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A highly accurate and scalable approach for addressing location uncertainty in asset tracking applications

机译:一种高度准确和可扩展的方法,用于解决资产跟踪应用中的位置不确定性

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Tracking systems that use RFID are increasingly being used for monitoring the movement of goods in supply chains. While these systems are effective, they still have to overcome significant challenges, such as missing reads, to improve their performance further. In this paper, we describe an optimised tracking algorithm to predict the locations of objects in the presence of missed reads using particle filters. To achieve high location accuracy we develop a model that characterises the motion of objects in a supply chain. The model is also adaptable to the changing nature of a business such as flow of goods, path taken by goods through the supply chain, and sales volumes. A scalable tracking algorithm is achieved by an object compression technique, which also leads to a significant improvement in accuracy. The results of a detailed simulation study shows that our object compression technique yields high location accuracy (above 98% at 0.95 read rate) with significant reductions in execution time and memory usage.
机译:跟踪使用RFID的系统越来越多地用于监控供应链中货物的移动。虽然这些系统是有效的,但他们仍然必须克服重大挑战,例如缺失读数,进一步提高他们的性能。在本文中,我们描述了一种优化的跟踪算法,以预测使用粒子滤波器存在错过读数的对象的位置。为了实现高位置精度,我们开发了一种型号,其特征在供应链中的物体运动。该模型还适用于商业的变化性质,如商品流量,通过供应链的货物采取的道路,以及销售量。通过对象压缩技术实现可伸缩的跟踪算法,这也导致精度显着提高。详细仿真研究的结果表明,我们的物体压缩技术在执行时间和内存使用情况下显着减少了高位置精度(以0.95读取速率为高于98%)。

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