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A Handheld Inertial Pedestrian Navigation System With Accurate Step Modes and Device Poses Recognition

机译:具有精确步进模式和设备位置识别功能的手持式惯性行人导航系统

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摘要

In this paper, a handheld inertial pedestrian navigation system (IPNS) based on low-cost microelectromechanical system sensors is presented. Using the machine learning method of support vector machine, a multiple classifier is developed to recognize human step modes and device poses. The accuracy of the selected classifier is >85%. A novel step detection model is created based on the results of the classifier to eliminate the over-counting and under-counting errors. The accuracy of the presented step detector is >98%. Based on the improvements of the step modes recognition and step detection, the IPNS realized precise tracking using the pedestrian dead reckoning algorithm. The largest location error of the IPNS prototype is m in an urban area with a 2100-m-long distance.
机译:本文提出了一种基于低成本微机电系统传感器的手持式惯性行人导航系统(IPNS)。使用支持向量机的机器学习方法,开发了一种多分类器来识别人的步态和设备姿势。所选分类器的准确性> 85%。根据分类器的结果创建一个新颖的步检测模型,以消除计数过多和计数不足的错误。所提出的步进检测器的准确度> 98%。 IPNS在改进步阶模式识别和步阶检测的基础上,使用行人航位推算算法实现了精确的跟踪。 IPNS原型的最大位置误差是在2100米长距离的市区内m。

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