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Título
Soft Computing for the Analysis of People Movement Classification
Autor(es)
Assunto
Computer Science
Fecha de publicación
2013
Editor
Springer Science + Business Media
Citación
Soft Computing Models in Industrial and Environmental Applications Advances in Intelligent Systems and Computing. Advances in Intelligent Systems and Computing. Volumen 188, pp. 241-248.
Resumo
This article presents a study of the best data acquisition conditions regarding movements of extremities in people. By using an accelerometer, there exist different ways of collecting and storing the data captured while people moving. To know which one of these options is the best one, in terms of classification, an empirical study is presented in this paper. As a soft computing technique for validation, Self-Organizing maps have been chosen due to their visualization capability. Empirical verification and comparison of the proposed classification methods are performed in a real domain, where three similar movements in the real-life are analyzed.
URI
ISBN
978-3-642-32921-0(Print) / 978-3-642-32922-7 (Online)
ISSN
2194-5357 (Print) / 2194-5365 (Online)
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