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Title: Bi-Directional Beamforming Feedback-Based Firmware-Agnostic WiFi Sensing: An Empirical Study
Authors: Kondo, Sota
Itahara, Sohei
Yamashita, Kota
Yamamoto, Koji  KAKEN_id  orcid https://orcid.org/0000-0003-4106-3983 (unconfirmed)
Koda, Yusuke
Nishio, Takayuki
Taya, Akihito
Author's alias: 近藤, 綜太
板原, 壮平
山下, 皐太
山本, 高至
香田, 優介
西尾, 理志
田谷, 昭仁
Keywords: Sensors
Bidirectional control
Task analysis
Wireless fidelity
Location awareness
Estimation
Wireless sensor networks
Wireless sensing
channel state information
beamforming feedback
bi-directional
Issue Date: 2022
Publisher: Institute of Electrical and Electronics Engineers (IEEE)
Journal title: IEEE Access
Volume: 10
Start page: 36924
End page: 36934
Abstract: In the field of WiFi sensing, as an alternative sensing source of the channel state information (CSI) matrix, the use of a beamforming feedback matrix (BFM) that is a right singular matrix of the CSI matrix has attracted significant interest owing to its wide availability regarding the underlying WiFi systems. In the IEEE 802.11ac/ax standard, the station (STA) transmits a BFM to an access point (AP), which uses the BFM for precoded multiple-input and multiple-output communications. In addition, in the same way, the AP transmits a BFM to the STA, and the STA uses the received BFM. Regarding BFM-based sensing, extensive real-world experiments were conducted as part of this study, and two key insights were reported: Firstly, this report identified a potential issue related to accuracy in existing uni-directional BFM-based sensing frameworks that leverage only BFMs transmitted for the AP or STA. Such uni-directionality introduces accuracy concerns when there is a sensing capability gap between the uni-directional BFMs for the AP and STA. Thus, this report experimentally evaluates the sensing ability disparity between the uni-directional BFMs, and shows that the BFMs transmitted for an AP achieve higher sensing accuracy compared to the BFMs transmitted from the STA when the sensing target values are estimated depending on the angle of departure of the AP. Secondly, to complement the sensing gap, this paper proposes a bi-directional sensing framework, which simultaneously leverages the BFMs transmitted from the AP and STA. The experimental evaluations reveal that bi-directional sensing achieves higher accuracy than uni-directional sensing in terms of the human localization task.
Rights: This work is licensed under a Creative Commons Attribution 4.0 License.
URI: http://hdl.handle.net/2433/278987
DOI(Published Version): 10.1109/ACCESS.2022.3165029
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