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Is doing something like this safe? I'm unsure if the execution order is guaranteed or not.

auto foo = std::make_unique<Foo>();
foo->Bar(std::move(foo));
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It will work fine.

The sequence:

  1. Evaluate std::move(foo) then evaluate foo-> (or the other way around, which does not matter as neither changes the state of the foo pointer).
  2. Invoke Foo::Bar(...) on the target object obtained in #1 passing the rvalue-casted foo also obtained in #1.

Probably not the cleanest code style.

  • But if std::move(foo) is evaluated first wouldn't foo-> try to dereference a nullptr? – kanslulz Oct 16 '18 at 15:09
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    std::move is just a type cast shortcut returning static_cast<std::remove_reference_t<T>&&>(arg), it does not do anything to the object – bobah Oct 16 '18 at 15:15
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Is doing something like this safe?

That works as expected by the style is not recommended because object foo is still available after it has been moved from. That creates a risk of bugs caused by accessing a moved from object.

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    I suppose that should be clear from the codebase though, if you call std::move you're explicitly saying I'm not going to use this anymore in this state, and that's fine. – Sombrero Chicken Oct 16 '18 at 14:59
  • @SombreroChicken I have seen such bugs in my practice despite that should be clear from the codebase. – Maxim Egorushkin Oct 16 '18 at 14:59
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    Do that move deep in a conditional statement and then tell me it is clear at the top level! I don't want to have to read your code, I want to be able to trust your code! – Gem Taylor Oct 16 '18 at 15:53

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