Magnetometer Calibration and Field Mapping through Thin Plate Splines

While the undisturbed Earth’s magnetic field represents a fundamental information source for orientation purposes, magnetic distortions have been mostly considered as a source of error. However, when distortions are temporally stable and spatially distinctive, they could provide a unique m...

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Main Authors: Marco Muraccini, Anna Lisa Mangia, Maurizio Lannocca, Angelo Cappello
Format: Article
Language:English
Published: MDPI AG 2019-01-01
Series:Sensors
Subjects:
Online Access:http://www.mdpi.com/1424-8220/19/2/280
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spelling doaj-e5629d841b4f4ca595fa52fc722e4b002020-11-25T00:03:25ZengMDPI AGSensors1424-82202019-01-0119228010.3390/s19020280s19020280Magnetometer Calibration and Field Mapping through Thin Plate SplinesMarco Muraccini0Anna Lisa Mangia1Maurizio Lannocca2Angelo Cappello3Department of Electrical, Electronic and Information Engineering, University of Bologna, Viale del Risorgimento, 2, 40136 Bologna, ItalyDepartment of Electrical, Electronic and Information Engineering, University of Bologna, Viale del Risorgimento, 2, 40136 Bologna, ItalyDepartment of Electrical, Electronic and Information Engineering, University of Bologna, Viale del Risorgimento, 2, 40136 Bologna, ItalyDepartment of Electrical, Electronic and Information Engineering, University of Bologna, Viale del Risorgimento, 2, 40136 Bologna, ItalyWhile the undisturbed Earth’s magnetic field represents a fundamental information source for orientation purposes, magnetic distortions have been mostly considered as a source of error. However, when distortions are temporally stable and spatially distinctive, they could provide a unique magnetic landscape that can be used in different applications, from indoor localization to sensor fusion algorithms for attitude estimation. The main purpose of this work, therefore, is to present a method to characterize the 3D magnetic vector in every point of the measurement volume. The possibility of describing the 3D magnetic field map through Thin Plate Splines (TPS) interpolation is investigated and demonstrated. An algorithm for the simultaneous estimation of the parameters related to magnetometer calibration and those describing the magnetic map, is proposed and tested on both simulated and real data. Results demonstrate that an accurate description of the local magnetic field using TPS interpolation is possible. The proposed procedure leads to errors in the estimation of the local magnetic direction with a standard deviation lower than 1 degree. Magnetometer calibration and magnetic field mapping could be integrated into different algorithms, for example to improve attitude estimation in highly distorted environments or as an aid to indoor localization.http://www.mdpi.com/1424-8220/19/2/280movement analysiswearable sensorsmagnetometer calibrationEarth’s magnetic field mappingthin plate splines
collection DOAJ
language English
format Article
sources DOAJ
author Marco Muraccini
Anna Lisa Mangia
Maurizio Lannocca
Angelo Cappello
spellingShingle Marco Muraccini
Anna Lisa Mangia
Maurizio Lannocca
Angelo Cappello
Magnetometer Calibration and Field Mapping through Thin Plate Splines
Sensors
movement analysis
wearable sensors
magnetometer calibration
Earth’s magnetic field mapping
thin plate splines
author_facet Marco Muraccini
Anna Lisa Mangia
Maurizio Lannocca
Angelo Cappello
author_sort Marco Muraccini
title Magnetometer Calibration and Field Mapping through Thin Plate Splines
title_short Magnetometer Calibration and Field Mapping through Thin Plate Splines
title_full Magnetometer Calibration and Field Mapping through Thin Plate Splines
title_fullStr Magnetometer Calibration and Field Mapping through Thin Plate Splines
title_full_unstemmed Magnetometer Calibration and Field Mapping through Thin Plate Splines
title_sort magnetometer calibration and field mapping through thin plate splines
publisher MDPI AG
series Sensors
issn 1424-8220
publishDate 2019-01-01
description While the undisturbed Earth’s magnetic field represents a fundamental information source for orientation purposes, magnetic distortions have been mostly considered as a source of error. However, when distortions are temporally stable and spatially distinctive, they could provide a unique magnetic landscape that can be used in different applications, from indoor localization to sensor fusion algorithms for attitude estimation. The main purpose of this work, therefore, is to present a method to characterize the 3D magnetic vector in every point of the measurement volume. The possibility of describing the 3D magnetic field map through Thin Plate Splines (TPS) interpolation is investigated and demonstrated. An algorithm for the simultaneous estimation of the parameters related to magnetometer calibration and those describing the magnetic map, is proposed and tested on both simulated and real data. Results demonstrate that an accurate description of the local magnetic field using TPS interpolation is possible. The proposed procedure leads to errors in the estimation of the local magnetic direction with a standard deviation lower than 1 degree. Magnetometer calibration and magnetic field mapping could be integrated into different algorithms, for example to improve attitude estimation in highly distorted environments or as an aid to indoor localization.
topic movement analysis
wearable sensors
magnetometer calibration
Earth’s magnetic field mapping
thin plate splines
url http://www.mdpi.com/1424-8220/19/2/280
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AT mauriziolannocca magnetometercalibrationandfieldmappingthroughthinplatesplines
AT angelocappello magnetometercalibrationandfieldmappingthroughthinplatesplines
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