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Segmentation and feature extraction of human gait motion

conference contribution
posted on 2017-02-09, 00:00 authored by Nicholas de Boer, Hamid AbdiHamid Abdi, Michael FieldingMichael Fielding, Saeid Nahavandi
This paper presents segmentation and feature extraction of human gait motion. The methodology of this paper focuses on segmenting ‘XYZ’ position curves, in reference to time of gait motion based on the velocity or acceleration of the movement. The extracted features include amplitude, time, and equally spaced sample data, maximum and minimum for each segment. The results can be used for reconstruction of a viable dataset that is critical for simulation and validation of human gaits. We propose a method to enables the fitting of the same curve with limited data. Such data sets may prove valuable for studying impairments and improving simulations of rehabilitation tools, and statistical classification for researchers worldwide.

History

Event

Design and Technology. International Conference (2016 : Geelong, Victoria)

Pagination

267 - 273

Publisher

Knowledge E

Location

Geelong, Victoria

Place of publication

Dubai, U.A.E.

Start date

2016-12-05

End date

2016-12-08

ISSN

2518-6841

Language

eng

Publication classification

E Conference publication; E1 Full written paper - refereed

Copyright notice

2017, The Authors

Editor/Contributor(s)

P Collins, I Gibson

Title of proceedings

DesTech 2016: Proceedings of the International Conference on Design and Technology

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