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Recently I have read that it makes sense when returning by value from a function to qualify the return type const for non-builtin types, e.g.:

const Result operation() {
    //..do something..
    return Result(..);
}

I am struggling to understand the benefits of this, once the object has been returned surely it's the callers choice to decide if the returned object should be const?

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3 Answers 3

up vote 12 down vote accepted

Basically, there's a slight language problem here.

std::string func() {
    return "hai";
}

func().push_back('c'); // Perfectly valid, yet non-sensical

Returning const rvalues is an attempt to prevent such behaviour. However, in reality, it does way more harm than good, because now that rvalue references are here, you're just going to prevent move semantics, which sucks, and the above behaviour will probably be prevented by the judicious use of rvalue and lvalue *this overloading. Plus, you'd have to be a bit of a moron to do this anyway.

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Are you sure that marking the rvalue as const prevents move semantics? My version of clang lets a custom move constructor get called with a const rvalue (though it doesn't let a non-const rvalue reference get bound to it, so I'm not entirely sure what's going on). –  John Calsbeek Jun 9 '11 at 22:29
    
@John Calsbeek: How can you move from a const rvalue? You can't modify it- because it's const. –  Puppy Jun 9 '11 at 22:46
    
@John: But can your const move constructor really perform the move? E.g. suppose your class had a raw pointer that needed to be freed. In the move constructor, you copy the pointer, but you also have to set the copy in the RHS object to NULL so it doesn't get double-deleted. But if it's a const rvalue, you can't modify it... –  HighCommander4 Jun 9 '11 at 22:46
    
It is nonsensical for void methods. For methods that return something it can make perfect sense. For example, if string::push_back returned a reference to the string itself, you'd be able to do string s = func().push_back('c'); (for one example). –  AndreyT Jun 9 '11 at 22:48
    
I managed to get my version of clang to, via a move constructor, bind a const T to a T&&, and mutate it through the rvalue reference. I'm just trying to figure out if that's a bug in clang or not. (I can't think of a "truly const" rvalue, besides one that was casted from a lvalue that was declared as const.) –  John Calsbeek Jun 9 '11 at 22:49

There is no benefit when returning by value. It doesn't make sense.

The only difference is that it prevents people from using it as an lvalue:

class Foo
{
    void bar();
};

const Foo foo();

int main()
{
    foo().bar(); // Invalid
}
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It is occasionally useful. See this example:

class I
{
public:
    I(int i)                   : value(i) {}
    void set(int i)            { value = i; }
    I operator+(const I& rhs)  { return I(value + rhs.value); }
    I& operator=(const I& rhs) { value = rhs.value; return *this; }

private:
    int value;
};

int main()
{
    I a(2), b(3);
    (a + b) = 2; // ???
    return 0;
}

Note that the value returned by operator+ would normally be considered a temporary. But it's clearly being modified. That's not exactly desired.

If you declare the return type of operator+ as const I, this will fail to compile.

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Item 3 from the "Effective C++" –  pic11 Jun 10 '11 at 0:05

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