TY - JOUR
T1 - WheelLoc
T2 - Practical and Accurate Localization for Wheeled Mobile Targets via Integrated Sensing and Communication
AU - Kong, Linghe
AU - Liu, Yutong
AU - Liu, Yunxin
AU - Zheng, Le
AU - Qiu, Meikang
AU - Chen, Guihai
N1 - Publisher Copyright:
© 1983-2012 IEEE.
PY - 2022/7/1
Y1 - 2022/7/1
N2 - Practical and accurate localization systems are important to mobile targets that enable promising services such as navigation and augmented reality. With the proliferation of WiFi, existing WiFi-based localization systems have leveraged RSSI, fingerprints, landmarks, time of arrival, or angle of arrival to locate targets, while no related work pays attention to mobile targets themselves. For wheel-driven mobile targets, such as vehicles, bikes, and wheeled robots, we design and implement WheelLoc, a novel WiFi-based localization system leveraging the rotation of wheels. The specially designed WheelLoc hardware is cost-effective and self-powered with the composition of three commercial antennas and a solar cell, which is also easy to be installed on wheels. A hybrid WheelLoc algorithm is further proposed to realize accurate localization in diverse environments, whether the wheel of targets is static or mobile, indoor or outdoor, on flat or bumpy ground. The movements of individual antennas are exploited to emulate linear, cycloid, and circular antenna arrays using a new formulation of Synthetic Aperture Radar (SAR). Extensive experiments are conducted on bikes in the real world. Performance results demonstrate that WheelLoc does not require any user interaction, yet achieves comparable accuracy with the state-of-The-Art localization systems using WiFi.
AB - Practical and accurate localization systems are important to mobile targets that enable promising services such as navigation and augmented reality. With the proliferation of WiFi, existing WiFi-based localization systems have leveraged RSSI, fingerprints, landmarks, time of arrival, or angle of arrival to locate targets, while no related work pays attention to mobile targets themselves. For wheel-driven mobile targets, such as vehicles, bikes, and wheeled robots, we design and implement WheelLoc, a novel WiFi-based localization system leveraging the rotation of wheels. The specially designed WheelLoc hardware is cost-effective and self-powered with the composition of three commercial antennas and a solar cell, which is also easy to be installed on wheels. A hybrid WheelLoc algorithm is further proposed to realize accurate localization in diverse environments, whether the wheel of targets is static or mobile, indoor or outdoor, on flat or bumpy ground. The movements of individual antennas are exploited to emulate linear, cycloid, and circular antenna arrays using a new formulation of Synthetic Aperture Radar (SAR). Extensive experiments are conducted on bikes in the real world. Performance results demonstrate that WheelLoc does not require any user interaction, yet achieves comparable accuracy with the state-of-The-Art localization systems using WiFi.
KW - Localization
KW - Synthetic Aperture Radar
KW - WiFi
KW - angle of arrival
KW - wheeled mobile target
UR - http://www.scopus.com/inward/record.url?scp=85125719414&partnerID=8YFLogxK
U2 - 10.1109/JSAC.2022.3155530
DO - 10.1109/JSAC.2022.3155530
M3 - Article
AN - SCOPUS:85125719414
SN - 0733-8716
VL - 40
SP - 2219
EP - 2232
JO - IEEE Journal on Selected Areas in Communications
JF - IEEE Journal on Selected Areas in Communications
IS - 7
ER -