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#include <iostream>
using namespace std;

class Y {
public:
    Y(int ) {
        cout << "Y(int)\n";
    }
    Y(const Y&) {
        cout << " Y(const Y&)\n";
    }
};

int main() {
    Y obj1 = 2; // Line 1
}

Output: Y(int)

Expected Output: Y(int) Y(const Y&)

Question> Based on my understanding, Line 1 will first create a temporary object Y(2), and then assign the temporary object to obj1. Thus, I expect both Y(int) and Y(const Y&) are called. But the output from vs2010 only reports the first one(i.e. Y(int)). Why?

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3 Answers 3

up vote 10 down vote accepted

Why?

Because under certain conditions (specified by paragraph 12.8/31 of the C++11 Standard) calls to the copy constructor or move constructor can be elided even though those special functions (or the destructor) have side effects:

This elision of copy/move operations, called copy elision, is permitted in the following circumstances (which may be combined to eliminate multiple copies):

— [...]

— when a temporary class object that has not been bound to a reference (12.2) would be copied/moved to a class object with the same cv-unqualified type, the copy/move operation can be omitted by constructing the temporary object directly into the target of the omitted copy/move

— [...]

This is the only exception to the so-called "as-if" rule, which normally constrains the kind of transformations (optimizations) that a compiler can perform on a program in order to preserve its observable behavior.

Notice, that the above mechanism is called copy elision - even when it's actually a call to the move constructor that is being elided.

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This is called copy initialization. Y(int ) is a conversion constructor. that is

single-parameter constructor that is declared without the function specifier explicit

the compiler is allowed to elide the extra copy and use your conversion constructor. Which means

Y obj1 = 2; // Line 1

is equivalent to

Y obj1(2); // Line 1
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See Stefano's answer for further discussion (Andy's is correct). An explicit causing an error means that these are by no means equivalent. –  chris May 25 '13 at 13:21
3  
Copy initialization is not equivalent to direct initialization. The former is conceptually achieved by constructing a temporary from the initializing expression (2), and then move-constructing or copy-constructing obj1 from that temporary. However, the compiler is allowed to elide this call to the move constructor or copy constructor per 12.8/31 (see my answer) –  Andy Prowl May 25 '13 at 13:22

This is because the constructor has only one parameter and it's not marked explicit, so the compiler automatically turns:

Y obj1 = 2;

Into:

Y obj1(2);

To prevent this behaviour, use:

explicit Y(int ) {
    cout << "Y(int)\n";
}

(and compilation will fail in your case).

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1  
The fact that explicit causes a compiler error means that it does not magically turn = 2 into (2). All explicit does is prevent implicit conversions to your type. –  chris May 25 '13 at 13:20
    
Add explicit will make Line 1 incorrect. –  q0987 May 25 '13 at 13:20
    
"to prevent this behaviour [...] and compilation will fail in your case." –  Stefano Sanfilippo May 25 '13 at 14:48

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