An overview on IEEE 802.11 bf: WLAN sensing

R Du, H Hua, H ** system and a
positioning system. The map** system provides the physical map of the space, and the …

NELoRa: Towards ultra-low SNR LoRa communication with neural-enhanced demodulation

C Li, H Guo, S Tong, X Zeng, Z Cao, M Zhang… - Proceedings of the 19th …, 2021 - dl.acm.org
Low-Power Wide-Area Networks (LPWANs) are an emerging Internet-of-Things (IoT)
paradigm marked by low-power and long-distance communication. Among them, LoRa is …

Towards a better understanding of annotation tools for medical imaging: a survey

M Aljabri, M AlAmir, M AlGhamdi… - Multimedia tools and …, 2022 - Springer
Medical imaging refers to several different technologies that are used to view the human
body to diagnose, monitor, or treat medical conditions. It requires significant expertise to …

Placement matters: Understanding the effects of device placement for WiFi sensing

X Wang, K Niu, J **ong, B Qian, Z Yao, T Lou… - Proceedings of the …, 2022 - dl.acm.org
WiFi-based contactless sensing has found numerous applications in the fields of smart
home and health care owning to its low-cost, non-intrusive and privacy-preserving …

SenseFi: A library and benchmark on deep-learning-empowered WiFi human sensing

J Yang, X Chen, H Zou, CX Lu, D Wang, S Sun, L **e - Patterns, 2023 - cell.com
Over the recent years, WiFi sensing has been rapidly developed for privacy-preserving,
ubiquitous human-sensing applications, enabled by signal processing and deep-learning …

GoPose: 3D human pose estimation using WiFi

Y Ren, Z Wang, Y Wang, S Tan, Y Chen… - Proceedings of the ACM …, 2022 - dl.acm.org
This paper presents GoPose, a 3D skeleton-based human pose estimation system that uses
WiFi devices at home. Our system leverages the WiFi signals reflected off the human body …