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An Exponential-Rayleigh Model for RSS-Based Device-Free Localization and Tracking

机译:基于RSS的无设备定位和跟踪的指数瑞利模型

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A common technical difficulty in device-free localization and tracking (DFLT) with a wireless sensor network is that the change of the received signal strength (RSS) of the link often becomes more unpredictable due to the multipath interferences. This challenge can lead to unsatisfactory or even unstable DFLT performance. This work focuses on developing a new RSS model, called Exponential-Rayleigh (ER) model, for addressing this challenge. Based on data from our extensive experiments, we first develop the ER model of the received signal strength. This model consists of two parts: the large-scale exponential attenuation part and the small-scale Rayleigh enhancement part. The new consideration on using the Rayleigh model is to depict the target-induced multipath components. We then explore the use of the ER model with a particle filter in the context of multi-target localization and tracking. Finally, we experimentally demonstrate that our ER model outperforms the existing models. The experimental results highlight the advantages of using the Rayleigh model in mitigating the multipath interferences thus improving the DFLT performance.
机译:使用无线传感器网络进行无设备定位和跟踪(DFLT)时的常见技术难题是,由于多径干扰,链路的接收信号强度(RSS)的变化通常变得更加不可预测。这一挑战可能导致DFLT性能不尽人意甚至不稳定。这项工作着重于开发一种新的RSS模型,称为指数瑞利(ER)模型,以应对这一挑战。根据大量实验的数据,我们首先建立接收信号强度的ER模型。该模型由两部分组成:大型指数衰减部分和小型瑞利增强部分。使用瑞利模型的新考虑是描绘目标引起的多径分量。然后,我们探索在多目标定位和跟踪的情况下将ER模型与粒子过滤器一起使用的情况。最后,我们通过实验证明了我们的ER模型优于现有模型。实验结果突出了使用瑞利模型减轻多径干扰的优势,从而改善了DFLT性能。

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