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The below code, Value r = foo(i), is r a reference or a copy?

Value foo(int i) {
  return Value::New(i);
}

Value bar(Arg x) {
  // should I use Value& r = foo(x.getIndex());
  Value r = foo(x.getIndex());
  x.close();
  return r;
}

I tested

#include <stdio.h>
using namespace std;

class Value {
public:
    Value() {
        printf("construct\n");
    }
};

Value foo(){
    Value a;
    return a;
}

Value bar() {
    Value b = foo();
    return b;
}

int main(){
    Value c = bar();
}

only construct 1 times.

share|improve this question
    
Good question; why the down votes. –  Loki Astari Dec 20 '11 at 9:56

6 Answers 6

Depends. If Value is typedef'd to some reference type (e.g. int&) then yes, foo would be a reference. Otherwise no. As Paolo points out, however, Value has a member function New and thus cannot be a reference type. Therefore you are passing/returning Values by copy, not by reference.


Post Edit: The reason you don't see your string message printed several times is simple: It's only printed when the default ctor is invoked. Implement an actual copy-ctor and you will see a lot more messages, each time a Value is copied.

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Value cannot be typedef'd to a reference type, because it's being used as a class inside foo. –  Paolo Capriotti Dec 20 '11 at 9:39
    
@PaoloCapriotti: I answered before the question was edited and thereby changed substantially. –  bitmask Dec 20 '11 at 13:54
    
No, I was referring to the expression Value::New(i), which was already there. If Value were a reference type, that expression wouldn't compile. –  Paolo Capriotti Dec 20 '11 at 13:58
    
@PaoloCapriotti: Sorry, you are right. I must have missed that ::New. Thanks. –  bitmask Dec 20 '11 at 14:00

Edit for the updated question:

only construct 1 times

Because the standard explicitly allows the compiler to optimize away copy construction (even if it has side affects). Your code is easily optimized by the compiler using RVO and NRVO. This basically allows the compiler to construct the object once at the destination (thus you see no copies).

Original Answer

Its a copy

The function foo() returns a value of type Value

Value foo(int i)

If you want to return a reference to an object of type value you need to indicate this in the function signature:

Value & fooRef(int i)
//   ^^^ Notice the & symbol

Also the variable 'r' is an object. So even if you assign a reference to it. It will then make a copy of the original object returned.

Value  rv = fooRef(1); // fooRef() returns a reference to an object.
                       // But here we make a copy into rv

Value& rf = fooRef(1); // fooRef() returns a reference.
                       // rf is a reference and keeps a reference to the object returned by
                       // fooRef()
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I update my question, why it does not construct again if it is a copy? –  guilin 桂林 Dec 20 '11 at 10:12
    
@guilin桂林: Because if the compiler wants to remove an unnecessary copy it is allowed too. So in most situations it will. –  Loki Astari Dec 21 '11 at 19:56

It is a copy for two reasons. The first one,as pointed by others, is that foo returns a copy of Value, i.e. it does not return Value &.

The second reason is that this (misleading) syntax

Value r = foo(x.getIndex());

Does not have anything to do with the assignment operator, it is actually equivalent to:

Value r( foo( x.getIndex() ) );

The new object of class Value is built with another instance of class Value, so the copy constructor is invoked.

About the question in your source code:

Value bar(Arg x) {
  // should I use Value& r = foo(x.getIndex());
  Value r = foo(x.getIndex());
  x.close();
  return r;
}

No, you shouldn't use Value&, since in order to keep it effective you should change the return value of bar to Value&, and you cannot return a reference to an object that will be end its life when the bar() function ends.

Hope this helps.

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Copy, because foo(int) does not return a reference.

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how return a reference? –  guilin 桂林 Dec 20 '11 at 9:38
    
Value& foo(int). It's a Bad idea, because you're returning a dangling reference. Leaving it as value lets the compiler use (N)RVO and transform Value r = foo.getIndex(i) to Value r = Value::New(i). –  moshbear Dec 20 '11 at 9:42
    
I am confused now, you mean that the compiler does not construct twice? –  guilin 桂林 Dec 20 '11 at 10:01
    
Read en.wikipedia.org/wiki/Return_value_optimization , because the answer is both yes and no. –  moshbear Dec 20 '11 at 10:13

It's a copy. Also, you can't use a reference there (as in the commented line), because the return value of foo is stored in a temporary and gets destructed at the end of the line, creating a dangling reference.

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Copy. You would notice reference by the & sign.

The real question is what foo returns. If it returns a reference - it makes sense to use a reference, otherwise if it returns a copy (i.e.: the return type is Value, not Value&), you'll just be referencing a copy, so what's the point (and you would probably get a compiler warning or error)?

share|improve this answer
    
Value* foo(int i) { return &Value::New(i); } is this better. –  guilin 桂林 Dec 20 '11 at 9:35
    
@guilin桂林 - what does this have to do with your question? You're returning a pointer here, it's neither a value nor reference (with regards to the Value data type). –  littleadv Dec 20 '11 at 9:38

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