PKBPNN-Based Tracking Range Extending Approach for TMR Magnetic Tracking System

The magnetic tracking system, which is based on a permanent magnet and a magnetometer array, has numerous potential applications in the biomedical and industrial area. However, its tracking accuracy drops off sharply with the increase of tracking distance because of both the interference of environm...

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Main Authors: Bowen Lv, Yuangui Chen, Houde Dai, Shijian Su, Mingqiang Lin
Format: Article
Language:English
Published: IEEE 2019-01-01
Series:IEEE Access
Subjects:
TMR
Online Access:https://ieeexplore.ieee.org/document/8715772/
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spelling doaj-a1a98853871143beb16dd5e1e3c7be922021-03-29T22:59:30ZengIEEEIEEE Access2169-35362019-01-017631236313210.1109/ACCESS.2019.29171408715772PKBPNN-Based Tracking Range Extending Approach for TMR Magnetic Tracking SystemBowen Lv0https://orcid.org/0000-0003-3551-3474Yuangui Chen1Houde Dai2https://orcid.org/0000-0001-7417-7974Shijian Su3Mingqiang Lin4Quanzhou Institute of Equipment Manufacturing, Haixi Institutes, Chinese Academy of Sciences, Jinjiang, ChinaDepartment of Radiation Oncology, Fujian Medical University Union Hospital, Fuzhou, ChinaQuanzhou Institute of Equipment Manufacturing, Haixi Institutes, Chinese Academy of Sciences, Jinjiang, ChinaQuanzhou Institute of Equipment Manufacturing, Haixi Institutes, Chinese Academy of Sciences, Jinjiang, ChinaQuanzhou Institute of Equipment Manufacturing, Haixi Institutes, Chinese Academy of Sciences, Jinjiang, ChinaThe magnetic tracking system, which is based on a permanent magnet and a magnetometer array, has numerous potential applications in the biomedical and industrial area. However, its tracking accuracy drops off sharply with the increase of tracking distance because of both the interference of environmental magnetic field and sensor measurement noise. To extend the magnetic tracking range, two novel methods were proposed in this study. First, the state-of-the-art tri-axial tunnel magnetoresistance (TMR) sensors, which possess the most significant field sensitivity and signal-to-noise ratio (SNR) over other types of magnetoresistive sensors, were adopted to construct the sensor array. Second, a fusion approach was proposed for tracking range extending. The particle swarm optimization-Levenberg Marquardt (PSO-LM) method based on the magnetic dipole model was applied in the near field (i.e., near-source zone), and the prior knowledge based back propagation neural network (PKBPNN) was adopted to the far field (i.e., far-source zone). In the transition zone, these two algorithms were fused by using an adaptive sigmoid function. The trained artificial neural network (ANN) model embodied the physical model errors, the sensor installation errors, and the inherent characteristics of adopted magnetometers. Therefore, it has greater tracking performance than singly using the PSO-LM in the far-source zone. The experimental results show that the tracking errors decrease from (18.24 ± 9.37mm, 12.45 ± 3.37°) to (8.95 ± 1.74mm, 7.97 ± 2.08°) in the tracking range between 216 and 296 mm. Besides, the tracking distance is extended to 396 mm, with the position error of less than 25 mm. It can be concluded that this approach has significantly extended the tracking range of the magnetic tracking system.https://ieeexplore.ieee.org/document/8715772/Back propagation neural network (BPNN)magnetic trackingprior knowledgeTMRtracking range
collection DOAJ
language English
format Article
sources DOAJ
author Bowen Lv
Yuangui Chen
Houde Dai
Shijian Su
Mingqiang Lin
spellingShingle Bowen Lv
Yuangui Chen
Houde Dai
Shijian Su
Mingqiang Lin
PKBPNN-Based Tracking Range Extending Approach for TMR Magnetic Tracking System
IEEE Access
Back propagation neural network (BPNN)
magnetic tracking
prior knowledge
TMR
tracking range
author_facet Bowen Lv
Yuangui Chen
Houde Dai
Shijian Su
Mingqiang Lin
author_sort Bowen Lv
title PKBPNN-Based Tracking Range Extending Approach for TMR Magnetic Tracking System
title_short PKBPNN-Based Tracking Range Extending Approach for TMR Magnetic Tracking System
title_full PKBPNN-Based Tracking Range Extending Approach for TMR Magnetic Tracking System
title_fullStr PKBPNN-Based Tracking Range Extending Approach for TMR Magnetic Tracking System
title_full_unstemmed PKBPNN-Based Tracking Range Extending Approach for TMR Magnetic Tracking System
title_sort pkbpnn-based tracking range extending approach for tmr magnetic tracking system
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2019-01-01
description The magnetic tracking system, which is based on a permanent magnet and a magnetometer array, has numerous potential applications in the biomedical and industrial area. However, its tracking accuracy drops off sharply with the increase of tracking distance because of both the interference of environmental magnetic field and sensor measurement noise. To extend the magnetic tracking range, two novel methods were proposed in this study. First, the state-of-the-art tri-axial tunnel magnetoresistance (TMR) sensors, which possess the most significant field sensitivity and signal-to-noise ratio (SNR) over other types of magnetoresistive sensors, were adopted to construct the sensor array. Second, a fusion approach was proposed for tracking range extending. The particle swarm optimization-Levenberg Marquardt (PSO-LM) method based on the magnetic dipole model was applied in the near field (i.e., near-source zone), and the prior knowledge based back propagation neural network (PKBPNN) was adopted to the far field (i.e., far-source zone). In the transition zone, these two algorithms were fused by using an adaptive sigmoid function. The trained artificial neural network (ANN) model embodied the physical model errors, the sensor installation errors, and the inherent characteristics of adopted magnetometers. Therefore, it has greater tracking performance than singly using the PSO-LM in the far-source zone. The experimental results show that the tracking errors decrease from (18.24 ± 9.37mm, 12.45 ± 3.37°) to (8.95 ± 1.74mm, 7.97 ± 2.08°) in the tracking range between 216 and 296 mm. Besides, the tracking distance is extended to 396 mm, with the position error of less than 25 mm. It can be concluded that this approach has significantly extended the tracking range of the magnetic tracking system.
topic Back propagation neural network (BPNN)
magnetic tracking
prior knowledge
TMR
tracking range
url https://ieeexplore.ieee.org/document/8715772/
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