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Characterizing Wave Propagation to Improve Indoor Step-Level Person Localization using Floor Vibration

机译:利用地面振动表征波的传播,以改善室内阶梯级人员的定位

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The objective of this paper is to characterize frequency-dependent wave propagation of footstep induced floor vibration to improve robustness of vibration-based occupant localization. Occupant localization is an essential part of many smart structure applications (e.g., energy management, patient/customer tracking, etc.). Existing techniques include visual (e.g. cameras and IR sensors), acoustic, RF, and load-based approaches. These approaches have many deployment and operational requirements that limits their adaptation. To overcome these limitations, prior work has utilized footstep-induced vibrations to allow sparse sensor configuration and non-intrusive detection. However, frequency dependent propagation characteristics and low signal-to-noise ratio (SNR) of footstep-induced vibrations change the shape of the signal. Furthermore, estimating the wave propagation velocity for forming the multilateration equations and localizing the footsteps is a challenging task. They, in turn, lead to large errors of localization. In this paper, we present a structural vibration based indoor occupant localization technique using improved time-difference-of-arrival between multiple vibration sensors. In particular we overcome signal distortion by decomposing the signal into frequency components and focusing on high energy components for accurate indoor localization. Such decomposition leverages the frequency-specific propagation characteristics and reduces the effect of low SNR (by choosing the components of highest energy). Furthermore, we develop a velocity calibration method that finds the optimal velocity which minimizes the localization error. We validate our approach through field experiments in a building with human participants. We are able to achieve an average localization error of less than 0.21 meters, which corresponds to a 13X reduction in error when compared to the baseline method using raw data.
机译:本文的目的是表征脚步引起的地板振动的频率相关波传播,以提高基于振动的乘员定位的鲁棒性。乘员定位是许多智能结构应用程序(例如,能源管理,患者/客户跟踪等)的重要组成部分。现有技术包括视觉(例如摄像机和红外传感器),声学,射频和基于负载的方法。这些方法有许多部署和操作要求,限制了它们的适应性。为了克服这些限制,现有技术利用了脚步引起的振动,以实现稀疏的传感器配置和非侵入式检测。但是,与频率有关的传播特性和足迹引起的振动的低信噪比(SNR)会改变信号的形状。此外,估计用于形成多边方程式并确定足迹的波传播速度是一项艰巨的任务。反过来,它们会导致较大的本地化错误。在本文中,我们提出了一种基于结构振动的室内乘客定位技术,该技术使用了多个振动传感器之间的改进的到达时间差。特别是,我们通过将信号分解为频率分量并专注于高能量分量来进行精确的室内定位,从而克服了信号失真。这种分解利用了特定于频率的传播特性,并降低了低SNR的影响(通过选择能量最高的成分)。此外,我们开发了一种速度校准方法,该方法可以找到使定位误差最小的最佳速度。我们通过在具有人类参与者的建筑物中进行现场实验来验证我们的方法。我们能够实现小于0.21米的平均定位误差,与使用原始数据的基准线方法相比,该误差降低了13倍。

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