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According to this prefix std::atomic<T>::operator++ returns a T, so this code only increments v once:

template<class T> void addTwo(std::atomic<T>& v) {
  ++(++v);
}

Also, std::atomic<T>::operator= apparently returns a T, so this code dereferences an invalid pointer that used to point to a temporary T:

template<class T>
void setOneThenTwo(std::atomic<T>& v) {
  auto ptr = &(v = 1);
  *ptr = 2;
}

I am most certainly not suggesting that these code patterns are good practice, however it is highly surprising to me that std::atomic breaks them. I always expect operator= and prefix operator++ to return a reference to *this.

Question: Is cppreference right about the return types here, and if so, is there a good reason for having std::atomic behave differently than built-in types in this regard?

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If operator= returns a T, then &(v = 1) should not even compile, right? –  R. Martinho Fernandes Nov 5 '12 at 11:28
    
@R.MartinhoFernandes: Because it's an rvalue temporary? –  Lightning Racis in Obrit Nov 5 '12 at 11:30
    
Does it return an lvalue? If not then the second ++ won't compile so at least you'll be saved from buggy behaviour if you did expect that to wrok. –  CashCow Nov 5 '12 at 11:37
    
@LightnessRacesinOrbit because it's a prvalue. So, yes, some atomic operations may return by value contrary to common usage, but only bad compilers will allow either of these examples to compile. –  R. Martinho Fernandes Nov 5 '12 at 11:41
    
Bad compilers, or (unlikely) bad types T that specialize std::atomic and for which prefix operator++ is a member function that can bind to an rvalue. But if you're specializing std::atomic for your user-defined type, you really should know std::atomic well enough to know not to do that. –  Steve Jessop Nov 5 '12 at 12:13

2 Answers 2

up vote 19 down vote accepted

if operator++ returned a reference, it would have been a reference to std::atomic<T> not to T in which case you would need to do an additional load to get the current value.

Imagine you've got a DBMS and you need to maintain an 'autoincrement' field

With operator++ retuning T you can do this

class AutoIncrement
{
public:
   AutoIncrement() : current (0) {}

   unsigned int next()
   {
      return ++current;
   }

private:
   std::atomic<unsigned int> current;
};

Now imagine operator++ returns std::atomic<T>& In that case when you do return ++current it will do two things

  1. Atomic read-modify-write
  2. Atomic load

They are two totally independent operations. If other thread calls next in between you will get wrong value for your autoincrement field!

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4  
+1. In short it's because atomic (increment and return the new value) is so much more useful than (atomic increment) and (return a reference to the atomic object), that the designers feel it justifies the slightly surprising return type. –  Steve Jessop Nov 5 '12 at 12:08
    
Please don't deface your answers with an edit. This has been rolled back. –  Brad Larson Mar 15 '13 at 21:33

According to [C++11: 29.6.5/32] and [C++11: 29.6.5/10], yes, cppreference.com is correct in this regard.

I'm not qualified to tell you why.

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