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Why c++ atomic operations has an overloaded version for volatile atomic<T>?

When are we required declare atomic<T> as volatile and what is difference between atomic<T> and volatile atomic<T>?

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Why we must declare atomic<T> as volatile.. Who said it? –  Nawaz Oct 5 '13 at 17:53
@Nawaz I think it's a typo really asking "when are we required", I ask OP to confirm this. –  Filip Roséen - refp Oct 5 '13 at 17:54
@Nawaz OP is asking in what circumstances must we declare as volatile. –  this Oct 5 '13 at 17:55
@self.: OP is not asking that (thought he might have that in his mind) –  Nawaz Oct 5 '13 at 17:56
related:… –  Cubbi Oct 5 '13 at 21:07

2 Answers 2

It's the same as with any other type: you need to volatile-qualify your atomic if you're performing atomic operations on a memory-mapped I/O register or otherwise require the semantics of volatile-qualified types (which are not related in any way to atomicity or to the inter-thread synchronization and memory ordering provided by atomic operations).

The standard has this to say about the volatile overloads for atomics (29.6.5[atomics.types.operations.req]/3)

[ Note: Many operations are volatile-qualified. The “volatile as device register” semantics have not changed in the standard. This qualification means that volatility is preserved when applying these operations to volatile objects. It does not mean that operations on non-volatile objects become volatile. Thus, volatile qualified operations on non-volatile objects may be merged under some conditions. —end note ]

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In C++ the volatile keyword means that the compiler will make sure that the value is always newly read from memory, and never a cached value is used. If you don't use volatile then it means a variable may be read from a cache which would make it useless for an atomic operation where multiple threads may access the atomic variable at any time. I can not imagine a use case for a non-volatile atomic variable.

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Volatile is a hint to the compiler, and it is a hint that far too many compilers get wrong -- and that's before C++11. With all the extra stuff that C++11 added with regard to volatile, you can expect to see tons of articles on how this compiler, that compiler, and that other compiler got it wrong. Volatile is a forbidden keyword to me. –  David Hammen Oct 5 '13 at 20:06
@DavidHammen My answer is correct in general, the question is not asked with a specific compiler in mind. Don't deserve a -1 as the answer is correct in general. –  Inge Henriksen Oct 5 '13 at 23:24
it is neither useless nor useful for an atomic operation to be volatile-qualified. These are not related concepts. –  Cubbi Oct 6 '13 at 1:52

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