6G ISAC mobile network towers will map human movement in real time

transpute1 pts0 comments

The next-generation mobile networks that will map movement in real time | Nature Research Custom

Skip to main content

Thank you for visiting nature.com. You are using a browser version with limited support for CSS. To obtain<br>the best experience, we recommend you use a more up to date browser (or turn off compatibility mode in<br>Internet Explorer). In the meantime, to ensure continued support, we are displaying the site without styles<br>and JavaScript.

Advertisement

Produced by

Email

Bluesky

Facebook

LinkedIn

Reddit

Whatsapp

Integrated sensing and communications (ISAC) technology combined with digital twin technology could help drivers avoid obstacles and congestion in cities.Credit: Metamorworks/iStock/Getty<br>Mobile networks may soon do more than help us make phone calls and access the Internet. They have the potential to be used as high-resolution sensors capable of detecting things in the environment, including people, cars or drones.<br>Integrated sensing and communications (ISAC) technology repurposes the signals continuously transmitted by cell phone towers. By analysing subtle distortions in radio waves as they travel through the air and reflect off objects, ISAC systems can detect the presence and movement of obstacles, similar to radar.<br>Researchers expect it to become one of the defining features of the next generation of so-called 6G networks, planned for release around 2030.<br>“With ISAC, sensing will be possible essentially anywhere with a signal,” explains Masakatsu Ogawa, a professor in the Department of Information and Communication Sciences at Sophia University in Tokyo, Japan. The technology opens new sensing opportunities that may help address major challenges — but some experts warn we should be aware of the potential for misuse of the technology too.<br>Powered by 6G<br>Research on ISAC has gained traction since telecommunications regulators began discussing technical requirements for 6G in late 2023, says Tomoki Murakami, a researcher at the Access Network Service Systems Laboratories of NTT, Inc., one of Japan’s largest and most influential technology and telecommunications companies.<br>On 6G networks, ISAC will become far more powerful. While 4G mainly relies on sub-6 GHz bands, and 5G extends from mid-band (around 3–7 GHz) up to millimetre-wave frequencies near 30-40 GHz, 6G is expected to use even higher sub-THz bands above roughly 90–100 GHz, enabling much higher-resolution sensing.<br>The wider 6G bandwidths will soon enable the precise mapping of objects and movement at the millimetre level within the reach of signals from base stations. This could allow for capturing gestures as small as the wave of a hand without sensing equipment nearby.<br>While this may raise questions about privacy, ISAC systems are lower risk, say some experts, as they do not capture images directly like cameras, or as many identifying features of individuals.<br>“The first real-world applications for ISAC will probably be for presence detection of intruders and moving objects such as cars” says Ogawa.<br>Real-world studies<br>Realizing sensing via mobile networks, beyond solely theory and simulations, was difficult until recently.<br>Full test setups that mimic commercial networks are expensive, and, because their internal designs are proprietary, researchers cannot modify waveforms that commercial base stations transmit into sensing-friendly forms.<br>While some research teams build their own customized waveforms for the purposes of study and obtain licenses to conduct experiments, this demands significant time and cost.<br>In contrast, research using Wi-Fi and similar sensing principles has progressed more quickly because it operates on unlicensed bands. Individual laboratories are free to set up access points indoors and can freely experiment with how movement affects the shape and timing of radio waves. These studies have produced promising results for detecting motion within reach of Wi-Fi access points like homes and offices.<br>The vast coverage of cellular signals is unrivalled, and Wi-Fi signals weaken over longer distances. “If we want to transform the scale at which we sense things, we also need mobile networks,” says Murakami.<br>Mobile networks could transform remote sensing.Credit: Jordan Lye/Moment/Getty<br>A recent study by Murakami, Ogawa, and colleagues, showed that ISAC can be studied in the real world without transmitting signals1. The team used low-cost hardware to capture commercial signals and combined it with open-source software to interpret their structure.<br>Using an antenna to receive signals and their changes, their experiment compared when no one was in front of the antenna, and when a person walked across its line of vision at various distances.<br>On analysing changes to the signals, the team found that their system could reliably detect a person walking outdoors at distances of up to 10 metres. Sensing a combination of different frequency ranges, rather than focusing on a single one, covered for blind spots in each...

sensing isac networks signals mobile technology

Related Articles