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#risc#instruction#isa#arm#better#more#same#instructions#don#code

Discussion (222 Comments)Read Original on HackerNews

wren6991•about 18 hours ago
RISC-V is... fine. It satisfies my two requirements for an ISA as a hobby CPU designer, which are:

1. Supported in mainline LLVM and GCC.

2. I can implement it without lawyers sending me a love letter.

Everything else, I can fix in post. There are enough good ideas spread across the extensions that I can assemble a reasonably put-together, curated embedded ISA with competitive performance and code density that admits a simple implementation.

I think Dmitry's points are largely on-target, though I have filed my usual statutory complaint that every rant that includes a bitfield diagram for the RISC-V J format should accompany it with a similar diagram for the Arm T32 BL encoding.

zephen•about 18 hours ago
> RISC-V is... fine

Exactly.

> It satisfies my two requirements for an ISA as a hobby CPU designer...

You probably have some unstated requirements as well, such as available toolchains and "vetted well enough to actually be able to run code."

Risc-V now occupies the Schelling point for people who, for whatever reason (rent-seeking and security top the list) want to leave the x86 and Arm ecosystems.

andrewflnr•about 18 hours ago
They did explicitly specify:

> 1. Supported in mainline LLVM and GCC.

Which pretty well encapsulates the ecosystem requirements.

xiphias2•about 3 hours ago
If RISC-V was good enough for AMD to use it in their controller for their GPUs and it became cheaper than ARM, and NVIDIA is using it in many places, it was better to build upon than getting a change in ARM/x86 licensed and approved by Jim Keller, it's good enough.

It turns out that the cost of waiting years for an ISA change is more costly than fixing whatever problems it has.

camel-cdr•about 10 hours ago
My disagreement with the article is mostly the following:

RISC-V is not an ISA, but an ISA generation framework.

If RISC-V would've standardized aarch64 1-to-1, the end result would've still been a huge extension mess, because a lot of people (RVI member) have different requirements and a very happy to build their own subsets, which would then be upstreamed because multiple vendors want the same subsets and compatibility between them. Obviously it would've been better, similar to if RISC-V spawned with RVA23 done, but development takes time and RISC-V International started, because people where already using RISC-V.

RISC-V also is the most DOSed ISA, with people proposing crazy stuff. Just the other day somebody proposed an instruction that would do up to 2^30 16-bit comparisons in one instruction at the largest VLEN. Because they wanted to improve their string processing usecase.

---

In my experience RVA23 matches aarch64 and x86 in uop count (without fusion), code density is better, instruction count is slightly higher. The biggest impact on the instruction count advantage of aarch64 over RVA23 is a single instruction, load-pair, which gets cracked at decode in every high-performance implementation, because it writes to to registers.

The Arm approach to code density is using multiple writeback instructions that have to be cracked and the RISC-V one is RVC. Both prohibit simple linear scaling of parallel decoding, so code density seems to have mattered to Arm enough to make the tradeoff worth it.

aappleby•27 minutes ago
Having written a few RISC-V cores, worked on a chip design project that used RISC-V cores, and generally being OK with the architecture in real-world use cases:

What the heck is this guy's problem? Just about every thing he mentioned as a problem is not a problem in practice. Too many options? Who cares, you're not trying to write code that runs on every possible configuration. Either you're writing embedded firmware and know exactly what core you're using, or you're writing an application that runs in an operating system and that system has a minimum ABI like RVA20 or whatever.

Array accesses take an extra instruction? Either you're in a tight loop walking a tiny array and you don't do the full offset calculation per step, or you're walking over an array in RAM and you're bottlenecked by the memory bus.

Hell, 90% of his arguments are "You can't detect X at runtime from user code without relying on some extension" - Yes, that is totally fine. Either you know your target CPU, or you don't - and then you ask your OS for details. This is not some dealbreaker.

From the article - "For example, if you are writing a kernel and want it to support all RISC-V cores" - NOBODY IS DOING THAT. You target a platform spec, not the combinatorial explosion of everything from RV32E to RVA22 or whatever the latest is.

You want to distinguish S mode from M mode? WHY DO YOU NOT ALREADY KNOW THIS?

Instruction encoding is weird? WHO CARES, the decoding is like eight lines of Verilog.

"Who can predict how their binary will act when a floating point store silently becomes a double-register move or a jump instruction, or vice-versa?" - THIS DOES NOT HAPPEN IN PRACTICE.

Guhhhhh, I don't get it. This guy has some vendetta and either has not shipped any risc-v code or is just in love with his own personal favorite instruction set.

Lord-Jobo•24 minutes ago
Yeah the OP post read to me like someone throwing the baby out with three drops of bath water. If this was presented more like “minor gripes with risc V” I’m guessing I wouldn’t feel that way
bfrog•20 minutes ago
The encoding being oddball does have some effects on linkers/loaders though I imagine?

Not that linking/loading is a super hot path people generally worry about.

aappleby•16 minutes ago
It has an effect only in terms of how big an offset you can encode in a relative jump, the _arrangement_ of those bits in the instruction is irrelevant (and already abstracted away in the compiler/linker framework).
bjornnn•about 18 hours ago
the significance and allure of risc-v, the reason china is investing heavily in it right now, has little to do with the technical details of how it works under the hood, it's the fact that it is an open standard not encumbered by intellectual property law. even if it isn't technically the best general-purpose processor architecture, it sets an important precedent by proving that it is possible to develop an open public architecture that the world can use to build computing devices without being extorted by a multinational corporation charging licensing fees or a geopolitical superpower enacting tariffs and sanctions.
zephen•about 18 hours ago
> it's the fact that it is an open standard not encumbered by intellectual property law.

There are actually many of those. But Risc-V has become, through effective marketing, the Schelling point for anybody who wants to avoid the x86 and Arm ecosystems, both for the rent-seeking behaviors you mention, and also, in some instances, for security reasons.

And, as others have mentioned, the ISA doesn't really matter. As long as it's agreed upon, then the CPU vendors can optimize on one side, and the compiler writers on the other side.

Sure, Risc-V has its warts, but you can certainly say the same about all the rest.

Retr0id•about 18 hours ago
I wrote an RV64IMA emulator recently. I just needed a virtual CPU core that could boot linux, and RV64IMA seemed like the simplest way to do that - and I think that's more or less true.

But then I wanted to be compatible with off-the-shelf toolchains and binaries, and I found myself needing to extend the ISA profile to RV64GC. Not a huge lift, but it involved pulling in a softfloat library. That got me as far as booting Alpine linux.

And then I wanted to be able to boot Ubuntu, which needed RVA23, which was comparatively a much bigger lift, involving the vector instruction set among many other things. At this point I think I'd have been better off just emulating aarch64.

Neywiny•about 15 hours ago
I think I get it. I've tried microblaze-v for a while now. And just look at their interrupt handler. https://github.com/Xilinx/embeddedsw/blob/master/lib/bsp/sta... . With the FPU enabled at compile time, that's > 128 memory ops per interrupt. That's insane, especially without an NVIC and chaining and all that. My latency was astronomical, and my maximum interrupt frequency was pitiful. Ended up doing the work (sw and hardware options) to get it to operate more like arm-m, but arm-m doesn't need that work to be done. NVIC is always NVIC, and NVIC is good
wren6991•5 minutes ago
Yeah, this is a bug. They should only be saving the FP state if it's dirty.

Also this is one of the reasons I think Zfinx is a better option for embedded (i.e., the standard FP instructions operate on x registers instead of f registers): 31 registers is plenty to hold a mixture of integer and floating-point values, and you avoid the worst-case context save penalty.

eek2121•about 18 hours ago
Started reading, however I wanted to add this in: a lot of people expect RISC-V to do too many things, and nearly all of those things are "beat every other architecture out there in every way/shape/form, while also being open".

The reality? The fastest "available" RISC-V CPUs don't match the best chips in terms of speed, power consumption, or die area. "available" obviously means the chips that have been released to the public and can be independently benchmarked.

I do think that is okay, however I also think that those involved with RISC-V aren't helping much, and current attempts at standardizing seem to be just creating a bigger problem.

That being said, RISC-V does seem to perform well in specific niches.

kev009•about 19 hours ago
It's basically MIPS all over again

The conclusion is honest, and you can of course brute force any ISA into any role. I used to loathe x86 for that reason, but now that I'm older I respect the game.

api•about 18 hours ago
X86 is the best argument that you can build a fast efficient RISC-V chip... because the X86 instruction set is a much bigger mess.

It just blows my mind sometimes when designers don't learn insanely obvious lessons from the past, basic stuff like "complexity is evil" and "make the fast path overlap with the most common use cases" and "a standard with N optional extensions is actually N! (N factorial) standards."

That being said all real world architectures seem to have messy corners and warts. RISC-V was a chance to do away with a lot of that and they... didn't?

kjs3•about 18 hours ago
I think MIPS is a great example, and even there I don't think there's the bizarre bifurcation of ISA options RISC-V brings to the table.

As a fellow olderster, I can't help but think that after almost 50 years of "ISA X is sooooo much better than x86 it's obvious ISA X is the future and x86 will be dead Real Soon Now (for whatever todays version of x86 is)" I can only shake my head ruefully and say "ping me when that happens".

Controversial Take (that history proves isn't): Software matters; ISAs don't.

kevin_thibedeau•about 17 hours ago
x86 chips don't truly exist anymore. They only use it as a compressed ISA for a more capable internal representation that can be freely updated at any time.
camel-cdr•about 11 hours ago
My disagreement with the article is mostly the following:

RISC-V is not an ISA, but an ISA generation framework.

If RISC-V would've standardized aarch64 1-to-1, the end result would've still been a huge extension mess, because a lot of people (RVI member) have different requirements and a very happy to build their own subsets, which would then be upstreamed because multiple vendors want the same subsets and compatibility between them. Obviously it would've been better, similar to if RISC-V spawned with RVA23 done, but development takes time and RISC-V International started, because people where already using RISC-V.

RISC-V also is the most DOSed ISA, with people proposing crazy stuff. Just the other day somebody proposed an instruction that would do up to 2^30 16-bit comparisons in one instruction at the largest VLEN. Because they wanted to improve their string processing usecase.

---

In my experience RVA23 matches aarch64 and x86 in uop count (without fusion), code density is better, instruction count is slightly higher. The biggest impact on the instruction count advantage of aarch64 over RVA23 is a single instruction, load-pair, which gets cracked at decode in every high-performance implementation, because it writes to to registers.

The Arm approach to code density is using multiple writeback instructions that have to be cracked and the RISC-V one is RVC. Both prohibit simple linear scaling of parallel decoding, so code density seems to have mattered to Arm enough to make the tradeoff worth it.

gblargg•about 18 hours ago
Just noting, even if instructions were 100000000000000 bits long, reserving a single bit for 16-bit encoding would waste 50% of the instruction space.
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atomicUpdate•about 14 hours ago
It’s kind of funny that all of the complaints about optionality apply equally to Vulkan. Google even created the same profile solution with “Android Vulkan Profiles (AVP)”.

I suspect Vulkan suffers from the same design by committee problem, which similarly caused it to miss seemingly basic features in the base spec that then need to be filled in with extensions and also made it too difficult for developers to want to move too.

HexDecOctBin•about 1 hour ago
Well, graphics programmers were used to the mess from OpenGL days. Now compiler writer and hardware designers get to share the sorrow.
dzaima•about 20 hours ago
Random minor-ish notes:

- A big problem with extension detection RISC-V has is that there's no central authority mandating vendors to not overlap things (obviously, given RISC-V being an open standard), so basic bitmasks for supported extensions is generally rather problematic (and of course even if you collected a standardized bitmask of all extensions from all vendors, it'd grow quite massive quite quickly); you'd at least want some grouping/marking by vendor, if not full extension strings. That said, it would be nice to at the very least have some standard in-memory blob format if nothing else, that you could query from any OS/libc. (which maybe somewhat-exists to some extent with a C API meant for libc, but as-is still doesn't attempt to figure out vendor extensions).

- many, if not the vast majority, of aarch64 TBZ/TBNZ are probably branching on a boolean; something RISC-V can also of course do in one instruction. Generally, comparing instruction frequencies across ISAs is messy if not approximately meaningless due to different sorts of things existing for solving the same tasks.

- "Having this happen means that instead of a clearly-understandable crash you get ... well ... anything." - RISC-V will do you one better - it doesn't even guarantee a crash when an instruction isn't defined at all! Overlapping extensions is definitely messy for disassembly, sure, but that's also just basically unavoidable as long as RISC-V is open (see my first point). (perhaps there could've been stricter rules for reserved-for-standard encodings than reserved-for-vendor ones? of course still doesn't help vendor encodings, nor non-compliant vendors)

ethin•about 19 hours ago
I can definitely see his argument, although I still do believe RISC-V did a lot of things better than x86...

I really do hope that the arch is eventually able to fix this. Better that there be an open ISA than them all be closed IMO.

wmf•about 19 hours ago
Better than x86 is a low bar when ARMv8 exists.
hn_submit•about 18 hours ago
He has good points, except he misses the goal posts completely.
kjs3•about 19 hours ago
Yeah...risc-v can learn from 50 years of x86 (among others). And yet.......
hn_submit•about 19 hours ago
Why is he complaining about everything being optional in RISC-V? Isn't that the whole idea of RISC-V? The market can sort it out for themselves. RISC-V is already dominant in the MCU space despite its flaws, and many of them will be solved in due time.

Most MCUs are used for dead-simple solutions, like electric blankets and microwaves with segment displays or LEDs. Whether their interrupts are handled in 44 or 22 cycles doesn't really matter that much.

And RISC-V does have a link register, making returning much faster when the parameters for the interrupt can all fit in registers and no external memory access is needed, as is the case with most MCUs which put the stack in RAM. To fetch the return address an external memory access is always needed even if there are no parameters.

tsukikage•about 19 hours ago
He explains, at length: there is no sane way to determine what the hardware you are running on actually supports, and so there is no sane way to ship compiled code that is both compatible and performant.

We already had the mystery meat CPU wars several decades ago. We know how to make sane ISAs now and should be past that.

mappu•about 18 hours ago
I'm not sure this is a real problem - for embedded you know a priori - for arbitrary desktop/SBC machines, misa will be available in kernel mode and /proc/cpuinfo will be available in user mode.
hn_submit•about 18 hours ago
You don't need to probe what hardware you're running on because you know being the manufacturer. The code is bespoke for your solution and nothing more. No foreign code is going to run on it.

Different problems require different solutions. An electric blanket doesn't need a barrel shifter for multiplication or even floating point hardware. The ISA can change depending on what's needed to solve a particular problem, not to provide an "one size fits all" solution.

kjs3•about 18 hours ago
I don't think I've read a more "doesn't actually know anything about how software is produced, but with absolute confidence knows everything about it" post in a very long time.
exmadscientist•about 18 hours ago
> You don't need to probe what hardware you're running on because you know being the manufacturer. The code is bespoke for your solution and nothing more. No foreign code is going to run on it.

In practice, this is not the case. The scenarios mentioned in the article involving binary blobs are pretty common, as well as other similar scenarios.

Really, I'm going to go out and say it bluntly: it is just completely freaking stupid to make an architecture where everything is optional but you have no way to query what's present. If you're going to go the optional-pieces route, you have to have a query mechanism of some sort. As the article explains, you cannot even trap instructions on RISC-V to figure out what your core supports, because bad instructions might belong to some other option. Complete. Idiocy.

nickff•about 18 hours ago
>"RISC-V is already dominant in the MCU space[...]"

Where are you getting the idea that RISC-V is dominant? As someone who works in this space, that doesn't jive with my experience or the sources I've seen.[1] 32-bit microcontrollers only recently achieved a majority market share for gosh sakes!

RISC-V is claiming that they have achieved 25% market share across selected segments, but they're still behind ARM (and x86).[2]

[1] https://www.grandviewresearch.com/industry-analysis/microcon...

[2] https://www.aestechno.com/en/risc-v-2026-arm-x86-market/

gertop•about 17 hours ago
Risc-v is nowhere near dominant, people are just being swayed by headlines such as Western Digital or Nvidia shipping billions of risc-v cores.

I do find it odd that you go on and compare to x86 marketshare however, the topic you've quoted is very clearly about MCU and whilst 8086 MCU still exists they haven't been used in greenfield projects for decades. Let alone any more recent x86 implementation.

walrus01•about 18 hours ago
> The market can sort it out for themselves

Because nobody will write software for 300 unique hardware variations of a platform that have inconsistent capabilities. Consistency is one of the reasons why x86-64 with extensions like like SSE, AVX2 etc is popular.

kjs3•about 18 hours ago
Noone uses an 8051 because it's elegant. Billions are still still sold every year because no matter if you learned it in the 70s or last week and no matter who made it, the basics are exactly alike. Software matters; ISAs don't.
hn_submit•about 18 hours ago
I believe the market will standardize on certain extensions for specific solutions. No one is going to make a mobile phone with only RV32I, for example.
fluffybucktsnek•about 18 hours ago
> Because nobody will write software for 300 unique hardware variations

Who said they have to? One can select a RISC-V configuration for a baseline for a particular purpose. Desktop? Choose the one that's most powerful.

ARM is more popular than x86 and is less consistent than it.

monocasa•about 16 hours ago
> The second category for big-compute is actual desktops and SBCs that do interactive computation, browsing, gaming, and other such "desktop work". I do not expect RISC-V to be a serious player at the top of this market. Simply put, the architecture is not designed for it, as pointed out above. Additionally, this market has the margins to afford licensing a much-better-designed aarch64 core from ARM, and gain proper support from a much larger corpus of software. Before you get your megaphone to shout about "openness", please note that the openness of the RISC-V spec is not relevant here at all, because an open spec does not magically materialize a well-designed out-of-order core for you for free. And if someone were to design a good out-of-order core, they would not be giving it away for free. An open spec does not mean every implementation is free.

I basically disagree with this. Not because this isn't the current state of things (it absolutely is), but because we're at a bit of an inflection point where mooore's law has proved itself to be an scurve, and we're very clearly well into the top half of it. From that, gate counts per core will also start to ossify, and that means the longer latency for getting an open core design off the ground initially will also start to make sense.

phire•about 15 hours ago
I'm not sure the gate count argument works in RISC-V's favour.

While RISC-V is quite optimised for gate count for small cores; In large wide OoO cores the variable length encoding really bulks out the decoders.

You basically have the same requirement as x86, where you have to attempt to decode a 32-bit instruction every 16-bits (because there is no alignment guarantee for 32-bit instructions), and then cancel out the invalid ones. It's not quite a bad as x86, you only need to look at two bits, but it still forms a long dependency chain, and probably requires at least one extra decode stage with complex routing to pick out all the valid instructions.

monocasa•about 15 hours ago
You don't really have to have a separate decoder every 16-bits. What you have is a length decoder every 16 bits (so just a single nand gate over the first two bits versus a huge chunk of the prefix/opcode part of the decoder for x86), which then feeds into a set of muxes for the actual decoders. The actual increase in complexity ends up coming from the critical path of the stack up of length selection affecting start addresses (and therefore mux selections) for later instructions in the block, but even that's not nearly as bad as it sounds because you can use the same base trick behind a carry lookahead adder. When I did some experiments a while back, it ended up being less than half a pipeline stage overhead versus fixed width instructions kind of across the board.

So not nothing, but very far from a deal breaker even for wide 8, 10, or even 12 wide cores.

phire•about 15 hours ago
Yes... but then you are kind of wasting a pipeline stage on nothing more than length decoding.

I suspect a design with a full decoder every 16-bits might actually win on everything but gate count, mostly because it can deal with variable length instructions and variable number of ÎĽops per instruction in the same step. A decoder that doesn't output a ÎĽop because it was clobbered by a previous instruction, can be handled the same was as a decoder that didn't output a ÎĽop because of ÎĽop fusion.

Actually, that approach might actually eliminate the need for the extra pipeline stage (just at the cost of gates).

It's certainly not a deal breaker. But it's a valid criticism of the ISA.

brucehoult•about 13 hours ago
> you can use the same base trick behind a carry lookahead adder

YESSSS.

I've been pointing this out for years and years.

By the point that you're looking at the same propagation delay as a common 64 bit adder you're decoding 64 chunks of 16 bits per cycle. That's 128 bytes, or a 32-64 instructions wide decoder.

That is so much wider than anyone is making or contemplating — or that even makes sense given the size of basic blocks — that it's just a non-issue.

camel-cdr•about 9 hours ago
Nobody in high-performance does fixed-width instructions that allow lineary scaling parallel decoders. Arm basically requires certain instructions to be cracked into multiple uops before rename. That ends up analougus to decoding compressed instructions. RVC increases complexity before decode, how much that impacts things idk.
imtringued•about 11 hours ago
I don't believe this will impact performance in practice, because nothing forces CPU vendors to implement fast compressed instructions. If compressed instructions become slower than non compressed instructions as the instruction decoders get wider, compilers will stop emitting them in the future.
dmitrygr•about 16 hours ago
Whom do you expect to work for free to design you a state-of-the-art core?
rablackburn•about 10 hours ago
The future set of people who once would have "work(ed) for free to design you a state-of-the-art kernel"? If the tail is long enough passionate hobbyists will do it because they love it...eventually.
monocasa•about 15 hours ago
The same kind of people that 'worked for free' to develop Linux.
dismalaf•about 2 hours ago
Most Linux devs have been corporate employees getting paid to develop it for a very long time. It's not the early 90's any more.
api•about 3 hours ago
Linux is decent for its core use cases, but it is far from a solid pro-grade OS in a lot of areas... and in the areas it did get there, it took a long time to get there.
dmitrygr•about 15 hours ago
If those people build cores like linux kernel is built design-wise, i will PAY to watch the spectacle.

You do realize that Linux got basic SMP support 3 years after NT, and it was shaky for a while after? It still does not have reliable sleep-wake. And it only added native async file i/o in 2019, while NT has had it on the same hardware since 1993? So.. i'll expect an in-order core with an IPC south of 0.5 that cannot exit low power sleep 30% of the time in a decade or so.

inkyoto•about 15 hours ago
> […] we're at a bit of an inflection point where mooore's law has proved itself to be an scurve […]

Well. May's law[0], which states that:

  Software efficiency halves every 18 months, compensating Moore's Law.
effectively counterbalances Moore's Law and, with continued technological process improvements and optimisations, the proverbial arm's race is likely to continue for a very, very long time – just a few days I was reading a wonderful article from 1998 on the state-of-the-art DEC Alpha 21264 CPU which mentioned the 21264 and POWER3 as the world's most complex CPU's each boasting 15+ million transistors and also mentioned the equally state-of-the-art 0.18 micron processes. The 3 old year M3 Max design, in comparison, supplies over 90 billion transistors to the mainstream consumer.

Humans are resourceful, after all.

[0] https://en.wikipedia.org/wiki/David_May_(computer_scientist)...

monocasa•about 15 hours ago
That's sort of orthogonal to what I'm saying.

And the M5 doesn't have 500B transistors. We're well into the beginning of the ossification. Hell, it arguably started ~2006 with the end of dennard scaling leaving us with Tomasulo OoO cores being the design that makes the most sense for application cores, just getting wider over time as we get more gates.

api•about 3 hours ago
Eventually CPUs and GPUs converge: huge numbers of CPUs with wide vector units.
UncleOxidant•about 17 hours ago
Is there a RISC-VI in the works where they try to learn from the RISC-V mistakes to make improvements?
dmitrygr•about 17 hours ago
Given the amount of learning that could have been done before RISC-V and wasn’t, I wouldn’t have such high hopes.
kazinator•about 16 hours ago
> Say you want to store a byte to a register plus offset. What range of offsets can a [compressed] 16-bit instruction encode? Zero through three.

If a compressed instruction could load or store a word to a word-scaled offset 0-3, relative to a register base address, that would be quite useful. It could be used for accesses to all structures four words or smaller.

dmitrygr•about 16 hours ago
In thumb, it can encode 0..31
brucehoult•about 12 hours ago
And Arm dropped a T16-like encoding entirely from their 64 bit instruction set.

If they did everything exactly the same they would be the same ISA not different ISAs.

It's just as easy to point to things that RVC can do that T16 can't.

You need to look at a far larger picture to decide on who made the better decisions overall.

kazinator•about 13 hours ago
Honestly, I would feel uncomfortable if I were designing an instruction encoding and came up with some addressing mode format where there are two bits for a displacement. I would pull myself aside and have a word with myself. That's just me, though.
tonypapousek•about 16 hours ago
Always good to see stuff from Dmitry; his presentation (Linux/4004) at last year’s Teardown was awesome.
erichocean•about 1 hour ago
What I like about RISC-V is not the ISA per se, but the ecosystem that has developed around it, particularly Chisel and CIRCT.

Specific choices for instruction encoding is less interesting, especially in the age of AI.

80x86•about 23 hours ago
100% agree with dmitrygr.

I was excited when I heard about the project just after it started. However, past experiences taught me to wait before getting excited about the new 'shiny thing'. I did it differently with RISCV. I waited. I am glad I did. It took a long time for actual silicon to appear. Also, the silicon today has all the facepalming special cases mentioned in the article. Its almost like those old soviet era cpus that had the list of bad instructions handwritten on the package.

Overall, RISCV was a minor spin on MIPS, but without really learning from other processors.

So why is everyone still pushing for it? It has the words 'open' on it. People pattern match on that marketing.

As part of that marketing, they also pushed this attitude from the project... 'RISC won'. I think Chester Lam said it best when he wrote his essay stating that RISC didn't win... OoO archs won. I couldn't articulate that nearly as well as he did. If you haven't read it, I recommend it.

So, yeah, here we are. Many people will follow the bandwagon, but they will find that RISCV will not make a significant difference.

I am glad we still have Arm (in all its many forms), x86, and others. (btw, despite my username, I don't think x86 is the best either :-)

Also, if you aren't trying to ship a product, you can experiment with ISAs on an fpga. Yes, fpgas are a lot slower, but they are also a lot more fun. Especially with the great work done to create open source toolchains. Heck, if you are really serious (slighly crazy), you can build your own chip. For the foreseeable future ASIC shuttles are available at prices under $10k. (again, you have to be a little crazy)

p_l•about 20 hours ago
I'd say RISC won, when you consider how "RISCy" x86 is[1] compared to the ur-CISCs (68k, VAX) that RISC projects were in opposition to.

[1] Not because of often-called "risc like" microcode engine, but because the most complex addressing mode on x86 usually decodes two microinstructions, and decodes in single cycle. In comparison VAX needed separate pipeline for instruction decoding.

random__duck•about 20 hours ago
> slighly crazy

What a lovely euphemism.

Signed: someone slightly crazy.

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bhewes•about 1 hour ago
Ah rants from a non designer. So Patterson and crew, don't know what they are doing? Yeah hard pass.
mappu•about 19 hours ago
RVA23 hardware is available (e.g. SpacemiT K3)
Joel_Mckay•about 18 hours ago
Some are already on RVA23.1 even before the standard made it to more than 4 manufacturers product lines.

The meme joke about standards is sadly relevant for riscv. =3

https://xkcd.com/927/

d-us-vb•about 17 hours ago
As I’ve come to understand it, standards simplify intensionally, not extensionally. For those who select a part that is compliant with a standard, more standards to choose from is better because engineers are able to make better tradeoffs; they’re not forced to select a part that does way more than the application needs thus making the product more expensive if there are lots of “competing” standards: some do less some do more.

For RV, a litany of standardized modules creates a system where each capability that the module provides will have a standard interface. No manufacturer is forced to invent extensions bespoke to their implementation, but they’re not forced to support everything the most powerful models do either.

Just my two cents.

exmadscientist•about 19 hours ago
> After being asked for the Nth time to explain, I decided to put it all down in one place so that I could simply link to it when asked next.

Bookmarked, because I've needed the same.

The worst part of all this is that they really should have known better by now. In 1980 you could make these kinds of mistakes, because this was pretty new territory. In 2020, doing this just makes you stupid. Or ignorant. Or both.

NetMageSCW•about 18 hours ago
I’m not so sure - the 6502 existed in 1980 and showed the way.
bsder•about 18 hours ago
6809 is a better exemplar, but, yeah, we knew this stuff way back when.

The problem is that everybody around RISC-V wants to sell IP instead of a chip. Most of the worst brain damage follows from that.

The rest of the brain damage follows from "We want to compete with ARM A-Series cores." No. Just ... no. Nobody willing to spend that much on a processor gives one iota of damn about ARM licensing fees.

So, the semiconductor market wants a cheap, consistent chip that operates in the deep embedded space while the RISC-V ecosystem considers the mere thought of that to be icky beyond reason. And China will push on this like Longsoon and pray that somebody figures out how to make it not suck (Prediction: they won't succeed.)

And, the worst part is that RISC-V has basically lost its window. The single possible advantage that RISC-V had was that as people converged to a shared tooling ecosystem it would create lockout. Unfortunately, that convergence never happened so, at best, we got some shared compilers. And, now, AIs can basically one shot all your other tools around it and probably the compiler not far behind. And there goes your ecosystem lockout.

hn_submit•about 18 hours ago
Because selling "bits" is very lucrative, whilst actual hardware can lead to huge losses if it doesn't sell. Just ask Microsoft.

It's no wonder Microsoft is pulling out of the game console market and handing it over to PC manufacturers to make the actual hardware.

random__duck•1 day ago
I wonder if they will be inviting him to the next RISC-V design committee meeting.
dmitrygr•1 day ago
For a friendly meeting, like Julius Caesar had on March 15, 44 BC.
random__duck•about 21 hours ago
"This time its different".
phendrenad2•about 7 hours ago
Things are generally defined by the neccessities that led to their creation. x86 was designed for home PCs and has been forced to evolve with PC technology. ARM was designed to take advantage of RISC architecture, and were forced to evolve with the mobile industry. What was RISC-V invented for, and what external forces have acted on it since then?
IshKebab•about 19 hours ago
I think a lot of this criticism is completely true. However it's also overblown. I do think the ISA matters, but little mistakes like these definitely don't matter enough to preclude making M-series class chips. The reason it hasn't happened yet is simply time. It takes a really really long time to build up to that level of performance.

They've definitely gone overboard on the optionality stuff though. I don't think it matters too much for the actual CPU design but it makes verification and writing portable software a huge pain. Profiles definitely help but still...

Oh also I feel like you could probably come up with an equally compelling list about any other ISA. It's not like the fact that something has flaws means it's bad.

eek2121•about 18 hours ago
ALL chip designs are an exercise of minmaxing these 3 variables:

1) power

2) performance

3) die area

SOME chip designs also care about a 4th:

4) die area.

NO design has the best of all...it is impossible since you have to trade 1 for another. The reason x86 has been dominate for so long is that is strikes a good balance across all areas, especially #4. A good balance is what you need for a good chip.

EDIT: oh and you can't beat the system I mentioned above. The laws of physics are the reason why.

NetMageSCW•about 18 hours ago
I don’t think making optional what optional features are available is a little mistake. It is a torpedo to the waterline.
IshKebab•about 18 hours ago
It's not. In practice you have two scenarios:

1. You have a microcontroller. You're compiling code yourself and the docs tells you what features are available and which compiler flags to use.

2. You are writing application code. In that case you simply target RVA23.

The edge case is the same edge case where you use CPUID on x86, I.e. you want to target say RVA23 and RVA28 in the same binary. In that case you do have to use the OS APIs to discover what is supported... which is slightly annoying, but in practice you're just calling a different function.

In theory `mconfigptr` will eventually make this a lot nicer but nobody has put in the effort to define how it works yet (last I heard they were looking at ASN.1 sick emoji).

brcmthrowaway•about 19 hours ago
> What does a cheap microcontroller core need? Let's inspect what they are used for. Typical use cases are to interface with and quickly reconfigure hardware blocks in a larger chip, eg in an MP3 player, an SD card, or a USB stick. The hard work is done by custom IP and the CPU core is just there to occasionally prod a register or configure something.

He forgot electronic cigarettes (vapes)

__d•about 19 hours ago
So … use RISC-V as the strawman, and create a community-based RISC-6 that doesn’t have these weaknesses? Better to get in now before it becomes too solidly entrenched.
inigyou•about 19 hours ago
You can't make a community-based ISA, it's not possible unless you have a community-based fab. He who makes the chips makes the rules.
IshKebab•about 19 hours ago
Likely impossible unless you somehow come up with something vastly better (unlikely).

None of these things are remotely bad enough to make the downsides of using another ISA palatable.

NetMageSCW•about 18 hours ago
Anther ISA like ARM? It seems pretty palatable to just about everyone not academic.
duskwuff•about 18 hours ago
The ARM ISAs are not free to implement. ARM holds patents relevant to the ISA.
IshKebab•about 18 hours ago
You're vastly underestimating the amount of work that has gone into RISC-V that would need to be redone. It's not just a spec. There's an absolute mountain of software and hardware supporting it.
brcmthrowaway•about 19 hours ago
What happened to the Rivos accelerator cores?
tsukikage•about 19 hours ago
Meta acquired Rivos last year.
IshKebab•about 19 hours ago
They got bought by Meta who then fired half of them.
brcmthrowaway•about 19 hours ago
It's clear that RISC-V started as an academic exercise (albeit from a group with esteemed credentials) and they had to bolt on these hacks to make it work in industry.

Sad.

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