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template <class Type> class Queue {


    Queue(): head(0), tail(0) {
        cout << "Queue--default constructor called" << endl;
    }

    Queue(const Queue &Q): head(0), tail(0) {
        cout << "Queue--copy constructor called" << endl;
        //...
    }

    Queue& operator=(const Queue&) {
        cout << "Queue--operator= called" << endl;
        //...
    }
    ~Queue() { //... }

private:
    QueueItem<Type> *head;         
    QueueItem<Type> *tail;         
};

I have defined a template class Queue and tried the codes below:

Queue<char*> cq;
Queue<char*> ccq(cq);   
Queue<char*> acq = cq;  
Queue<char*> acq2;
acq2 = cq;

and the output is:

Queue--default constructor called
Queue--copy constructor called
Queue--copy constructor called
Queue--default constructor called
Queue--operator= called

what confuse me is the code Queue<char*> acq = cq; has invoked the copy constructor Queue--copy constructor called but not the default constructor and operator= to be called.

Could any one help me?

Thank you for considering my question!

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You're making a new Queue object based on an existing Queue object. Why would you expecting anything else than a copy constructor? –  Gaminic Nov 26 '12 at 13:25
1  
Here are some hints for you –  janisz Nov 26 '12 at 13:27
1  
@Gaminic you have to understand the confusion here. He writes the = and doesn't invoke the = operator. If he would write this as Queue<char*> acq; acq=cq; he would get what he describes, it's not intuitively obvious that declaring it in the same line is different. e.g. that Queue<char*> acq=cq; and Queue<char*> acq(cq); are the same thing. –  PeterT Nov 26 '12 at 13:29
    
@janisz: Thanks :) –  Tianyi Nov 26 '12 at 13:57
    
@PeterT: I do understand the confusion; I was trying to make him see my point by thinking about it. If he can't answer the question, he'll understand. If he can answer the question, his reasoning will allow me to explain more precisely. –  Gaminic Nov 26 '12 at 18:09

2 Answers 2

up vote 3 down vote accepted

This is defined in the standard, it's in the section Explicit initialization

1 Explicit initialization [class.expl.init] An object of class type can be initialized with a parenthesized expression-list, where the expression-list is construed as an argument list for a constructor that is called to initialize the object. Alternatively, a single assignment-expression can be specified as an initializer using the = form of initialization. Either direct-initialization semantics or copy-initialization semantics apply; see 8.5.

This is the case describing single assignment-expression and copy-initialization semantics.

Technically there's no difference between the two forms ccq(cq) and acq = cq, as you have already seen from the output.

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2  
There's actually a small difference (§ 8.5/13 "The form of initialization (using parentheses or =) is generally insignificant, but does matter when the initializer or the entity being initialized has a class type; see below."), but this is irrelevant here. –  ipc Nov 26 '12 at 13:40
    
@Olaf Dietsche: Thanks for your answer :) –  Tianyi Nov 26 '12 at 13:42
    
@ipc You're right, I suppressed this detail ;-) –  Olaf Dietsche Nov 26 '12 at 13:46

This is called "copy initialization" and C++ standard requires that

Queue<char*> acq  = cq;

shall be equivalent to

Queue<char*> acq (cq);

No mistake here.

share|improve this answer
    
Thanks for your answer :) –  Tianyi Nov 26 '12 at 13:42

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