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基于机器学习的 WiFi 人体识别:全面调查。

WiFi-Based Human Identification with Machine Learning: A Comprehensive Survey.

机构信息

Department of Computer Engineering, Chosun University, Gwangju 61452, Republic of Korea.

Department of Mechanical Engineering, Chosun University, Gwangju 61452, Republic of Korea.

出版信息

Sensors (Basel). 2024 Oct 3;24(19):6413. doi: 10.3390/s24196413.

Abstract

In the modern world of human-computer interaction, notable advancements in human identification have been achieved across fields like healthcare, academia, security, etc. Despite these advancements, challenges remain, particularly in scenarios with poor lighting, occlusion, or non-line-of-sight. To overcome these limitations, the utilization of radio frequency (RF) wireless signals, particularly wireless fidelity (WiFi), has been considered an innovative solution in recent research studies. By analyzing WiFi signal fluctuations caused by human presence, researchers have developed machine learning (ML) models that significantly improve identification accuracy. This paper conducts a comprehensive survey of recent advances and practical implementations of WiFi-based human identification. Furthermore, it covers the ML models used for human identification, system overviews, and detailed WiFi-based human identification methods. It also includes system evaluation, discussion, and future trends related to human identification. Finally, we conclude by examining the limitations of the research and discussing how researchers can shift their attention toward shaping the future trajectory of human identification through wireless signals.

摘要

在现代的人机交互领域,人类识别技术在医疗保健、学术界、安全等领域都取得了显著的进展。尽管取得了这些进展,但仍然存在挑战,特别是在光照条件差、遮挡或非视线的情况下。为了克服这些限制,最近的研究中已经考虑利用射频(RF)无线信号,特别是无线保真(WiFi),作为一种创新的解决方案。通过分析由人类存在引起的 WiFi 信号波动,研究人员已经开发出机器学习(ML)模型,这些模型显著提高了识别准确性。本文对基于 WiFi 的人类识别的最新进展和实际应用进行了全面调查。此外,它还涵盖了用于人类识别的 ML 模型、系统概述以及详细的基于 WiFi 的人类识别方法。它还包括系统评估、讨论和与人类识别相关的未来趋势。最后,我们通过检查研究的局限性并讨论研究人员如何通过无线信号将注意力转移到塑造人类识别的未来轨迹上来结束本文。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fd40/11479185/46106c0e6b19/sensors-24-06413-g001.jpg

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