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Accurate and Efficient Object Tracking Based on Passive RFID

机译:基于无源RFID的准确高效的对象跟踪

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RFID technology has been widely used for object tracking in indoor environment due to their low cost and convenience for deployment. In this paper, we consider RFID reader tracking which refers to continuously locating a mobile object by attaching it with a RFID reader that communicates with passive RFID tags deployed in the environment. One difficulty is that the RFID readings gathered from the environment are often noisy. Existing approaches for tracking with noisy RFID readings are mostly based on using Particle Filter (PF). However, continuous execution of PF has extremely high computational cost, and may be difficult to be done on mostly resource constrained mobile RFID devices. In this paper, we propose a hybrid method which combines PF with Weighted Centroid Localization (WCL) to achieve high accuracy and low computational cost. Our observation is that WCL has the same accuracy with PF with much lower cost if the object’s velocity is low. Our method has two critical features. The first feature is adaptive switching between using WCL and PF based on the estimated velocity of the mobile object. The second feature is the further reduction of computational cost by offloading costly PF algorithm onto nearby servers. We evaluate the performance of our method through extensive simulations and experiments in two real world applications, namely, indoor wheelchair navigation and in-station Light Rail Vehicle (LRV) tracking at one of Hong Kong MTR depots. The result shows that our proposed approach has significantly less computational cost than existing PF based methods, while being as accurate as them.
机译:RFID技术由于其低成本和便于部署而被广泛用于室内环境中的物体跟踪。在本文中,我们考虑RFID读取器跟踪,这是指通过将移动对象与与环境中部署的无源RFID标签进行通信的RFID读取器连接来连续定位移动对象。一个困难是从环境中收集的RFID读数通常很吵。现有的带有嘈杂RFID读数的跟踪方法主要基于使用粒子过滤器(PF)。然而,PF的连续执行具有极高的计算成本,并且可能难以在资源受限的移动RFID设备上完成。在本文中,我们提出了一种将PF与加权质心定位(WCL)相结合的混合方法,以实现高精度和低计算量。我们的观察结果是,如果物体的速度较低,WCL的精度与PF相同,而成本却低得多。我们的方法有两个关键特征。第一个功能是根据移动物体的估计速度在WCL和PF之间进行自适应切换。第二个特点是通过将昂贵的PF算法卸载到附近的服务器上,进一步降低了计算成本。我们通过在两个实际应用中进行广泛的仿真和实验来评估我们方法的性能,这两个应用分别是香港地铁一个仓库的室内轮椅导航和车站轻轨车辆(LRV)跟踪。结果表明,与现有的基于PF的方法相比,我们提出的方法的计算成本显着降低,并且精度与它们相同。

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