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Development of a Methodology for Low-Cost 3D Underwater Motion Capture: Application to the Biomechanics of Horse Swimming

Hydrotherapy has been utilized in horse rehabilitation programs for over four decades. However, a comprehensive description of the swimming cycle of horses is still lacking. One of the challenges in studying this motion is 3D underwater motion capture, which holds potential not only for understandin...

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Autores principales: Giraudet, Chloé, Moiroud, Claire, Beaumont, Audrey, Gaulmin, Pauline, Hatrisse, Chloé, Azevedo, Emeline, Denoix, Jean-Marie, Ben Mansour, Khalil, Martin, Pauline, Audigié, Fabrice, Chateau, Henry, Marin, Frédéric
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10647488/
https://www.ncbi.nlm.nih.gov/pubmed/37960531
http://dx.doi.org/10.3390/s23218832
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author Giraudet, Chloé
Moiroud, Claire
Beaumont, Audrey
Gaulmin, Pauline
Hatrisse, Chloé
Azevedo, Emeline
Denoix, Jean-Marie
Ben Mansour, Khalil
Martin, Pauline
Audigié, Fabrice
Chateau, Henry
Marin, Frédéric
author_facet Giraudet, Chloé
Moiroud, Claire
Beaumont, Audrey
Gaulmin, Pauline
Hatrisse, Chloé
Azevedo, Emeline
Denoix, Jean-Marie
Ben Mansour, Khalil
Martin, Pauline
Audigié, Fabrice
Chateau, Henry
Marin, Frédéric
author_sort Giraudet, Chloé
collection PubMed
description Hydrotherapy has been utilized in horse rehabilitation programs for over four decades. However, a comprehensive description of the swimming cycle of horses is still lacking. One of the challenges in studying this motion is 3D underwater motion capture, which holds potential not only for understanding equine locomotion but also for enhancing human swimming performance. In this study, a marker-based system that combines underwater cameras and markers drawn on horses is developed. This system enables the reconstruction of the 3D motion of the front and hind limbs of six horses throughout an entire swimming cycle, with a total of twelve recordings. The procedures for pre- and post-processing the videos are described in detail, along with an assessment of the estimated error. This study estimates the reconstruction error on a checkerboard and computes an estimated error of less than 10 mm for segments of tens of centimeters and less than 1 degree for angles of tens of degrees. This study computes the 3D joint angles of the front limbs (shoulder, elbow, carpus, and front fetlock) and hind limbs (hip, stifle, tarsus, and hind fetlock) during a complete swimming cycle for the six horses. The ranges of motion observed are as follows: shoulder: 17 ± 3°; elbow: 76 ± 11°; carpus: 99 ± 10°; front fetlock: 68 ± 12°; hip: 39 ± 3°; stifle: 68 ± 7°; tarsus: 99 ± 6°; hind fetlock: 94 ± 8°. By comparing the joint angles during a swimming cycle to those observed during classical gaits, this study reveals a greater range of motion (ROM) for most joints during swimming, except for the front and hind fetlocks. This larger ROM is usually achieved through a larger maximal flexion angle (smaller minimal angle of the joints). Finally, the versatility of the system allows us to imagine applications outside the scope of horses, including other large animals and even humans.
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spelling pubmed-106474882023-10-30 Development of a Methodology for Low-Cost 3D Underwater Motion Capture: Application to the Biomechanics of Horse Swimming Giraudet, Chloé Moiroud, Claire Beaumont, Audrey Gaulmin, Pauline Hatrisse, Chloé Azevedo, Emeline Denoix, Jean-Marie Ben Mansour, Khalil Martin, Pauline Audigié, Fabrice Chateau, Henry Marin, Frédéric Sensors (Basel) Article Hydrotherapy has been utilized in horse rehabilitation programs for over four decades. However, a comprehensive description of the swimming cycle of horses is still lacking. One of the challenges in studying this motion is 3D underwater motion capture, which holds potential not only for understanding equine locomotion but also for enhancing human swimming performance. In this study, a marker-based system that combines underwater cameras and markers drawn on horses is developed. This system enables the reconstruction of the 3D motion of the front and hind limbs of six horses throughout an entire swimming cycle, with a total of twelve recordings. The procedures for pre- and post-processing the videos are described in detail, along with an assessment of the estimated error. This study estimates the reconstruction error on a checkerboard and computes an estimated error of less than 10 mm for segments of tens of centimeters and less than 1 degree for angles of tens of degrees. This study computes the 3D joint angles of the front limbs (shoulder, elbow, carpus, and front fetlock) and hind limbs (hip, stifle, tarsus, and hind fetlock) during a complete swimming cycle for the six horses. The ranges of motion observed are as follows: shoulder: 17 ± 3°; elbow: 76 ± 11°; carpus: 99 ± 10°; front fetlock: 68 ± 12°; hip: 39 ± 3°; stifle: 68 ± 7°; tarsus: 99 ± 6°; hind fetlock: 94 ± 8°. By comparing the joint angles during a swimming cycle to those observed during classical gaits, this study reveals a greater range of motion (ROM) for most joints during swimming, except for the front and hind fetlocks. This larger ROM is usually achieved through a larger maximal flexion angle (smaller minimal angle of the joints). Finally, the versatility of the system allows us to imagine applications outside the scope of horses, including other large animals and even humans. MDPI 2023-10-30 /pmc/articles/PMC10647488/ /pubmed/37960531 http://dx.doi.org/10.3390/s23218832 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Giraudet, Chloé
Moiroud, Claire
Beaumont, Audrey
Gaulmin, Pauline
Hatrisse, Chloé
Azevedo, Emeline
Denoix, Jean-Marie
Ben Mansour, Khalil
Martin, Pauline
Audigié, Fabrice
Chateau, Henry
Marin, Frédéric
Development of a Methodology for Low-Cost 3D Underwater Motion Capture: Application to the Biomechanics of Horse Swimming
title Development of a Methodology for Low-Cost 3D Underwater Motion Capture: Application to the Biomechanics of Horse Swimming
title_full Development of a Methodology for Low-Cost 3D Underwater Motion Capture: Application to the Biomechanics of Horse Swimming
title_fullStr Development of a Methodology for Low-Cost 3D Underwater Motion Capture: Application to the Biomechanics of Horse Swimming
title_full_unstemmed Development of a Methodology for Low-Cost 3D Underwater Motion Capture: Application to the Biomechanics of Horse Swimming
title_short Development of a Methodology for Low-Cost 3D Underwater Motion Capture: Application to the Biomechanics of Horse Swimming
title_sort development of a methodology for low-cost 3d underwater motion capture: application to the biomechanics of horse swimming
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10647488/
https://www.ncbi.nlm.nih.gov/pubmed/37960531
http://dx.doi.org/10.3390/s23218832
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