Handling False Negatives in Indoor RFID Data

A. Baba, Hua Lu, T. Pedersen, Xike Xie
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引用次数: 22

Abstract

The Radio-Frequency Identification (RFID) is a useful technology for object tracking and monitoring systems in indoor environments, e.g., Airport baggage tracking. Nevertheless, the data produced by RFID tracking is inherently uncertain and contains errors. In order to support meaningful high-level applications including queries and analyses over RFID data, it is necessary to cleanse raw RFID data. In this paper, we focus on false negatives in raw indoor RFID tracking data. False negatives occur when a moving object passes the detection range of an RFID reader but the reader fails to produce any readings. We investigate the topology of indoor spaces as well as the deployment of RFID readers, and propose the transition probabilities that capture how likely objects move from one RFID reader to another. We organize such probabilities, together with the characteristics of indoor topology and RFID readers, into a probabilistic distance-aware graph. With the aid of this graph, we design algorithms to identify false negatives and recover missing information in indoor RFID tracking data. We evaluate the proposed cleansing approach using both real and synthetic datasets. The experimental results show that the approach is effective, efficient and scalable.
处理室内RFID数据中的假阴性
射频识别(RFID)是一项有用的技术,用于室内环境中的物体跟踪和监控系统,例如机场行李跟踪。然而,由RFID跟踪产生的数据本质上是不确定的,并且包含错误。为了支持有意义的高级应用程序,包括对RFID数据的查询和分析,有必要清理原始RFID数据。本文主要研究室内RFID跟踪数据的假阴性问题。当移动物体超过RFID阅读器的检测范围,但阅读器未能产生任何读数时,就会出现假阴性。我们研究了室内空间的拓扑结构以及RFID阅读器的部署,并提出了捕获物体从一个RFID阅读器移动到另一个RFID阅读器的可能性的转移概率。我们将这些概率,连同室内拓扑和RFID阅读器的特征,组织成一个概率距离感知图。借助此图,我们设计了识别假阴性和恢复室内RFID跟踪数据中缺失信息的算法。我们使用真实数据集和合成数据集来评估所提出的清理方法。实验结果表明,该方法是有效的、高效的、可扩展的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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