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Article

Indoor High-Precision 3D Positioning System Based on Visible-Light Communication Using Improved Whale Optimization Algorithm

1
College of Electronic Engineering, Anhui Xinhua University, Hefei 230088, China
2
College of Electronics and Information Engineering, West Anhui University, Lu’an 237012, China
*
Author to whom correspondence should be addressed.
Photonics 2022, 9(2), 93; https://doi.org/10.3390/photonics9020093
Submission received: 27 December 2021 / Revised: 29 January 2022 / Accepted: 4 February 2022 / Published: 6 February 2022

Abstract

Visible-light communication (VLC) is a promising method for indoor positioning. The received signal strength algorithm is the most widely used localization algorithm in visible-light positioning (VLP) systems. However, in a VLP system, the photodiode (PD) will have a small rotation angle during movement, which will result in a massive positioning error ignoring the angle. In this study, a three-dimensional (3D) indoor VLP system using an improved whale optimization algorithm (IWOA) is proposed to reduce the error caused by the PD rotation. Firstly, the model of the VLC system with the PD rotation angles is introduced. Secondly, a novel IWOA with an elite opposition-based learning strategy and Lévy flight strategy is proposed. The convergence speed and accuracy of the WOA are improved. Lastly, the IWOA algorithm is efficiently utilized to address the problem with the PD rotation in the indoor VLP system. Simulation results show that the average error of 3D positioning is 2.14 cm with no PD rotation. When the PD has a rotation angle, the average positioning error estimated by ignoring the rotation angle is 27.14 cm, while that estimated by considering the rotation angle is 7.85 cm. In the VLP system, the positioning error with the PD rotation angle is effectively reduced by the proposed algorithm, which can be applied in a variety of indoor location scenes.
Keywords: indoor 3D positioning; visible-light communication; improved whale optimization algorithm; positioning accuracy; received signal strength; rotation angle indoor 3D positioning; visible-light communication; improved whale optimization algorithm; positioning accuracy; received signal strength; rotation angle

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MDPI and ACS Style

Meng, X.; Jia, C.; Cai, C.; He, F.; Wang, Q. Indoor High-Precision 3D Positioning System Based on Visible-Light Communication Using Improved Whale Optimization Algorithm. Photonics 2022, 9, 93. https://doi.org/10.3390/photonics9020093

AMA Style

Meng X, Jia C, Cai C, He F, Wang Q. Indoor High-Precision 3D Positioning System Based on Visible-Light Communication Using Improved Whale Optimization Algorithm. Photonics. 2022; 9(2):93. https://doi.org/10.3390/photonics9020093

Chicago/Turabian Style

Meng, Xianmeng, Chaochuan Jia, Cuicui Cai, Fugui He, and Qing Wang. 2022. "Indoor High-Precision 3D Positioning System Based on Visible-Light Communication Using Improved Whale Optimization Algorithm" Photonics 9, no. 2: 93. https://doi.org/10.3390/photonics9020093

APA Style

Meng, X., Jia, C., Cai, C., He, F., & Wang, Q. (2022). Indoor High-Precision 3D Positioning System Based on Visible-Light Communication Using Improved Whale Optimization Algorithm. Photonics, 9(2), 93. https://doi.org/10.3390/photonics9020093

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