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I am reading some C++ text at the address: https://cs.senecac.on.ca/~chris.szalwinski/archives/oop244.071/content/custo_p.html. In the section RETURNING A REFERENCE, the author wrote:

" Returning a reference from a function has two intrinsic benefits:

  • efficiency

  • creates an lvalue

"

I can understand the first benefit (efficiency), but do not understand why is the second one.

As the author explained, I can understand that what is lvalue, but I do not understand what is the relationship between the lvalue and returning a reference from a function so that lvalue becomes a benefit?

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Either it's not obvious, the author has no idea what he's talking about, or he has a weird definition of the word "benefit." I don't know which because I can't see why that's a benefit either. –  Seth Carnegie Sep 12 '11 at 2:36

1 Answer 1

up vote 5 down vote accepted

That simply means that you can assign something to the result of the function. Consider this example:

int& foo() {
  static int x;
  return x;
}

void bar() {
  foo() = 42;
}

Instead of int, this works with class objects as well, of course. The point is that by returning a reference to x the caller can directly assign the locally scoped variable in foo. This is what the author means by saying that a reference return value "creates an lvalue".

By the way, the example actually has an application, as it solves the static initialisation order fiasco for more complex types than int.

Edit

As for the "benefit", there are several ways to interpret this. Either it is a way of making your code more readable (as opposed to the same functionality implemented with pointers) or that you can use operations that can only be applied to an lvalue, which would not be possible if you would not return a reference/pointer but received an argument:

struct X {
  int a;
  int b;
};
class Y_withoutRefs {
  private:
    X x;
  public:
    void setXa(int a) {
      x.a = a;
    }
    int getXa() {
      return x.a;
    }
    void setXb(int b) {
      x.b = b;
    }
    int getXb() {
      return x.b;
    }
};
class Y_withRefs {
  private:
    X x;
  public:
    X& getX() {
      return x;
    }
};

void dosmth() {
  Y_withoutRefs ywo;
  Y_withRefs yw;
  ywo.setXa(50+ywo.getXa());
  yw.getX() += 50;
}
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Why is it a benefit? –  Seth Carnegie Sep 12 '11 at 2:37
    
@Seth: because it allows you to do something you otherwise couldn't. –  Dennis Zickefoose Sep 12 '11 at 2:41
    
That's not really a benefit. You could do it extremely easily (and more intuitively for your users) with slightly more code. –  Seth Carnegie Sep 12 '11 at 2:42
1  
Anyway, this answer broadens my knowledge. Thanks all for your effort. –  ipkiss Sep 12 '11 at 2:50
1  
@Seth Carnegie: I bet you have done this quite often, without realising it (assuming you worked with the stl a bit). The deref-operator of iterators gives you a reference to the content of the container. So if it is an iterator and you say *it = 7 then you assigned to the result of a function call! –  bitmask Sep 12 '11 at 3:05

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