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Intelligent System for Identification of Wheelchair User’s Posture Using Machine Learning Techniques

机译:利用机器学习技术识别轮椅使用者姿势的智能系统

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摘要

This paper presents an intelligent system aimed at detecting a person's posture when sitting in a wheelchair. The main use of the proposed system is to warn an improper posture to prevent major health issues. A network of sensors is used to collect data that are analyzed through a scheme involving the following stages: selection of prototypes using condensed nearest neighborhood rule (CNN), data balancing with the Kennard-Stone algorithm, and reduction of dimensionality through principal component analysis. In doing so, acquired data can be both stored and processed into a micro controller. Finally, to carry out the posture classification over balanced, pre-processed data, and the K-nearest neighbors algorithm is used. It turns to he an intelligent system reaching a good tradeoff between the necessary amount of data and performance is accomplished. As a remarkable result, the amount of required data for training is significantly reduced while an admissible classification performance is achieved being a suitable trade given the device conditions.
机译:本文提出了一种智能系统,旨在检测坐在轮椅上的人的姿势。提议的系统的主要用途是警告为防止重大健康问题而采取不正确的姿势。传感器网络用于收集通过以下阶段的方案进行分析的数据:使用压缩最近邻规则(CNN)选择原型,使用Kennard-Stone算法进行数据平衡以及通过主成分分析降低维数。这样,可以将获取的数据存储并处理到微控制器中。最后,对经过预处理的平衡数据进行姿势分类,并使用K最近邻算法。事实证明,一个智能系统可以在必要的数据量和性能之间达成良好的折衷。结果是,显着减少了训练所需的数据量,同时实现了可接受的分类性能,这是在给定设备条件的情况下的一种合适的选择。

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