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Tag testing methodology for RFID enabled temperature tracking and shelf life estimation

机译:用于RFID的温度跟踪和保质期估计的标签测试方法

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Recent advances in sensory devices using radio frequency identification (RFID) led to applications such as monitoring the temperature during the transportation of heat sensitive products where recorded data can be used to detect refrigeration equipment failure along the supply chain or estimate remaining shelf life of the product. For the project discussed in this paper, a handheld based portable RFID system is used to track the storage and transportation temperatures of perishable products using battery assisted passive temperature tags. The information from the tags is used in shelf life prediction models to estimate the remaining shelf life based on the recorded temperature data to provide a dynamic expiration date. Instead of the full application development effort, this paper focuses on the unique project requirements and challenges which led to the introduction of three novel concepts related to RFID enabled temperature tracking systems. First, due to absence of a common standard for testing RFID temperature tags, we develop a requirement driven, comprehensive testing protocol combining statistical tools and common industry standards with the help of a uniquely designed test setup to realistically simulate and evaluate the real life performances of different temperature tags. Next, a novel context based accuracy metric is derived for objective and application (such as shelf life prediction) specific comparison of different technologies. Finally, a pallet temperature estimation algorithm is developed to overcome some of the physical difficulties encountered in reading ultra-high frequency tags near the presence of metals and liquids.
机译:使用射频识别(RFID)的传感设备的最新进展导致了诸如在热敏产品运输过程中监控温度的应用,其中记录的数据可用于检测供应链上的制冷设备故障或估计产品的剩余货架寿命。 。对于本文讨论的项目,基于手持式的便携式RFID系统用于使用电池辅助的无源温度标签跟踪易腐产品的存储和运输温度。来自标签的信息在保质期预测模型中用于根据记录的温度数据估算剩余的保质期,以提供动态的有效期。代替了完整的应用程序开发工作,本文重点介绍了独特的项目要求和挑战,这些挑战和挑战导致引入了与启用RFID的温度跟踪系统有关的三个新颖概念。首先,由于缺乏用于测试RFID温度标签的通用标准,我们开发了一种需求驱动的综合测试协议,该协议结合了统计工具和通用的行业标准,并借助独特设计的测试设置来逼真的模拟和评估产品的实际性能。不同的温度标签。接下来,针对不同技术的目标和应用(例如保质期预测)的特定比较,得出了一种基于上下文的新颖准确度度量。最后,开发了一种托盘温度估算算法,以克服在靠近金属和液体的情况下读取超高频标签时遇到的一些物理困难。

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