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Multimode Pedestrian Dead Reckoning Gait Detection Algorithm Based on Identification of Pedestrian Phone Carrying Position

机译:多模步行读取步态步态检测算法识别行人手机携带位置

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Pedestrian dead reckoning (PDR) is an essential technology for positioning and navigation in complex indoor environments. In the process of PDR positioning and navigation using mobile phones, gait information acquired by inertial sensors under various carrying positions differs from noise contained in the heading information, resulting in excessive gait detection deviation and greatly reducing the positioning accuracy of PDR. Using data from mobile phone accelerometer and gyroscope signals, this paper examined various phone carrying positions and switching positions as the research objective and analysed the time domain characteristics of the three-axis accelerometer and gyroscope signals. A principal component analysis algorithm was used to reduce the dimension of the extracted multidimensional gait feature, and the extracted features were random forest modelled to distinguish the phone carrying positions. The results show that the step detection and distance estimation accuracy in the gait detection process greatly improved after recognition of the phone carrying position, which enhanced the robustness of the PDR algorithm.
机译:行人死亡(PDR)是复杂室内环境中定位和导航的必备技术。在使用移动电话的PDR定位和导航的过程中,各种承载位置下的惯性传感器获取的步态信息与标题信息中包含的噪声不同,导致远程检测偏差大大降低了PDR的定位精度。本文使用来自手机加速度计和陀螺仪信号的数据,检查了各种手机携带位置和切换位置,作为研究目标,并分析了三轴加速度计和陀螺仪信号的时域特性。主要成分分析算法用于减少提取的多维步态特征的尺寸,提取的特征是用于区分手机携带位置的随机林。结果表明,在识别电话载体位置后,步态检测过程中的步进检测过程中的步进检测和距离估计精度大大提高,这提高了PDR算法的鲁棒性。

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