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A Localization and Tracking Approach with Sparse Reference Tags

机译:具有稀疏参考标记的本地化和跟踪方法

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In traditional localization systems, it is required that moving object carries a device to transmit or receive signals, and then localization system is able to locate an object based on signal strength it received. In this paper, we propose a new passive localization and tracking approach based on RFID with sparse reference tags, which can estimate the location of moving objects by detecting and analyzing signal strength distribution of target area. We firstly construct a signal fluctuation ellipse model between RFID reader and tag through the experiments, and then present a localization method based on this model. Then a tracking method based on Hidden Markov Model (HMM) is proposed to predict the trajectory of an object in a passive localization system with sparse reference tag. The experimental results show that our method not only reduces the computation complexity and cost but also ensures the accuracy of localization and tracking.
机译:在传统的定位系统中,要求移动物体携带一个设备来发送或接收信号,然后定位系统能够根据接收到的信号强度来定位物体。在本文中,我们提出了一种基于带有稀疏参考标签的RFID的无源定位和跟踪方法,该方法可以通过检测和分析目标区域的信号强度分布来估计移动物体的位置。首先通过实验建立了RFID阅读器与标签之间的信号波动椭圆模型,然后提出了基于该模型的定位方法。提出了一种基于隐马尔可夫模型的跟踪方法来预测带有稀疏参考标签的无源定位系统中物体的运动轨迹。实验结果表明,该方法不仅降低了计算复杂度和成本,而且保证了定位和跟踪的准确性。

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