor then it will be used. –  Alok Save Dec 6 '12 at 6:43
    
@Als I don't follow. Can you provide an example? –  Luchian Grigore Dec 6 '12 at 6:44
    
Well the copy constructor call can be simply elided. It implies the copy constructor should be present but not necessary that it will be called. For an example, search copy elision and hopefully you should find one. –  Alok Save Dec 6 '12 at 6:55

This statement just define curShot as a reference, it's not a new object.

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