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dc.rights.license CC BY eng
dc.contributor.author Vyšata, Oldřich cze
dc.contributor.author Ťupa, Ondřej cze
dc.contributor.author Procházka, Aleš cze
dc.contributor.author Doležal, Rafael cze
dc.contributor.author Cejnar, Pavel cze
dc.contributor.author Bhorkar, Aprajita cze
dc.contributor.author Dostál, Ondřej cze
dc.contributor.author Vališ, Martin cze
dc.date.accessioned 2025-12-05T10:26:57Z
dc.date.available 2025-12-05T10:26:57Z
dc.date.issued 2021 eng
dc.identifier.issn 1424-8220 eng
dc.identifier.uri http://hdl.handle.net/20.500.12603/1311
dc.description.abstract Gait disorders accompany a number of neurological and musculoskeletal disorders that significantly reduce the quality of life. Motion sensors enable high-quality modelling of gait stereotypes. However, they produce large volumes of data, the evaluation of which is a challenge. In this publication, we compare different data reduction methods and classification of reduced data for use in clinical practice. The best accuracy achieved between a group of healthy individuals and patients with ataxic gait extracted from the records of 43 participants (23 ataxic, 20 healthy), forming 418 segments of straight gait pattern, is 98% by random forest classifier preprocessed by t-distributed stochastic neighbour embedding eng
dc.format p. "Article Number: 5576" eng
dc.language.iso eng eng
dc.publisher MDPI-Molecular diversity preservation international eng
dc.relation.ispartof Sensors, volume 21, issue: 16 eng
dc.subject Classification eng
dc.subject Ataxic eng
dc.subject Gait eng
dc.title Classification of Ataxic Gait eng
dc.type article eng
dc.identifier.obd 43878000 eng
dc.identifier.doi 10.3390/s21165576 eng
dc.publicationstatus postprint eng
dc.peerreviewed yes eng
dc.source.url https://www.mdpi.com/1424-8220/21/16/5576/htm cze
dc.relation.publisherversion https://www.mdpi.com/1424-8220/21/16/5576/htm eng
dc.rights.access Open Access eng


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