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Visible Light Indoor Positioning System Based on Pisarenko Harmonic Decomposition and Neural Network

Li ZHAO, Yi REN,Qi WANG, Lange DENG, Feng ZHANG

Chinese Journal of Electronics(2024)

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Abstract
Visible-light indoor positioning is a new generation of positioning technology that can be integrated into smart lighting and optical communications.The current received signal strength(RSS)-based visible-light posi-tioning systems struggle to overcome the interferences of background and indoor-reflected noise.Meanwhile,when en-suring the lighting,it is impossible to use the superposition of each light source to accurately distinguish light source information;furthermore,it is difficult to achieve accurate positioning in complex indoor environments.This study proposes an indoor positioning method based on a combination of power spectral density detection and a neural net-work.The system integrates the mechanism for visible-light radiation detection with RSS theory,to build a back propagation neural network model fitting for multiple reflection channels.Different frequency signals are loaded to different light sources at the beacon end,and the characteristic frequency and power vectors are obtained at the loca-tion end using the Pisarenko harmonic decomposition method.Then,a complete fingerprint database is established to train the neural network model and conduct location tests.Finally,the location effectiveness of the proposed algo-rithm is verified via actual positioning experiments.The simulation results show that,when four groups of sinusoidal waves with different frequencies are superimposed with white noise,the maximum frequency error is 0.104 Hz and the maximum power error is 0.0362 W.For the measured positioning stage,a 0.8 m × 0.8 m × 0.8 m solid wood stereoscopic positioning model is constructed,and the average error is 4.28 cm.This study provides an effective method for separating multi-source signal energies,overcoming background noise,and improving indoor visible-light positioning accuracies.
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Key words
Visible-light communication,Indoor positioning,Frequency estimation,Pisarenko harmonic de-composition,Back propagation neural network
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