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If you have a class member function marked volatile, is it possible to cast away volatile on a class member when it's bein used within that function?

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Show some code man. –  deepmax Oct 13 '11 at 15:41
Related:… –  Mat Oct 13 '11 at 15:43
The real question is why? Do you have code that illustrates a problem that requires you to get rid of the volatile? –  Loki Astari Oct 13 '11 at 16:16

2 Answers 2

up vote 4 down vote accepted

Yes. To cast away the volatile-ness of an object, const_cast is used:

T & t = const_cast<T&>(volatile_t); 

This is the way. But whether you should use it in your code or not, I cannot say without looking at the code. In general, casting away the const-ness as well as volatile-ness, is a dangerous idea, and should be done only after very careful examination of all cases.

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As with any const-cast, you can expect undefined behaviour if you don't honour the contract provided by the constness or volatility guarantee. The cast is only to be used as a work-around for otherwise fixed code; for example, if you know that a function isn't modifying a reference, but is declared with a non-const reference anyway. Const-cast does not magically create a mutable object! –  Kerrek SB Oct 13 '11 at 16:57

You can cast away volatile from any context by using const_cast. You are asking precisely about casting away inside a volatile member, but that does not make any difference.

The volatile in the function is a check that tells the compiler not to complain if you try to call that method on a volatile object (or through a reference or pointer to volatile object), which is unrelated to the volatile-ness of the members.

What I am trying to say is that if you expect the behavior while accessing data members to be consistent with volatile semantics just because the code is inside a volatile member method, that won't happen.

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