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If a type has a swap function which cannot fail, this can make it easier for other functions to provide the strong exception safety guarantee. This is because we can first do all of the function's work which may fail "off to the side", and then commit the work using non-throwing swaps.

However, are there any other benefits of guaranteeing that swap will never fail?

For example, is there a situation in which the presence of a no-fail swap makes it easier for another function to provide the basic guarantee?

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There's always a benefit to avoiding Murphy's Law whenever possible... –  Jeremy Friesner Jan 27 '13 at 19:42
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1 Answer

Let's say I do this:

class C {
  T a, b;  // invariant: a > b
  void swap(C& other);
};

It seems that there's no way to implement C::swap() with basic guarantee if T::swap(T&) might throw. I'd have to add a level of indirection and store T* instead of T.

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