Intelligent Reflecting Surface-Based Non-LOS Human Activity Recognition for Next-Generation 6G-Enabled Healthcare System

Author:

Saeed UmerORCID,Shah Syed AzizORCID,Khan Muhammad Zakir,Alotaibi Abdullah AlhumaidiORCID,Althobaiti TurkeORCID,Ramzan NaeemORCID,Abbasi Qammer H.ORCID

Abstract

Human activity monitoring is a fascinating area of research to support autonomous living in the aged and disabled community. Cameras, sensors, wearables, and non-contact microwave sensing have all been suggested in the past as methods for identifying distinct human activities. Microwave sensing is an approach that has lately attracted much interest since it has the potential to address privacy problems caused by cameras and discomfort caused by wearables, especially in the healthcare domain. A fundamental drawback of the current microwave sensing methods such as radar is non-line-of-sight and multi-floor environments. They need precise and regulated conditions to detect activity with high precision. In this paper, we have utilised the publicly available online database based on the intelligent reflecting surface (IRS) system developed at the Communications, Sensing and Imaging group at the University of Glasgow, UK (references 39 and 40). The IRS system works better in the multi-floor and non-line-of-sight environments. This work for the first time uses algorithms such as support vector machine Bagging and Decision Tree on the publicly available IRS data and achieves better accuracy when a subset of the available data is considered along specific human activities. Additionally, the work also considers the processing time taken by the classier in training stage when exposed to the IRS data which was not previously explored.

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Biochemistry,Instrumentation,Atomic and Molecular Physics, and Optics,Analytical Chemistry

Cited by 9 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. RISense: 6G-Enhanced Human Activity Recognition System with RIS and Deep LDA;2024 25th IEEE International Conference on Mobile Data Management (MDM);2024-06-24

2. The Future of Beyond 5G Sensing: Transforming Activity Recognition with Reconfigurable Intelligent Surfaces;2024 International Conference on Activity and Behavior Computing (ABC);2024-05-29

3. British Sign Language Detection Using Ultra-Wideband Radar Sensing and Residual Neural Network;IEEE Sensors Journal;2024-04-01

4. A Multibit and Frequency-Reconfigurable Reflecting Surface for RIS Applications;IEEE Antennas and Wireless Propagation Letters;2024-02

5. Smart Healthcare Activity Recognition Using Statistical Regression and Intelligent Learning;Computers, Materials & Continua;2024

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