Automatic front-crawl temporal phase detection using adaptive filtering of inertial signals

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Deutscher übersetzter Titel:Automatische Kraulphasenanalyse mithilfe einer lernfähigen Filterung von Trägheitssignalen
Autor:Dadashi, Farzin; Crettenand, Florent; Millet, Grégoire Paul; Seifert, Ludovic; Komar, John; Aminian, Kamiar
Erschienen in:Journal of sports sciences
Veröffentlicht:31 (2013), 11, S. 1251-1260, Lit.
Format: Literatur (SPOLIT)
Publikationstyp: Zeitschriftenartikel
Medienart: Gedruckte Ressource
Sprache:Englisch
ISSN:0264-0414, 1466-447X
DOI:10.1080/02640414.2013.778420
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Erfassungsnummer:PU201403003239
Quelle:BISp

Abstract

This study introduces a novel approach for automatic temporal phase detection and inter-arm coordination estimation in front-crawl swimming using inertial measurement units (IMUs). We examined the validity of our method by comparison against a video-based system. Three waterproofed IMUs (composed of 3D accelerometer, 3D gyroscope) were placed on both forearms and the sacrum of the swimmer. We used two underwater video cameras in side and frontal views as our reference system. Two independent operators performed the video analysis. To test our methodology, seven well-trained swimmers performed three 300 m trials in a 50 m indoor pool. Each trial was in a different coordination mode quantified by the index of coordination. We detected different phases of the arm stroke by employing orientation estimation techniques and a new adaptive change detection algorithm on inertial signals. The difference of 0.2 ± 3.9% between our estimation and videobased system in assessment of the index of coordination was comparable to experienced operators’ difference (1.1 ± 3.6%). The 95% limits of agreement of the difference between the two systems in estimation of the temporal phases were always less than 7.9% of the cycle duration. The inertial system offers an automatic easy-to-use system with timely feedback for the study of swimming. Verf.-Referat