Energy-Efficient Activity Recognition on Smartphone

Wei Zheng, Yuri Yoshihara, Noel Tay, Dalai Tang, N. Kubota
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引用次数: 4

Abstract

In recent years, with the rapid development of smart phones, smart phones have become indispensable in our life. We can monitor human activities by the built-in sensors of the smartphone, and extract useful information for human services, such as human health, life log or assistance tips. In fact, this is a very low cost and efficient method. In previous research we have classified the walking style by Decision Tree. In order to recognize the activities more precisely and comprehensively, in this paper we used Decision Tree and SVM to learn the collected data on the smartphone, meanwhile considering the energy-efficiency problem around it.
智能手机节能活动识别
近年来,随着智能手机的快速发展,智能手机已经成为我们生活中不可或缺的一部分。我们可以通过智能手机内置的传感器监控人类的活动,并提取有用的信息,为人类服务,如人类健康,生命日志或援助提示。事实上,这是一种非常低成本和高效的方法。在以往的研究中,我们用决策树对行走方式进行了分类。为了更准确、全面地识别活动,本文使用决策树和支持向量机对智能手机上收集的数据进行学习,同时考虑智能手机周围的能效问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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