Intel says one of its 13th Gen CPUs will hit 6GHz out of the box
theverge.com
theverge.com
Comparing the whole system against an actual task is the only way to really measure - everything else, including the clockspeed, is marketing.
My claim is that (1) results on irrelevant benchmarks like SPEC do matter for CPU sales (probably not for big tech companies that operate their own datacentres – they’ll likely do their own testing – but likely for many ‘savvy’ consumers and also for companies that want to market their computers as having fast CPUs) and (2) the complicated world of benchmarks is handled very poorly by the people who tend to evaluate CPUs with them and publish their results.
https://en.m.wikipedia.org/wiki/Advanced_Micro_Devices,_Inc.....
Edit: found it - https://en.wikipedia.org/wiki/Performance_Rating
The problem was that the CPU clock speed levels categorising your system as high/mid/low performance were quite obviously based on Pentium 4 clock speeds, even though at the time AMD actually had a market share of around 40 – 50 % for desktop computers. This meant that everybody with an AMD processor would find his/her performance and graphics settings mysteriously restricted. People using the first generations of Intel's own Core i-processors had similar problems if they were still playing those games a few years later.
The saving grace was that at least things weren't totally hard-coded – things were controlled by a rules file in a plain text-based format, and so it was comparatively easy to just change the expected clock speed levels to something more reasonable for a non-Pentium 4 processor.
This was also useful because the GPU detection had its own share of problems down the line – I still occasionally play Sim City 4, and for some reason or other on my current system the game doesn't correctly detect the amount of video RAM I have and therefore resorts to extremely restrictive fallback settings unless I manually override it, and AMD recycling graphics card model numbers also caused some confusion that had to be manually fixed.
Sometimes this competition thing is a distraction. Like now there is an emergency meeting for the three year roadmap to shrink to 1 year and with less innovation than they planned it to have, and the actual three year roadmap becomes 5 years because of wasted energy for short term gains.
But other times when competing, long visions lose. And so do the workers who have them. This is detrimental.
I am not ever working for something like this I hope, but I do see others work in this way. And sometimes they are gifted yet unable to make that gift work.
Though I hope the pendulum is swinging enough to keep driving the improvements. My current desktop CPU is absolute overkill while sipping relatively little power during my light usage.
It'll be faster than a Ryzen 5000 drawing the same amount of power: according to AMD the Ryzen 7000 will be "up to 49 percent"[1] faster at the same power draw.
[1] https://www.pcworld.com/article/918007/amd-launches-ryzen-70...
The official announcement indicated significantly better power efficiency. AMD claims that if you limit both to a 65W TDP, you'll see 74% better performance on the new generation, but that even at full TDP, the efficiency will be higher.
However, I am waiting on the actual reviews... not making multi-year decisions based off of limited, pre-release information. If it is more efficient, then vowing to stick with an older, less efficient product just because it has a lower TDP number on the box doesn't make any sense. Efficiency is the only thing that matters when seeking to avoid a space heater, since the less efficient product will generate more heat for a given amount of work. All of these processors will clock down when idle
https://www.google.com/search?q=ryzen+7000+running+hot&rlz=1...
But, all of this is still irrelevant to efficiency. Running at 230W for 1 second to complete a task would generate less heat / use less electricity than running at 150W for 2 seconds to complete the same task.
But, efficiency is often a curve, and you can supposedly get crazy efficiency by limiting the TDP of Ryzen 7000, so it is an option for those who prize efficiency above maximum performance, and it would still represent an improvement over a Ryzen 5000 at the same TDP. As I said, though, we’ll need to see actual reviews.
These CPUs aren't consuming 250W all the time. Those are peak numbers.
Both Intel and AMD are providing huge efficiency gains, too. Rumors show the new i7 13700T Raptor Lake part can have a 35W mobile TDP and still outperform a Ryzen 7 5800X: https://www.tomshardware.com/news/intel-13700t-raptor-lake-a...
Speed scales nonlinearly with power. These high TDP parts are halo parts meant for enthusiast builds where it doesn't matter that the machine draws a lot of power for an hour or two of gaming.
It's also trivially easy to turn down the maximum power limit in the BIOS if that's what someone wants. The power consumption isn't a fixed feature of the CPU. It's a performance/power tradeoff that can be adjusted at use time.
CPUs and GPUs keep getting hungrier and that is just not where we should be heading. I wish the perf increase didnt keep coming along consumption increase each gen.
Don´t let the TDP of T-models fool you. Power consumption to reach boost clocks can peak up to 100W for T-models of the previous generation, and the 13700T probably needs to run close to that to outperform a 5800X.
U gotta pump those numbers up, those are rookie numbers.
But they require a heat-sink management designed for that peak. And it is insane. Try to keep microwave oven under 100C :-)
As technologists, we should support manufacturers pushing the limit in power and performance. It helps drive overall efficiency and move technology forward.
1070 vs 3070 is +52٪ average (145 vs 220w) and +66% (154 vs 250w) sustained.
2070 vs 3070 is +10% (195) or +24% (203) sustained.
Even the 3060 you defend draws power as older flagships and 500w arent enough even for mainstream gaming.
And it keeps getting worse both on gpu and cpu size.
We aren't technologists but consumers, and reality is that x86 and gpus are in near duopolys so the 3 companies involved have little reasons to do a better job and it's clear Apple socs or more and more cloud moving into arm have not been enough of wake up calls.
In fact, the 3070 is significantly more power efficient than the 1070 is. Because while yes power is up 50%, performance is up 100%. So performance per watt has continued to improve even as power consumption has also increased.
The reality of power consumption is that it's the main lever to pull right now to deliver generational gains. It's the same lever Apple pulled for the M2 even.
> more and more cloud moving into arm have not been enough of wake up calls.
You mean the ARM enterprise SoCs that use just as much power as x86 does to deliver on average worse performance?
Electricity needs of an average household in western world are going to increase a lot in coming decades, with transition to more electric heating, cooking, cars, etc. Gaming machine power usage is minuscule compared to those.
While most house electronics keep pushing to consume less, computers go in the opposite direction.
This also adds tons of heat in my laptops or the air.
Working or gaming in a small room during hot days is painful.
Even consoles making noises of a turbo jet are nowadays considered normal. It's a disaster.
Back of the envelope calculation here:
Assuming an average oven consumes 2kWh, and a CPU 0.1kWh:
Oven for four hours (average weekly usage) would be 2 * 4 = 8kWh weekly.
CPU for 24 hours, 7 days a week = 0.1 * 24 * 7 = 16.8kWh weekly.
If some of Nvidia's next generation 4xxx series GPUs are close to 1000w draw as many rumors suggest, the total draw of a high spec Intel/Nvidia system is going to probably have similar running costs to an electric space heater when playing demanding games. The existing 3090ti is already a 500w part, which not so long ago was enough to power a whole system in addition to the GPU.
Now I am all for being green but there are things in my household that are much more of a concern than this.
Huge datacenters full of these chips is one thing. A personal computer for hacking & gaming probably not such a big deal.
Those rumors are for millisecond long transient spikes, not an average of anything. So basically the rumor is a 500w peak load. Just like how the current 350-400w GPUs have transient spikes to upwards of 800w. It's not a problem in terms of power consumption (although obviously the increase from 400w to 500w would be), rather it's an issue with over-current protection in power supplies tripping. It's a "need bigger capacitors" type problem.
It adds up, especially in data centers where you end up needing even more megawatts of power and cooling capacity.
Not yet!
My standard dev machine is ~1kW flat out, ~500W most of the time, probably 100W idle. Runs for about eight hours a day. Say 500W is the average, suggests 4kW/hr a day. That's about $2 a day in the UK.
(those power numbers are relatively high - it's an elderly threadripper with two GPUs)
I did a nCase M1 build recently and my objective for the build was small as possible, quiet as possible, and as powerful as possible in that order. I still ended up with a pretty powerful machine by going with an i3-12100 instead of an i5/i7 which uses much less power and puts out less heat. The RTX 3080 reference card was the biggest card that could fit into the case which I undervolted.
A lot of people are undervolting their RTX GPU's because for an only about a ~3% performance loss you get about 10C less temp which translates to far less fan noise. I don't know why Nvidia doesn't just have a one click button for people.
nCase unfortunately have discontinued this case based on 'market factors' which I suspect means that they don't anticipate things to be getting smaller and cooler any time soon.
Bah, this is brilliant. I just upgraded a 1070 to a 3070 and am flabbergasted at how much heat it dumps into my room. One of the reasons I did not go with the 3080 was the ~100 watt lower draw.
Do you know of any good tooling to assess the impact of undervolting or is it a manual guess-and-check process?
You can get great results pretty fast this way. My Mini-ITX build is about as thermally compact as possible given the parts (3080+Ryzen 5600X, NZXT H1), and I'm pushing my PSU to the absolute limits in the stock settings, so undervolting is important for safe power margins since the 3080 can reach ~360W in my testing. I think 30 minutes of tweaking got me something like a +80W power drop for only 10% FPS in Read Dead Redemption 2 @ 4k60fps; I never breach 300W now which is within my personal safety margins, and can native 4k everything.
Some software like Afterburner have "Overclock Scanner" tools that will run benchmarks and repeatedly try to dial these settings in for you, but it really is easier to just modify the curve manually and test your specific workloads.
Perhaps I'll wait with the video card until they give me the option to do the same there...
With the same priorities and a deemphasis on graphics, I present to you the Mellori-ITX: https://github.com/phkahler/mellori_ITX
Uses the CPU fan as a case fan. By protruding through the top we get a lower profile than is possible with any other ITX case (well the standoffs can be cut down but that has not be optimized).
My next build will be an upgrade of the same design but with a Zen 4 or 5 chip with 8 or 16 cores depending what fits in the power constraints of the Pico-PSU. It will be a while though because that system is still more than enough for everything I do with it.
Certainly not much more expensive than a regular mATX build imho.
I also have a mini-ITX Lone L5 build with an i3-12100 and no GPU with a 192W PSU. (Effectively - PSU is technically a bit more, but the AC/DC adapter is only 192W.)
Yeah, I did exactly that with my 3080. Dropped ~50W depending on the game and I was able to keep the same clock speeds.
You can also limit your i7 power usage, so no need to go for an i3 if you have the money.
Rented house so can't do much about the absolutely useless heating setup.
I have a relative whose house burnt down due to stapled wiring in the attic. Thermal cycling eventually created a short. When your attic catches on fire the smoke alarms go off in time to save the people, but the moment the ceiling starts to cave in the entire house is involved and you’re mostly trying to keep the neighboring houses from burning.
if you run a separate circut for the Microwave, and separate your bathroom vent + your bathroom LED lights, you can run all of them at the same time with your toster. Running circuts is comparatively easy, vs installing a new 200A fuse box.
With a steady load you can run a circuit breaker past the rated amperage on the breaker. But look at it funny and it will pop.
The most obvious case of this was when I knew someone who would plug a vacuum into a different circuit and blow a breaker. Just a little noise on the wires and click.
A friend of mine is an electrician so the price was very reasonable, and it has been worth it, especially during this hot summer.
It was reasonably cheap, and in my next house I'll do the same again. Running additional circuits is pretty easy if you have an attic or crawl space.
Printing often pops the breaker. I had to move the printer out of my home office into a bedroom, but even then we've popped the breaker when printing while vacuuming.
(It's not a case of bad wiring, either.)
I've been assuming it was current, because if it has the circuit to itself, nothing trips.
(My office only has one circuit, which is dedicated to the room. I could have asked for 20 amps, but it didn't occur to me.)
And I've only got a 3900X+2070 Super...
I already have issues where the breaker would pop with my current gaming PC if it fully spins up and I had to get a 20A circuit put in to handle it (mostly because there is more than one computer on the circuit).
Throw in 2 monitors and a speaker system and you're coming close to overloading your 15amp breaker.
I am unsure what the normal household circuit amperage is in the EU or elsewhere...
If you have to wire a room, ask for a larger gauge of wire so have the option of a larger breaker if you want it.
Even if you ran 1kW (...somehow) you could still connect 3 of them and still have 600W left for audio/monitors.
I would say it's more normal to be fused to 10A for most indoor things, anything else is not normal, as most home appliance power cables are not even thick enough to carry the 16A 230V power safely.
Probably would've been fine if it were a 20A circuit and not a 15A, but it did remind me how much power these things draw...
Or with power in SF averaging 40-ish cents per kWh a standard evening gaming session can easily cost a non-negligible amount of money.
even in this thread you see people saying "wow intel pulls 250W against AMD's 105W processors"... when the comparable PPT number for AMD this generation is actually 230W, and their previous-gen number was 145W.
It's a huge marketing disadvantage, just like with node naming for fabs. Intel's 14nm is hugely better than GF 14/12nm or TSMC 16/12nm, and 10ESF is comparable to TSMC 7nm (although much later ofc). When the competitors are playing marketing games, to some extent you just have to start playing them too.
Desktop/HEDT TDPs used to pretty much cover boost clocks, the "tau" concept always officially existed but (eg) 5960X has a 143W idle-to-prime95 power delta as measured by Anandtech, so, the 140W tdp is pretty much sufficient to cover any "normal" non-prime95 AVX load at full boost clock. Similarly 4770K is a 85W TDP on paper and the measured idle-to-prime95 is 88W. Overclocked desktop loads could go higher of course, but most people overrode tau limits anyway in those cases. So in practice, tau limit was pretty much only a thing that existed on laptops in the intel world, because there was always enough TDP available to cover boost clocks, in a stock configuration.
https://images.anandtech.com/graphs/graph8426/67026.png
Then AMD came along with Ryzen and started marketing around base TDPs, and made their boost TDP this other higher number (but it's not a boost TDP guys, it's, uh, PPT, yeah!!!!)... and allowed it to boost to the higher number for an unlimited period of time. 9-series really started pushing it and Tau limits started becoming a problem, but it looks really bad to have a 145W TDP when the competition has 105W... even if it's the same actual power consumption in practive. So over time Intel more or less had to move to the same "TDP/PPT" concept as AMD.
It's really really noxious in laptops where AMD allows processors to boost to 50% (more than the desktop chips even!) above their configured TDP for an unlimited period of time. Yeah partners get to pick the cTDP for the particular laptop, but either way an AMD chip with a 15W cTDP gets to use 50% more power than an Intel with a 15W cTDP, for an unlimited duration, which is a huge functional advantage... basically a 15W AMD laptop is more comparable to a 25W Intel laptop in terms of power draw, and a 25W AMD will pull more power than a 35W Intel. So they move themselves up a whole power bracket through The Magic Of Technical Marketing (tm).
https://images.anandtech.com/doci/16084/Power%20-%2015W%20Co...
https://www.tomshardware.com/news/intel-raptor-lake-to-featu...
235W is well within the range of what a decent air cooler like the Noctua NH-D15 can handle without excessive fan noise.
AMD's Threadripper PRO CPUs come with up to 280W TDPs.
It's really not a problem with modern air coolers and not a problem at all for people running liquid coolers.
A 253W boost TDP isn't really a big deal any more. There are plenty of smaller CPUs for people who don't want such high overheads.
Some of Intel's new parts can be limited to 35W and still outperform a Ryzen 7 5800X: https://www.tomshardware.com/news/intel-13700t-raptor-lake-a...
There's a lot of "sky is falling" over these numbers, but it's a non-issue for the enthusiast builds these are targeted at. Nobody is forced to put a 253W CPU into their machine, but it's great that the vendors are making them available for those who want them.
But Intel and AMD also make enough chips with very good efficiency for the average folk who don't need to set benchmark records.
https://www.eia.gov/electricity/monthly/epm_table_grapher.ph...
Straightforward day/night electricity rates have existed for decades, hourly rates are more recent, and optional.
100¢/kWh has happened in the last month, but only at a peak period. I'm not sure how long or how often it happened.
1.00DKK = 0.14USD
https://andelenergi.dk/kundeservice/aftaler-og-priser/timepr...
Alder Lake impresses me, but Ryzen is the better choice because f Intel heh
As much as I want to agree on Ryzen, Intel is still the best platform for low-latency audio stuff. So I hope that performance-per-watt is or will be good as I'm beginning to get that PC-building itch. I'm curious what its idle usage is like.
But my living-room PC has a third-gen Ryzen (I built it just before the pandemic hit) and have been super pleased with its performance.
Modern hardware is really difficult to permanently damage as long as you don’t go full “manual OC” - in that case many protections may be disabled, and you can certainly get Ryzens to overheat and die like that.
Thankfully all-in-one kits for that which are pre filled and sealed are much more commonplace than they used to be, and even fairly cheap midtower ATX cases I see on newegg in the $60-70 range will have a top panel mounting place for a 280mm radiator.
And definitely any "gaming" marketed ATX case above that price range will have the capability for it.
You possibly could get away with a 240mm length radiator (dual 120mm fans) on something like this but I really wouldn't recommend it, and the savings for an AIO kit would be only $50-60.
From the perspective of noise annoyance, fan pitch and sound is somewhat proportional to size. 140mm fans can be a lot quieter and move more air than 120mm with less perceptible noise to the human sitting next to it.
Higher end stuff will be implemented by 360mm length radiator (3 x 140mm) which I am pleasantly surprised to see not ridiculously priced ATX cases having options mounting now.
I would figure you have to budget an additional $150-200 on top of the CPU cost for a capable water cooling loop setup. Which is not absolutely ridiculous considering that a really good skived copper heatsink/heatpipe/fan setup for pure air cooling on a 130W TDP CPU could easily be $65.
One of the things I'm not happy about on my current machine (Ryzen 1800X, RTX 2070S) is the heat and noise. I'm going to invest in a better case and fans next time, but new hardware is trying to make the problem even worse. The new hardware is supposed to be very efficient if you limit the max power, but they don't make it easy to do.
From what I can tell the only way to change power limits and fan curves for CPU/GPU are either to reboot into BIOS or use multiple separate manufacturer's shitty bloated windows GUI utilities. AMD's Ryzen Master software is supposed to be good but it doesn't work at all if you have Hyper-V enabled which is basically mandatory for developers nowadays. My GPU's default fan curves have them turn on/off around typical idle desktop temperatures so they continuously cycle on/off and have worn out the bearings and now make a scraping noise every time they do this. The only way to fix this is to launch a bloated windows GUI utility every boot. I was surprised to not find an open source Linux library or kernel driver that lets you read and write fan speeds for GPU and motherboard controlled fans.
I want two things:
1. A simple, unobtrusive button in my system tray that lets me toggle power limits of my CPU and GPU from "silent" to "performance".
2. A simple, unobtrusive way to configure fan curves with averaging and hysteresis that, crucially, lets the case fan speeds be controlled by a combination of GPU and CPU temperatures.
As far as I know neither of those are possible today. I've considered buying or making a USB fan speed controller and even plugging my GPU fans into it because there's no other good way to control them.
This has happened with a few different brands of motherboards, in multiple chassis with different brands of fans, so I think it's a characteristic of the Ryzen platform rather than a specific motherboard brand or BIOS.
It's really odd and annoying, and I've resorted to fan curves that keep the fan on low RPM until just before the CPU hits 90C -- basically flat with a big hockey stick inflection at the end.
Same. I haven’t found much better. I always wonder how it doesn’t drive other people nuts.
Pretty average as far as bloat goes, ~150-200 MB of RAM used, about as much as JetBrains Toolbox takes up in the tray, or Mattermost, Discord or other apps like that.
Lets me switch between GPU power/fan profiles (Performance > Tuning) so I can run my GPU at 50% of its maximum power most of the time (as well as different fan curves), for longevity/noise related reasons, especially when dealing with badly optimized software/games.
The CPU just seems to do its own thing and throttles up/down based on system load, haven't really needed to tune it for any particular reason yet.
It's passable but you're right that things could be way better, more usable and user friendly! I guess in a way, when everything is bloated, nothing is. Wirth's law at its finest.
I suppose I don't care about memory usage for "bloat". I want it to be easy and pleasant to use, and to start quickly and unobtrusively. No 10 second long splash screen every time I boot.
Does cycling a fan on/off wear bearings faster than being on all the time? Naively I would have assumed that bearing wear is a function of time enabled and speed, with # of spinups a negligible factor.
>Raptor Lake to Offer ‘Unlimited Power’ Mode for Those Who Don’t Care About Heat, Electric Bills
https://www.extremetech.com/computing/338748-raptor-lake-to-...
Am I understanding that correctly or butchering it?
Like how would you describe the fact that not all chips Intel producers will be able to hit 6GHz+?
Regardless if you think they can pull it off or not, Intel's roadmap is fascinating. They expect pretty tremendous growth not just in the processor space, but in the US foundry space. They are aiming to be able to compete with TSMC and Samsung in this space.
I believe AMD's technology and furthermore strategy is superior to intel's. Now with Xilinx on board I am curious if we will see GPU's or APU's with FPGA's which allow custom hardware instructions.
Meanwhile an Intel i5 of the time could run faster at half the clock speed. I suspect this'll be a similar blunder but companies reversed in some stroke of irony.
The 5950X uses 180W at full load. Some measure as high as 230W. The 105W figure reported as "TDP" was a mistake.
Not sure why the specs were a big lie but this is well documented online.
> air-powered cooling being not enough
If you want to turbo to 4.1GHz or better on all cores on the 5950X, you have to spend about $60 on a cooler - water or air. The AIOs perform well. A big AIO will give you 4.5GHz. No turbo air cooling - 3.4GHz - is a waste of money.
Personally, I do not pretend that CPUs are light bulbs. If my CPU could draw 1000W for 10ms and that made short tasks like web page rendering twice as fast, that's a trade I would happily take. The short-term power consumption of CPUs is pure benefit to the user, and the rarer sustained tasks that run all the cores flat out for more than 1 second are always going to level off at about 125W because of the long-term cooling situation.
Given that our computers spend more time idle than at 100% peak load, my AMD CPU draws more power (and therefore heats up my room) more then my Intel setup. That wasn’t an outcome I was expecting, but then again I was only looking at peak, not idle, numbers at the time.
I really hope AMD can start bringing their idle power consumption down in this next gen.
It's largely idle, just lots of background stuff/open programs (VS Code, Discord, Excel, Firefox, Teams, Edge, MySQL Workbench, Thunderbird, Messenger, Outlook.)
PPT is 30% of 142W = 42.6 W. (Not sure what PPT stands for.)
EDIT: https://www.gamersnexus.net/guides/3491-explaining-precision...
> Package Power Tracking (“PPT”): The PPT threshold is the allowed socket power consumption permitted across the voltage rails supplying the socket.
One other thing that hurts AMD here was the x570 chipset. It seems to be a hack job, basically installing the I/O from the CPU upside down and running it as a chipset. IIRC it uses like double the wattage of the x470 chipset it replaced.
On my workstation? 8-16 hours at a stretch is common, several times a week.
Warning: required power station not included.
I run simulations which use 100% of all cores for endless hours.
You just gotta use a decent thermal paste and cooling fan. In my case it's water cooling so I don't even hear the fans.
What the article doesn't cover is the actual performance uplift but that seems a given being an article about this newly rumoured model not an overview of 13th gen performance as a whole.
I love my power efficient M1 macbook and I love my number crunching Zen 3 CPU. The 2 SKUs I have aren't serving the same market and where the architectures overlap the differences aren't as profound as comparing extremes from each family would lead you to believe.
The M1 produced a bigger enduser boost than the introduction of SSDs. We're now at 1 year for the M1 essentially, and there is no conquerable x86 product yet, and I don't really see it on roadmaps.
Microsoft remains too incompetent to make a usable desktop OS, and their hardware forays are always spectacular failures, so they won't provide the hardware leadership. That leaves Intel and AMD, and both appear to be in head-in-sand mode.
And I am no mac zealot. The only thing I like about my M1 work laptop is the battery life, but it's such an incredible leap over any other laptop experience that it is the gold standard. I'd love a linux laptop that was comparable, x86 or ARM, but if the M1 is an A+, all other laptops are basically at C or C- grade.
The NH-D15's max cooling ability is slightly beneath the 12700k's max thermal output. So if you're running a 12700k, you can get away with it, because the liklihood that you're running the 12700k at max thermal output for long periods of time are pretty slim, and if you're running under max, then you're covered.
I don't remember TDP numbers off the top of my head, but if the 13700 is a significantly higher thermal output, and its going to be in the same case as the next gen video cards with their higher output? That doesn't seem feasible for the NH-D15 anymore
Maybe Intel will include a beefier stock cooler in the box?
But really doesn't make sense including a stock cooler for the i9 lineup though, since that monster of a CPU will defeat probably every mid-level air cooler and would require a beefy Noctua or something similar...
forgive my laymen knowledge, I am just a humble software person but isn't the equation of power -> speed exponential which is why CPU speeds clocked out around 4ghz and we moved to multi core processing? what sorcery exists that lets us suddenly break that barrier?
Power = Capacitance * Voltage ^(2 * frequency)
or
Power = Capacitance * (Voltage ^2) * frequency
In all seriousness, hasn't Intel been hanging on to their current architecture for way too long at this point? IIRC Ryzen consumes less power and does more per Watt on the high end and ARM is eating them up on the low end. It feels like Intel is just trying to squeeze out a little more from a much-delayed 10nm process and their existing architecture.
It sort of reminds me of Pentium 4 just outstaying its welcome.
Genuinely curious: what's on the horizon for Intel as their next big change and not something that's just a marketing clock speed boost?
They’re also changing to a chiplet-based architecture with their next Xeon line which will be interesting.
Also you're wrong, it's really not an existing architecture unless you talk in extremely broad strokes.
Snark aside, I have a couple of 3700x machines and an itch. Kind of split between upgrading my gaming machine (not entirely worth it) or changing the mini-ITX and severely undervolting a 7700x.
Or, I can just wait for the zen 5 which was my original plan but as I said, I've the captains itch
These 13 gen are Raptor lake, which uses the same process as Alder Lake.
Where have I seen this "more megahertz" strategy at Intel? Right, with the Pentium 4.
Furthermore, the P-core/E-core divide means that they can make the P-cores quite large and inefficient, as E-cores will pick up the heavily-threaded tasks. So while a Zen core is significantly smaller than a Golden Cove core, Gracemont is much smaller still.
Alder lake was Intel's first proper response to Zen -> huge IPC boost
Who claimed this?
Not sure it'd be a big enough niche to save Intel's market share though.
Cores were the direct answer to this limit. But then Amdahl's Law limits what cores can do.
What this story means is someone decided to trade off thermal effects for clock rate. The primary effect of heat is reliability - that is, how many years of operation can you expect with the final product. Heat kills the life span of transistors, metal and oxide.
Honestly there's nothing special about hitting 6 GHz - it's not some magical thing. Magical thinking people!!
https://www.laptopmag.com/features/how-amd-ryzen-whooped-int...
https://www.tomshardware.com/news/amd-ryzen-4900hs-battery-l...
Or 0.5 generation ago 15W Ryzen getting 17-20 hours...
Meanwhile, 9 out of 10 laptops sold... contain Intel or AMD chips (or presumably Qualcomm), rather than Apple Silicon.
https://macdailynews.com/2022/01/31/apple-takes-10-share-of-...
Now if the question was... is Apple Silicon much more efficient... than an enthusiast level desktop CPU?
Answer: they won't. It'll be like phone chips where Apple is 2+ years ahead of the game for perf/watt.
At least Intel is doing this with a desktop CPU. If you can afford the electricity bill generated by said GPU and the A/C to cool the room.