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Highly Accurate Step Counting at Various Walking States Using Low-Cost Inertial Measurement Unit Support Indoor Positioning System

机译:使用低成本惯性测量单元支持室内定位系统可在各种步行状态下进行高精度步数计数

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摘要

Accurate step counting is essential for indoor positioning, health monitoring systems, and other indoor positioning services. There are several publications and commercial applications in step counting. Nevertheless, over-counting, under-counting, and false walking problems are still encountered in these methods. In this paper, we propose to develop a highly accurate step counting method to solve these limitations by proposing four features: Minimal peak distance, minimal peak prominence, dynamic thresholding, and vibration elimination, and these features are adaptive with the user’s states. Our proposed features are combined with periodicity and similarity features to solve false walking problem. The proposed method shows a significant improvement of 99.42% and 96.47% of the average of accuracy in free walking and false walking problems, respectively, on our datasets. Furthermore, our proposed method also achieves the average accuracy of 97.04% on public datasets and better accuracy in comparison with three commercial step counting applications: Pedometer and Weight Loss Coach installed on Lenovo P780, Health apps in iPhone 5s (iOS 10.3.3), and S-health in Samsung Galaxy S5 (Android 6.01).
机译:准确的步数计数对于室内定位,健康监测系统和其他室内定位服务至关重要。步数计数有几种出版物和商业应用。但是,在这些方法中仍然会遇到计数过多,计数不足和虚假行走的问题。在本文中,我们建议通过提出以下四个特征来开发一种高精度的步数计算方法,以解决这些限制:最小的峰距,最小的峰突起,动态阈值和振动消除,并且这些功能可以适应用户的状态。我们提出的特征与周期性和相似性特征相结合来解决虚假步行问题。所提出的方法在我们的数据集上分别显示自由行走和虚假行走问题的平均准确率分别显着提高了99.42%和96.47%。此外,我们提出的方法在公开数据集上的平均准确度也达到了97.04%,与三种商业步数计数应用程序(联想P780上安装的计步器和减肥教练,iPhone 5s(iOS 10.3.3)中的Health应用程序,和三星Galaxy S5(Android 6.01)中的S-health。

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