Do I really want to be debugging why node-gyp fails to compile scrypt on the ARM distro on the new Amazon A1 ARM instance (which it did in my case)? And if I solve that, what about the other 2451 dependencies? Let's pessimistically say there's a 1% failure rate, I'll be stuck doing that forever! Nah, I'll just go back to my comfy x86 instance, life's short and there's much code to write :)
I think I'll side with Linus on this one. I saw first-hand how non-existent the x86 Android market was, despite Intel pouring megabucks into the project. If the developers don't run the same platform, it's not going to happen, no matter how great the cross platform story is in theory. Even if it's as simple as checking a box during upload that "yes, this game can run on X86", a huge chunk of the developers will simply never do that.
To really see the benefit of changing they would need to add a lot of cores, and then cross their fingers that 3rd party app developers know how to do true multi-core development.
If that team were to design a bigger core aimed at laptops, then I wouldn't be surprised if they could make it competitive.
Linus’s prediction is based on the premise that everyone will continue to use x86 for development. But that’s probably not going to be the case for long. Multiple sources have leaked the rumour that Apple will release an arm MacBook next year. And I wouldn’t be surprised if Microsoft has an arm surface book in the wings too.
[1] https://www.macrumors.com/2019/02/21/apple-custom-arm-based-...
The majority of people in the world writing code are using x86 PCs and Microsoft and Apple aren't about to change that with any *Book.
Linus' premise that everyone will continue to use x86 for development is because they will.
There's no incentive for companies or individuals to go switch out all of that x86 hardware sitting on desks and in racks with ARM alternatives which will offer them lower performance than their already slightly aged hardware at initially higher costs.
I can forsee _some_ interest in ARM cloud, and I don't think it'll be the issue Linus claims at higher-than-systems-level, but I absolutely would bet on x86 going nowhere in the human-software interface space in the foreseeable future.
For some reason Macbooks seem disproportionately represented amongst web developers. All the agencies I know in Sydney and Melbourne are full of macbooks.
> There's no incentive for companies or individuals to go switch out all of that x86 hardware sitting on desks and in racks with ARM alternatives which will offer them lower performance than their already slightly aged hardware at initially higher costs.
Uh, why are you assuming ARM laptops will have lower performance and a higher cost compared to x86 equivalents? The ARM CPU in the iPad pro already outperforms the high end intel chips in macbook pros in some tests. And how long do you think Apple will continue to sell intel-based macbooks once they have ARM laptops on the market? Maybe they'll keep selling intel laptops for a year or two, but I doubt they'll keep refreshing them when new intel processors come out. When Apple moved from powerpc to intel they didn't keep releasing new powerpc based laptops.
Once web development shops start buying laptops with ARM chips, it will be a huge hassle if random nodejs modules don't build & work on ARM. At this point I expect most compatibility issues will be fixed, and that will in turn make deploying nodejs apps on arm a more reasonable choice.
Obviously we'll see, and this is all speculation for all of us. But I think its a reasonable path for ARM chips to invade the desktop.
Apple have 100% control over every part of their hardware and software from the get go, so it's inevitable they perform excellently on that hardware; they can optimise their code to death, and increment the hardware where it can be improved upon.
Web developers make up a fairly small proportion of the developers I've ever worked with, I have worked for software houses where web just isn't a thing for us other than for our own marketing. None of these people run Mac's, they all run PCs, and these PCs don't have the same control in their hardware/software process that will bring about the kind of "excellent" result you see from an iPad. They'll be relying on Microsoft to get Windows optimised, but Microsoft will be working with dozens, even hundreds of partners, Apple works with one, itself.
I suspect, also that they'll be more expensive because of all the new development the manufacturers have to put into releasing these new ARM laptops. Microsoft will have to put extra work into Windows, which will cost money, and finally those of us that run Linux will end up with something that hasn't had the benefit of the decades of x86 development on the desktop has had, thus, worse performance, at least in the beginning.
I could imagine a laptop equivalent of big.LITTLE, where you have x86 cores for the real grunt work, and ARM cores for power saving, bit I don't see pure ARM in the workstation space.
It'll be an interesting time, but based on my own experience, I'm betting on Linus with this one and I don't see myself or my colleagues or my workplace moving to ARM anywhere outside of non-laptop-portables any time soon.
It took 4 years of concerted effort to get most node things working right in windows.
Not all Mac users are devs.
Its not that all users are devs. Its that all devs might not be able to make their software work well under that environment.
That's for servers and scientific software (and perhaps 3D and such).
For regular devs the massive core count helps even with non optimized apps, because unlike the above use cases, we run lots of apps at the same time (and each can have its core).
I think you will see a lot of performance boost after switching to ARM. If they start on the "low end" then a macbook will be practically on par with a mbp. This might not be useful at first for native development, but I am quite sure that macOS, iOS and web development will be very much possible on these machines - the three domains that Apple cares most about.
A battery lifetime of 8 or 12 hours is plenty, and going beyond that isn't that much of a marketable strategy, unless it has to become 24h+ or something. A lower weight approach however would also mean a lower BOM for Apple, and more profit, while being able to shout "1/3rd lighter!" - and that's an easy sell :)
Unless you are deeply disconnected from the hardware, CPU architecture does matter. Most developers using macbooks I know have VMs for either Windows or Linux works.
It might be conceivable to use the ARM port of <Insert your Linux distribution here>, or the ARM version of Windows 10. But it would also require a good desktop virtualization solution for ARM. If Apple release its own solution or creates a partnership with let's say VMWare to release something at the same time an ARM macbook comes out, it might work, but barely, and I'm not sure if developers are at the top of Apple's priority list. In the end, with the Linux subsystem in Windows, choosing Windows as a development platform might make more sense.
As a side note, if Apple switches to ARM, I foresee a lot of cringing. The switch from ppc to intel was annoying for a lot of Apple users at the time, but there were a lot of goodies (bootcamp, better autonomy, better performance, VMs) that kind of made it up for it, basically, nothing was lost in term of possibilities, a few were actually gained, and only the transition was a bit painful. With a switch to ARM, you may gain a little in term of autonomy, but with macbook pro already at +8 hours (~a work day), not sure it's a game changer, at best you will stay the same in term of performance, and you will lose in compatibility with other OSes.
My feeling is it will be net zero as far as ARM servers are concerned until the hardware is made and is viable. Perhaps Apple ARM laptops will help with marketing ARM as a viable option, but we already develop on OS X in order to deploy to Linux without any great calling for OS X servers.
Cloud server “hardware” has also drifted from what you see in real hardware. There are numerous times in my career I’ve had to explain to deveopers of all experience levels that their SSD is several orders of magnitude faster than the tiny EBS volume they’re reading from and writing to.
In short, I think architecture mismatch just isn’t that important to most Web App oriented companies. My girlfriend works at a travel industry giant and they’re at the opposite end, putting IBM mainframes to good use. They don’t have much use for Macs and most of their developers seem to be on Windows instead of anything resembling what they’re deploying on. For the segment of our industry that does care, they’ll have options and will choose them regardless of what Apple, Google, and Microsoft do with ARM, Intel, Power, MIPS and other architectures.
Was the PowerBook as heavily used as a developer laptop as the MacBook is today?
(or Power Mac vs desktop PC as desktops were more common at the time).
I was not in the industry at the time (2000 - 2006) so I don't know the answer.
I'm not sure the architecture mattered as much as that did.
Can you not develop on an ARM emulator? Or just buy an ARM machine for dev work?
I was interested in trying the state of server-side ARM for my mostly-interpreted language, and I pretty much immediately found that it doesn't Just Work. I had a vision of spending many hours searching, creating and +1:ing GitHub issues and tracking discussions around "why package X doesn't work on ARM" and the developers saying at best "happy to accept patches" (which btw is the mantra for why "why package X doesn't work on Windows", and why you don't want to develop with Node on Windows to this day despite all of Microsoft's ecosystem work). Nope, not worth it.
I'm not interested in supporting ARM just for it's own sake. A 30% discount on the cloud instances is also not nearly enough for me or my team of developers to be spending any significant amount of time on this, solving problems unrelated to our core business.
Let's see again in a few years. Of course, if ARM development machines become mainstream by way of Apple, then the calculation changes completely.
That's the biggest chance for ARM: having the notebooks/desktops that are good or even better for most potential users.
The good news is that Clang can cross-compile fairly easily. Much better than gcc.
The bad news is that there are a surprising number of missing libraries on Ubuntu/ARM64. For example, Eigen3. And although the code is fairly compatible, there's some extra cognitive load in learning to debug on ARM. For example, calling a virtual function on a deleted object crashes differently.
I'm willing to put up with it for ARM's advantages in battery-powered applications, but I wouldn't just to save a few bucks on cloud servers.
Unfortunately C++ code is only portable if it is free from undefined behavior. Fortunately there are many tools now to debug these kinds of errors: https://blog.regehr.org/archives/1520
How so? The complications in cross compiling come from setting up all the system libraries, not the compiler and linker.
setting up the system libraries is relatively easy, make a copy of the target you're building for, assuming it has a setup for compilation, and use --sysroot=/path/to/target.
Doesn't that refute Linus' argument, not strengthen it? Almost all Android developers develop on x86. Intel thought, as Linus apparently does, that this would drive adoption of x86 on phones. It didn't.
Intel even got competitive in power efficiency and it wasn't enough to save them. In fact, I remember folks on HN predicting the imminent death of ARM all the way up to Intel throwing in the towel.
I think Linus is wrong here. His argument made sense in the '90s, but it's 2019. The ISA just doesn't matter that much anymore.
The primary customer of servers is developers who care less about cost and more about time to market.
For servers, developers are often the customers of their own software.
If AWS switches to running JVMs on ARM, and passes the cost savings onto me, I'd be in no position to argue.
That single instance you're running on already took half a dozen or so other systems developers and more before it got to you, so in your example you're the minority.
It's because of the work they've done, that you can not care about the architecture you're running on, not in spite of them.
Linus' argument is that x86 stays on top because everyone is developing with x86 at home. It's much less convincing to argue that x86 will stay on top because the people writing JVMs use x86 at home. There just aren't that many of them, and if they get paid to write ARM, they write ARM.
But that is just the first step. You then need developers who write applications on top of those languages be multi-core aware and design their applications to fully use the huge number of cores. At that point you'll loose a lot of your power efficiency because you'll need a lot more hardware running to do the same tasks. You'll also need developers who know how to think in an extremely multi-core way to get the extra performance boost.
RPis are built to a price and don't have the best CPUs that ARM can offer. A better comparison would be Apple's A chips.
Not sure if this is sarcasm or not, but if your project have that many dependencies not wonder it is hard to port anywhere.
It's very easy to disagree with him, because the server market doesn't work the way he think it does.
Google, Amazon, Microsoft and Facebook collectively purchased 31% of all the servers sold in 2018. The market for server hardware is dominated by a handful of hyperscale operators. The "long tail" is made up of a few dozen companies like SAP, Oracle, Alibaba and Tencent, with the rest of the market practically representing a rounding error.
These customers are extraordinarily sensitive to performance-per-watt; for their core services, they can readily afford to employ thousands of engineers at SV wages to eke out small efficiency improvements in their core services. They aren't buying Xeon chips on the open market - they're telling Intel what kind of chips they need, Intel are building those chips and everyone else gets whatever is left over. If someone else has a better architecture and can deliver meaningful efficiency savings, they'll throw a couple of billion dollars in their direction without blinking.
This is not theoretical - Google are on the third generation of the TPU, Amazon are making their own ARM-based Graviton chips and Facebook now have a silicon design team led by the guy who designed the Pixel Visual Core. It's looking increasingly certain that Apple are moving to ARM on the desktop, which further undermines the "develop at home" argument.
ARM won't win the server space, because nobody will win the server space. With Moore's Law grinding to a halt, the future of computing clearly involves an increasing number of specialised architectures and instruction sets. When you're spending billions of dollars a year on server hardware and using as much electricity as a small country, using a range of application-specific processors becomes a no-brainer.
All of this costs money, in terms of either having more developers/testers or having longer development time. So, in order to justify this investment, the second platform must be way cheaper in order to cover costs for extra developers/development time. And if there is a such huge difference and second platform works great, then why still have support for first platform anyway. Ditch it, and you will save yourself some money.
You could be an ISV, but again, your software will be more expensive if you need to support two different platforms. Which means that your customers must be willing to pay for it. Which brings us to same conclusion, unless there is a big saving by running software on alternative platform, nobody will care.
Google's data centers collectively use more electricity than the state of Rhode Island, or about the same as the entire country of Costa Rica. Their electricity consumption has doubled in the last four years. At average wholesale prices, their annual electricity bill would be about a billion dollars. ARM isn't dramatically more efficient than x86 in most applications, but specialised ASICs can be orders of magnitude more efficient.
I'm not saying that nobody cares about the choice of architecture, I'm saying that major tech companies with vast quantities of servers are beginning to develop their own silicon with custom architectures and custom instruction sets, precisely because that's vastly more efficient than using a general-purpose architecture that happens to be popular in the wider software ecosystem. The fact that nobody else uses that special-purpose architecture is unimportant, because it is economically viable for them to invest in tooling and training to write and port software for these weird chips.
Are Alibaba and Tencent Really in the long tail? I believe Tencent could be since it is about 3rd of the size of Alibaba, but if I remember correctly Alibaba will overtake Google by 2019 ( They had ~90% growth in 2018 ), and 2018 were already close to matching Google's Cloud Revenue.
I wonder if OVH is also big in the list. And Apple? Surely the Server Back End to services 900M iPhone users can't be small. How do they compare to say, Google in Server Purchase Terms?
It turned out that the power supply on their server was malfunctioning sometimes delivering too little power. Specially when taking the code paths my IP phone triggered.
The server software was built in php. It's not often you start looking for a bug in PHP but end up switching a capacitor in the PSU.
My point is that even if your write in php, php is running C libraries, that is running ASM that is running hardware and every part of this chain is important. There's no such thing as "works everywhere", it's just "have a very high chance of working everywhere".
(off-topic) thanks for the sds library. I'm a heavy user of it.
About SDS: glad it is useful for you!
Of course it didn't hurt that x86 quickly became the price/performance leader for servers, but he makes a good case that this will continue for at least the near future.
However, I do agree that cross compiling is good for finding bugs like this. And really if we are letting the compiler or architecture define undefined behavior, I find it better to break out the inline assembly. It's explicit that this code is platform dependent, and avoids any issues that a subtle change in the future may cause it to break.
Although, it's usually possible to define what your attempting in C without issue, and I only ever find I am doing such a thing if there is a good reason to use a platform specific feature. Generally, relying on how compiler handles uninitialized memory and similar is not what I call a compelling platform specific feature. Cross compiling is good in the regard because it forces everyone working on a project to avoid those things.
That is implementation defined, not undefined, behavior.
The spec also does mention implemtation defined behavior. However, undefined things still need to be handled.
True, undefined behavior can be implementation defined but that is not a requirement, and it usually is not.
But if the standard says it's UB, it's UB. End of story.
> Permissible undefined behavior ranges from ignoring the situation completely with unpredictable results, to behaving during translation or program execution in a documented manner...
Sure portability increases code quality, but at what cost to time to market which seems to be the primary concern for most developers these days?
Is there a major router vendor or something else that uses NetBSD in a big way?
Hotpoint, pioneer, bose, Samsung (some TVs and audio equipment), whirlpool and many, many more.
They all use netbsd in firmwares.
Platform portability issues have got easier with better adherence to standards and where you have largely the same code running across different ISAs (and no endianness issues between x86 and Arm) but the popularity of things like Docker suggest many devs do care about reproducible production environments.
The bigger issue is really that ARM servers aren't that much cheaper than x86 servers today, and its very likely a lot of that difference in cost is just Intel's synthetic market advantage that would disappear if ARM actually started becoming a threat (which has already started happening due to AMD becoming a threat). Phoronix did a synthetic benchmark of AWS's A1 instances, versus the C5 Intel and C5A AMD instances [1]; they're nothing special at all, even with price taken into account.
Maybe that'll change in the future, but now that AMD is in a competitive state, that's pushing Intel into high-gear and its hard to say that ARM will have any effect on the server market in the short-term.
[1] https://www.phoronix.com/scan.php?page=article&item=ec2-grav...
I think that that's the point. Portability to platforms with a strong tooling and usage base even in a different sector is ok and safe. The problem is when you try to do something like x86 -> Itanium or alike, that could take some time to stabilize.
Which is also interesting because there was a time before that where being on the same platform as the deployment environment was sometimes considered nigh impossible, such as the early days of the "microcomputer" revolution where a lot of software was written on big iron mainframes to run on much more constrained devices (C64, Apple II, etc). It's interesting to compare the IDEs and architectures of that era and how much cross-compilation has always happened. There doesn't seem to be a lot of computing history where the machine used to build the software was the same machine intended to run the software, it's the modern PC era that seems the unique inflection point where so much of our software are built and run on the same architectures.
(A lot of the modern tools such as VMs like the JVM and CLR are because of the dreams and imaginations of those developers that directly experienced those earlier eras.)
It's interesting how that tide shifts from time to time, and we so easily forget what that was like, forget to notice the high water marks of previous generations. (Even as we take advantage of it in other ways, we cross-compile to mobile and IoT devices today we'd have no way to run IDEs on, and would rather not try to run compilers directly on them.)
As confirmed by multiple interviews on the RetroGaming Magazine, almost every indie that managed to get enough pounds to carry on with their dream, invested into such setup when they started going big.
This may be more common in game studios, but was not mainstream in other segments.
Games were developed on bigger systems, and uploaded into them via the expansion ports.
Nowadays you will be running on a CentOS/Debian server or a Windows desktop, on an AMD64 compatible CPU. Not so long ago, there were tens of Unix and Linux variants with significant differences. It was impossible to support half of them.
Java is intended to be used by optimising JVMs. Java bytecode is rarely optimised -- that's left to the JIT. Using the Jazelle approach, where is the compiler optimisation step supposed to occur? Nowhere, of course! You'd be far better off with a decent conventional ARM JVM.
If you're on a system so lightweight that this isn't an option, well, you probably shouldn't have gone with Java. (Remember Java ME?)
[Not that I've ever actually worked with this stuff, mind.]
> Cross platform in theory, not so much in practice.
Optimistic that the OpenJDK folks would rise to the challenge if there was anything to play for. Writing a serious optimising JIT for modern ARM CPUs would doubtless be no small task, but wouldn't be breaking the mould. I believe it's a similar situation for RISC-V, currently.
Googles But wait, there's more! 'Graal'! Shiny new JIT engines are on the way, and ARM support is in there. Hopefully they'll perform well. [0] [1]
[0] https://github.com/oracle/graal/issues/632
[1] https://github.com/oracle/graal/pulls?utf8=%E2%9C%93&q=is%3A...
Having a cheap, viable ARM-native development platform drastically increases the chances of ARM-only killer apps to exist, this would be an advantage over the currently dominant x86 (just as there were Windows-only and Linux-only killer apps that cemented their ascent). However, if everyone is cross-compiling due to the cost, it means ARM will always be a secondary platform (at most)- it can't win by being the Windows Phone of platforms.
[edited for clarity]
If ARM comes anywhere close to viable enough to be "winning", there will be a good market for dev platforms, and somebody will step in and fill the need. Heck, some are even arguing here that the Pine64 already meets that need.
* New systems languages with promising levels of adoption
* Stablization and commodification of the existing platforms, weakening lock-in effects
* Emphasis on virtualization in contemporary server architectures
* "The browser is the OS" reaching its natural conclusion in the form of WASM, driving web devs towards systems languages
All of that produces an environment where development could become much more portable in a relatively short timeframe. It's the high friction of the full-service, C-based, multitasking development ecosystem that keeps systems development centralized within a few megaprojects like Linux. But what is actually needed for development is leaner than that, and the project of making these lower layers modernized, portable, and available to virtualization will have the inevitable effect of uprooting the tooling from its existing hardware dependencies, even when no one of the resulting environments does "as much" as a Linux box. The classic disruption story.
Why is this discussion so fixated on having a local development environment? It's 2019.
Right now ARM probably outnumbers x86 in number of machines running Linux by a very large margin. In my backpack there is one x86 machine and two ARM ones and that doesn't count the one that's in my hand
It all depends on what chips become available at what price. All cloud providers do lots of hardware design for their own metal. I'd they tell you that their next data center will be primarily ARM, they create a market for a million unit run of whatever CPU they choose.
As do the current top two supercomputers, Summit and Sierra, among others.
Working on a non-x86 platform makes you a second class citizen, you will experience issues that others have already ironed out on x86. Software has a long tail of niche code not actively maintained but still heavily used. It doesn't make sense to switch to ARM there.
If it's not much better then people will not switch due to these small annoyances, and there doesn't seem to be any fundamental reason for it being much better (Intel and AMD are perfectly capable of producing top-performing x86 CPUs, and the architecture should not matter much).
There might be different implementations depending on the architecture in some library you use. Also even with higher-level languages like Java it is possible to observe ISA differences: e.g. memory ordering.
I had the pleasure (?) of working on a C/C++ codebase that compiled on Windows and ten different flavors of Unix. It was all "portable", but all over the place there was stuff like
#if defined AIX || defined OSF1
short var;
#else
int var;
#endif
And to get it right, you had to compile it on all the platforms and fix all the errors (and preferably all the warnings).Yeah, cross platform is never as simple as same platform.
C++ is a different matter, but C++ portability is a headache even if you stay on Linux. Likewise, trying to maintain OS-level portability of monolithic codebases between Windows and Unix is a fools errand, which is why Windows Subsystem for Linux (WSL) is likely to only get better.
I don't see ARM displacing X86 on VMs offering like EC2 any time soon, an ARM offering will exists (and it already exists in fact), but it will remain a small portion.
However, some parts of a cloud offering are completely abstracted from the hardware: DNS, object stores, Load Balancers, queues, CDNs... for these, from the point of view of a developer, CPU architecture doesn't matter at all and if the cloud provider find it more interesting to use ARM (maybe with some custom extensions), it will probably switch to them.
From there, it can gradually go to services where architecture kind of matters, but not necessarily, like serverless, or Postgres/MySQL as a service.
And while it grows, ARM CPUs will improve for other use cases, and maybe overtake X86 VMs.
The other possibility is a massive cost reduction like 3 to 4 times cheaper for equal performances, but it's not really the case right now. Also, given the all the wasted money I've seen on AWS ("app is leaking memory? just use a 64GB instance"), I'm not sure it's a good enough incentive. However we are specialist at being penny wise and pound foolish.
The fact that we're talking about ARM makes this even more important. You're having to compete against x86, which requires increased core counts, and a lot more optimization and potentially even redesigns of your software to make your higher level environment to be perceived equal to x86. Businesses will need this, your boss will ask if ARM is as fast as x86 and they won't care to quibble about technological differences if you can't just get the same output speeds as their old, trusted hardware. There is only so much your language can do to cover your butt. At some point you'll have to be aware of your environment to compete.
It's not simple nor something devs will ever want or care to do in a big web app with several binary dependencies.
Just consider that a single Node app's binary deps could trivially include the entirety of Chrome itself, not just in the form of Node's v8 engine, but e.g. as the PDF rendering "headless chrome" wrapper Puppeteer.
And that's just the tip of the iceberg, add DBs, extensions, Python backend scripts, etc etc, and few will bother.
iOS seems like a huge counterexample (as you note.)
For Android development on the other, you don't have a good simulator, and the out-of-the-box dev experience relies on an x86 emulator of the ARM environment. In practice this means that in your day-to-day Android development, you're running the compile-run-test cycle by looking at your actual ARM device all the time, because the emulator is dogshit. I wouldn't really call it cross-platform development in any traditional sense, it's more like remote development, and a bad experience.
And the fact that the "develop on x86, test on ARM" workflow works so smoothly on iOS is strong evidence that Linus is wrong.
I’ve certainly heard of bugs that the simulator doesn’t reproduce because it’s not ARM.
And that isn't enough to get people to demand an ARM emulator. In fact, Android developers hate the ARM emulator and prefer the x86 simulator—more evidence against Linus' assertion.
This hasn't been true for years. The emulator shipping with Adroid Studio uses an x86-based image, and it's very, very fast as a result.
Android's emulator even has quite a few more features than iOS's simulator, such as mock camera scenes so you can even develop apps that rely on the camera on the emulator.
If anything these days the Android emulator soundly trumps the iOS simulator on all interesting metrics except maybe RAM usage. But, critically to Linus' argument, they both use the same architecture as the development machine.
I wouldn't be comfortable with an underlying architecture change to ARM for at least years to come and the usage decision would be based on general consensus on reliability that follows.
I feel like this shouldn't matter really, but people are amazingly lazy/developer time valued highly.
Source for this? Seems like pure speculation.
I'm looking forward to embedding Redis my Android app :)
I think maybe Linus T. is getting old, out of touch, and closed-minded, and I think we should be open to change and care less about every random thought he blows off.
Quote source: https://www.linux.com/news/linus-compares-linux-and-bsds