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Boffins concoct interference-busting radios

(2023/02/28)


Radio interference can be a pain to deal with, regardless of whether it's a rogue baby monitor interrupting your Wi-Fi or a stadium full of smartphone signals drowning each other out.

However, brainiacs at MIT say they've developed a radio chip that can see through the noisiest RF hellscape by actively blocking unwanted frequencies before they can scramble messages.

The chip was developed to address the growing challenges associated with 5G and other wireless communications standards. It takes inspiration from several adjacent domains – including digital signal processing and applied electronics – explained Negar Reiskarimian, assistant professor of electrical engineering and computer science at MIT.

[1]

The work, presented at the International Solid-State Circuits Conference (ISSCC) last week and detailed in a recent [2]blog post , combines a number of existing technologies into a novel radio chip, which researchers say can contend with RF interference 40 times higher than existing wideband receivers. What's more, they say the method doesn't require large, bulky filtering equipment.

[3]

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Even in its current development stage, the chip is small enough – just 0.65mm square – for use in mobile devices, according to Reiskarimian and Soroush Araei, an MIT grad student working on the project. And while 5G is highlighted as a potential application for radios based on the design, they note there's no reason it can't be used for other wireless signals like Wi-Fi.

"5G has a wide range of frequencies that it covers," they explained to The Reg . "Many of those frequency bands are on top of or very close to other technologies such as Wi-Fi and Bluetooth. Claiming this work to be useful for 5G is an umbrella statement that covers all signal frequencies in the sub-6GHz band."

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The basic design of the chip is based on a mixer-first architecture, so called because it strips out unwanted frequencies before decoding the signal. However, this approach alone can't prevent harmonic interference.

If you're not familiar, harmonic interference occurs at multiples of the target frequency. For example, 1GHz, 2GHz, and 5GHz would all be harmonic frequencies, the researchers explained. They add that this kind of interference is particularly tricky to filter out because electronic equipment often finds it difficult to distinguish between them.

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"A lot of other wideband receivers don't do anything about the harmonics until it is time to see what the bits mean," Araei explained. "We want to remove harmonics as soon as possible to avoid losing information."

To combat these frequencies, researchers applied a technique used in digital signal processing, called block-digital filtering, to an analog environment using capacitors. Different arrangements of capacitors connected in parallel or in sequence can effectively block these harmonics – but often have the side effect of degrading the signal.

To avoid this signal loss, Reiskarimian's team used a carefully calibrated combination of stacked capacitors arranged in series. The result was the majority of interference could be filtered out without compromising the integrity of the desired frequencies.

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"People have used these techniques – charge sharing and capacitor stacking – separately before, but never together," Araei said. "We found that both techniques must be done simultaneously to get this benefit."

The researchers believe this technology has practical applications in noisy RF environments. And as 5G networks – which are composed of large swaths of high and low frequency spectrum – become more prevalent, they expect this tech to become increasingly important.

There are some challenges yet to be addressed. Two of them, we're told, are extending the frequency range and optimizing the performance of the chip to address specific use cases.

However, Reiskarimian and Araei don't expect it will take long for their work to find its way into smartphones and other wireless tech.

"The world of integrated circuit development moves very fast, especially when it comes to wireless technology," they said. "Our technology and the techniques we use to make it possible can easily find their way to commercial radios within a couple of years." ®

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[1] https://pubads.g.doubleclick.net/gampad/jump?co=1&iu=/6978/reg_onprem/systems&sz=300x50%7C300x100%7C300x250%7C300x251%7C300x252%7C300x600%7C300x601&tile=2&c=2Y-3e1ckIakl6IIy3-BU-MwAAAAk&t=ct%3Dns%26unitnum%3D2%26raptor%3Dcondor%26pos%3Dtop%26test%3D0

[2] https://news.mit.edu/2023/new-chip-mobile-devices-knocks-out-unwanted-signals-0221

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[6] https://www.theregister.com/2023/02/18/dustbowl_doe_climate/

[7] https://www.theregister.com/2023/02/21/research_mars_instruments/

[8] https://www.theregister.com/2023/02/21/china_chip_ban_countermeasures/

[9] https://www.theregister.com/2023/02/20/human_go_ai_defeat/

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[11] https://whitepapers.theregister.com/



Selectivity

Archivist

Looks like we're going back to basics, albeit with a modern approach.

Disappointed...

Anonymous Coward

We still don't have subspace quantum signalling.

Harmonic Frequencies

A Non e-mouse

I can understand why 1GHz & 2GHz are harmonic frequencies, but why is 5GHz talked about in the same breath, unless we're talking about 10GHz? Why are 2 & 5GHz related?

Re: Harmonic Frequencies

Ball boy

Strictly speaking 1GHz isn't a harmonic if that's the reference frequency you want to process. 2GHz is the first harmonic of a 1GHz signal (and is hardest one to filter for), 3Hz would be one as well - but I'm also confounded by the 5GHz reference. While it's true it is a multiple of 1, by the time you're looking at harmonics beyond the third they're so far up the spectrum a simple low pass filter will have attenuated them to well below the signal level unless your receiver is staggeringly broadband (and front end covering 1-10GHz straight through is one hell of a challenge for a number of reasons).

* I've not read the paper detailing this research so perhaps there's subtleties we're missing.

Re: Harmonic Frequencies

Anonymous Coward

5GHz is simply a relevant frequency for WiFi so it got mentioned, I suspect.

Re: Harmonic Frequencies

elsergiovolador

They have not stated which frequency these are harmonics of, but you have even and odd harmonics. The 5GHz would probably be the odd one.

What's the new part?

Kevin McMurtrie

Yes, chips can have capacitors with values n, n*2, n*4, n*8, ... connected to FET switches and it makes a digitally selected capacitor.

Continuously [1]variable capacitors have been around for a long time too. A semiconductor junction can be made so that its conducting portion can be shrunk or extended over a larger than usual area in response to a bias voltage. It's essentially moving the plates of a capacitor closer or farther. These are still used today as the tuning capacitor in phase-locked-loops and as tracking filters. They can do some other tricks too when given signals large compared to the bias voltage.

All I can guess from this article is that broadband chips might have ditched selective RF filters because they have a limited tuning range.

[1] https://en.wikipedia.org/wiki/Varicap

Invention

elsergiovolador

Where is the invention here? Digitally controlled switched capacitor filters existed since the 80s if not earlier.

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