Wi-Fi 7 to get final approval early next year, up to 4.8X faster than Wi-Fi 6
tomshardware.com
tomshardware.com
The top priority of individual consumers is getting better range out of single-AP setups, which WiFi hasn’t really addressed at all since its inception. I guess MU-MIMO helps in theory with that, but doesn’t seem to in practice. With the exception of nerds on HN and really rich people with huge mansions, most people plug in one wireless AP placed wherever the cable/fiber/phone line comes into the house and want WiFi to have acceptable video conferencing 3 bedrooms away.
The combo Wifi/modem that Xfinity gives out these days is also quite good, as much as I hate devices like that.
The truth is, WiFi is mainly a "problem" for nerds like me who LARP as network administrators and want faster-than-gigabit speeds in every corner of their home.
The only time I can recall when it wasn't for goofy reasons, was the launch of the Intel Puma chipset, where it would suffer from a CPU issue causing packet loss, or freeze until hard restarted.
More reading here: https://www.bleepingcomputer.com/news/hardware/lawsuit-brewi...
Uh, I have a beef with this. I worked in a hospital (multiple medical facilities actually), and there are many, many medical locations have wifi poorly rolled out.
Hospitals are places that look nothing like a house from an electromagnetic perspective. If you don't put stuff in the right places, it won't work well. But if you do it right, then it works fine. And that's true of old buildings and new ones.
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EDIT - to clarify, it's not the wifi, it's the design of the wifi network (hotspot locations, backhaul, etc). It has nothing to do with wifi wireless technology itself.
Wi-Fi is congested because (1) lots of neighbors, especially in urban areas, and especially on lower bands where the signal penetrates walls better, and (2) unlicensed devices have to tolerate interference from other unlicensed devices, and (3) limited overall spectrum bandwidth, particularly as you go down the spectrum.
1.2 GHz would have all these same problems, but worse by being at a lower band.
This is an issue because some channels don't overlap, so if there's interference on a particular channel, your throughput is going to tank. Additionally, if the gateway/router/ap is always switching channels this will cause low power devices (nearly anything mobile) to disconnect and attempt to reconnect.
I'm still under the assumption that it's preferred to pull a Wifi survey before deploying any hardware so that it can be setup properly to function reliably.
Mesh WiFi is common for consumers, and putting the mesh backhaul on higher frequencies frees up spectrum.
What we really need of course is like, another entire GB of low frequency ISM spectrum, though.
Seems like there's a bit of spectrum that could easily be freed up if they just took it from the commercial and public safety radios, which could probably use an upgrade anyway.
Spending a few billion giving them all spectrum efficient digital radios with a cellular fallback seems like it might be in the public's interest.
If they tried I would imagine they could provide make something so much more reliable, nobody would even think of complaining.
Correct me if I'm wrong but I recall the opposite. Lower frequencies pass through material better, and are less likely to be disrupted by ingress (foreign signal operating on the same frequency), where as higher frequencies have the ability to pass on more information. My previous time as a headend Coax/fiber technician has lead me to believe this. It's one of the reasons for example, Comcast utilized the lowest frequencies for it's upstream data pipeline, and the higher frequencies are for the downstream pipeline.
Agree on getting other systems off of the 2.4ghz band, but you still run into the throughput problem with that band.
5Ghz still goes through a few walls, kinda, mostly, so you can use it for closely spaced repeaters, kinda.
Which also means the 2.4ghz part can be turned down a lot, because it's only got to go to the nearest repeater, if you even need a 2.4ghz link at all for anything but IoT.
None of this applies to typical HN readers though, who all seem to be running an HFT stock exchange in their basement and need 10gbit at 0.5ms latency, but for the rest of us if it's good enough for 1080p Netflix and 720p zoom calls it's perfectly fine.
Except when the printer disappears despite everything having a strong signal because of mesh bugs... then it's not fine.
In busy WiFi environments like cities, there are probably even bigger gains to be had - tricks like CDMA and long FEC codes to allow your message to still be received whilst others are transmitting.
I’m not convinced this is true. Right now all equipment screams at full power all the time, but it doesn’t have to be this way. They control the spec. They could enforce self-limiting when an AP detects more than 5 other APs, for example. And currently there is a lot of neat stuff in the spec for APs to collaborate with each other when they share a backhaul, but not so much for independent APs. Sure, you will have some jerks that go out of their way to override these features but for 99.999% of people who just plug in an appliance and never touch any configuration there are wins to be had there.
Network comms are 2-way, it's not just a 1-way signal from the AP to your end device. It has to be able to talk back, and the signal a small battery operated device with a tiny internal antenna can send is only so good.
It absolutely is, you're correct. What most people fail to realize is nearly all mobile devices prioritize battery life first before anything else, including connectivity. On windows if you don't disable the power saving feature on your wireless NIC you're going to have drops, or straight up struggle to stay connected.
MacOS used to handle it better, but since BigSur, connectivity is about the same with Windows. I believe various Linux distros handle this better (like Kali lol)
I'd really like to see some thorough testing on this. My hunch is that mimo and more importantly beam-forming is something that works under lab conditions if every wifi device in range uses chips from the same manufacturer as the AP, and even then probably still depends on moon phase. Except maybe if you buy really expensive pro gear.
If some tech outlet would get a random assortment of popular APs and then test this stuff with a dozen phones and laptops that would surely be interesting.
MIMO is very useful. It literally multiplies link rate. https://www.wiisfi.com/#MIMO
Beamforming has marginal benefit and is real. Up close your device already has max speed. Far away beamforming won’t help much. It’s in the between that helps, and mostly in the downlink direction as beamforming requires the transmitter have more antennas and DSP resources (aka the access point that’s not running on battery and does not have to be miniaturized like a smartphone). But the uplink direction is usually the range limiting factor. There’s Maximal Ratio Combining for the uplink direction but it again is not universally supported in APs.
I personally appreciate faster speeds, lower latency, better support for multiple devices, less contention, better support for wifi mesh etc.
Heck, I'm far more frustrated at wifi in 'corporate deployments' e.g. At a conference or hotel than I am with WiFi at home, so benefits there still improve my experience.
[1]: https://www.tomshardware.com/news/asus-wifi-7-gaming-routers
[2]: https://www.tomshardware.com/news/netgears-orbi-970-wi-fi-7-...
[3]: https://www.tomshardware.com/news/linksys-mesh-wifi-7-router...
[4]: https://www.tomshardware.com/reviews/amazon-eero-max-7-wi-fi...
Is it typical for products to be released before the standard is finalized?
I think there was a lot of "pre-802.11n" hardware sold before that standard was ratified as well.
We used Linksys WRT54G's started with for some reason I think it was .a, then .b then .g's. We started with Sveasoft's firmware, when that ended and started charging shifted onto DD-WRT.
We used a 24db gain directional dish grid antenna on one end a a slightly less powerful but plenty capable custom built wave-guide (we got from a guy that had access to expensive telco. calibration kit), think it was 10to15, maybe even 20?
We'd shoot our weekly DB backups across the park! I created batches using robocopy for network re-startable copies as it took a lot longer than onsite w/cable. It was better than what we had as but we couldn't lay our own cables down the street over the park and viaduct! An additional link at the other site w/ongoing of 100 p.m. would have drained us beyond our weekly burn.
So much easier to mount 2 antennas direct LOS, job done!
I do remember the orange tree with a net would drop the link entirely when it rained =) - damned neighborhood Faraday orange tree. Setup a fruit tree shaker for when it's in the rain people! Some, at least 2x, people in the 2000's were very slightly inconvenienced.
[1] https://www.theverge.com/23902812/wi-fi-7-explained
The initial WiFi 6e routers were trash and some of the models you listed implement surveillance capitalism schemes. Also concerned some of those manufacturers have such poor production control, it is trivial for Chinese malware to be added prior to shipment.
The only think I want from the the next version of Wifi would be some sort of technology where all the APs in the area can agree on what they see and optimize so they stop stepping on each other.
In my case through careful site surveys and planning, I have a pretty stable network even managing to have useful 40 wide 5Mhz channels. The radios are all tuned to use the least amount of power possible. One thing also to share, if you plan on using Matter/Thread be aware that some of the channel will overlap with your 2.4Ghz networks. If you are using Apple kit for your border router its is locked to channel 25 which will have overlap with your 2.4Ghz channel 11. My Thread network became very stable when I switched my 2.4Ghz to use only channels 1/6.