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Message-ID: <alpine.LFD.0.999.0708171737060.3666@enigma.security.iitk.ac.in> Date: Fri, 17 Aug 2007 18:20:25 +0530 (IST) From: Satyam Sharma <satyam@...radead.org> To: Nick Piggin <piggin@...erone.com.au> cc: Stefan Richter <stefanr@...6.in-berlin.de>, paulmck@...ux.vnet.ibm.com, Herbert Xu <herbert@...dor.apana.org.au>, Paul Mackerras <paulus@...ba.org>, Christoph Lameter <clameter@....com>, Chris Snook <csnook@...hat.com>, Linux Kernel Mailing List <linux-kernel@...r.kernel.org>, linux-arch@...r.kernel.org, Linus Torvalds <torvalds@...ux-foundation.org>, netdev@...r.kernel.org, Andrew Morton <akpm@...ux-foundation.org>, ak@...e.de, heiko.carstens@...ibm.com, davem@...emloft.net, schwidefsky@...ibm.com, wensong@...ux-vs.org, horms@...ge.net.au, wjiang@...ilience.com, cfriesen@...tel.com, zlynx@....org, rpjday@...dspring.com, jesper.juhl@...il.com, segher@...nel.crashing.org Subject: Re: [PATCH 0/24] make atomic_read() behave consistently across all architectures On Fri, 17 Aug 2007, Nick Piggin wrote: > Satyam Sharma wrote: > > On Fri, 17 Aug 2007, Nick Piggin wrote: > > > Satyam Sharma wrote: > > > > > > It is very obvious. msleep calls schedule() (ie. sleeps), which is > > > always a barrier. > > > > Probably you didn't mean that, but no, schedule() is not barrier because > > it sleeps. It's a barrier because it's invisible. > > Where did I say it is a barrier because it sleeps? Just below. What you wrote: > It is always a barrier because, at the lowest level, schedule() (and thus > anything that sleeps) is defined to always be a barrier. "It is always a barrier because, at the lowest level, anything that sleeps is defined to always be a barrier". > Regardless of > whatever obscure means the compiler might need to infer the barrier. > > In other words, you can ignore those obscure details because schedule() is > always going to have an explicit barrier in it. I didn't quite understand what you said here, so I'll tell what I think: * foo() is a compiler barrier if the definition of foo() is invisible to the compiler at a callsite. * foo() is also a compiler barrier if the definition of foo() includes a barrier, and it is inlined at the callsite. If the above is wrong, or if there's something else at play as well, do let me know. > > > The "unobvious" thing is that you wanted to know how the compiler knows > > > a function is a barrier -- answer is that if it does not *know* it is not > > > a barrier, it must assume it is a barrier. > > > > True, that's clearly what happens here. But are you're definitely joking > > that this is "obvious" in terms of code-clarity, right? > > No. If you accept that barrier() is implemented correctly, and you know > that sleeping is defined to be a barrier, Curiously, that's the second time you've said "sleeping is defined to be a (compiler) barrier". How does the compiler even know if foo() is a function that "sleeps"? Do compilers have some notion of "sleeping" to ensure they automatically assume a compiler barrier whenever such a function is called? Or are you saying that the compiler can see the barrier() inside said function ... nopes, you're saying quite the opposite below. > then its perfectly clear. You > don't have to know how the compiler "knows" that some function contains > a barrier. I think I do, why not? Would appreciate if you could elaborate on this. Satyam - To unsubscribe from this list: send the line "unsubscribe linux-kernel" in the body of a message to majordomo@...r.kernel.org More majordomo info at http://vger.kernel.org/majordomo-info.html Please read the FAQ at http://www.tux.org/lkml/
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