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Main Authors: Cheng, Xin, He, Yu, Li, Menglu, Li, Ruoguang, Shu, Feng, Han, Guangjie
Format: Preprint
Published: 2025
Subjects:
Online Access:https://arxiv.org/abs/2507.18927
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author Cheng, Xin
He, Yu
Li, Menglu
Li, Ruoguang
Shu, Feng
Han, Guangjie
author_facet Cheng, Xin
He, Yu
Li, Menglu
Li, Ruoguang
Shu, Feng
Han, Guangjie
contents Reconfigurable intelligent surface (RIS) has emerged as a promising technology to enhance indoor wireless communication and sensing performance. However, the construction of reliable received signal strength (RSS)-based fingerprint databases for RIS-assisted indoor positioning remains an open challenge due to the lack of realistic and spatially consistent channel modeling methods. In this paper, we propose a novel method with open-source code for generating RIS-assisted RSS fingerprint databases. Our method captures the complex RIS-assisted multipath behaviors by extended cluster-based channel modeling and the physical and electromagnetic properties of RIS and transmitter (Tx). And the spatial consistency is incorporated when simulating the fingerprint data collection across neighboring positions. Moreover, an effective sorting algorithm is proposed to solve the online synchronization issue, a closed-form RIS phase configuration strategy is proposed to improve the localization accuracy, and the modeling method of mutual coupling (MC) effect is provided. Extensive simulations are conducted to evaluate the fingerprint database generated by the proposed method. And the positioning performance on the database using different algorithms is analyzed, providing valuable insights for the system design.
format Preprint
id arxiv_https___arxiv_org_abs_2507_18927
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle A Fingerprint Database Generation Method for RIS-Assisted Indoor Positioning
Cheng, Xin
He, Yu
Li, Menglu
Li, Ruoguang
Shu, Feng
Han, Guangjie
Signal Processing
Reconfigurable intelligent surface (RIS) has emerged as a promising technology to enhance indoor wireless communication and sensing performance. However, the construction of reliable received signal strength (RSS)-based fingerprint databases for RIS-assisted indoor positioning remains an open challenge due to the lack of realistic and spatially consistent channel modeling methods. In this paper, we propose a novel method with open-source code for generating RIS-assisted RSS fingerprint databases. Our method captures the complex RIS-assisted multipath behaviors by extended cluster-based channel modeling and the physical and electromagnetic properties of RIS and transmitter (Tx). And the spatial consistency is incorporated when simulating the fingerprint data collection across neighboring positions. Moreover, an effective sorting algorithm is proposed to solve the online synchronization issue, a closed-form RIS phase configuration strategy is proposed to improve the localization accuracy, and the modeling method of mutual coupling (MC) effect is provided. Extensive simulations are conducted to evaluate the fingerprint database generated by the proposed method. And the positioning performance on the database using different algorithms is analyzed, providing valuable insights for the system design.
title A Fingerprint Database Generation Method for RIS-Assisted Indoor Positioning
topic Signal Processing
url https://arxiv.org/abs/2507.18927