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Modeling Object Flows from Distributed and Federated RFID Data Streams for Efficient Tracking and Tracing

机译:对来自分布式和联合RFID数据流的对象流进行建模,以进行有效的跟踪和追踪

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摘要

In the emerging environment of the Internet of things (IoT), through the connection of billions of radio frequency identification (RFID) tags and sensors to the Internet, applications will generate an unprecedented number of transactions and amount of data that require novel approaches in RFID data stream processing and management. Unfortunately, it is difficult to maintain a distributed model without a shared directory or structured index. In this paper, we propose a fully distributed model for federated RFID data streams. This model combines two techniques, namely, tilted time frame and histogram to represent the patterns of object flows. Our model is efficient in space and can be stored in main memory. The model is built on top of an unstructured P2P overlay. To reduce the overhead of distributed data acquisition, we further propose several algorithms that use a statistically minimum number of network calls to maintain the model. The scalability and efficiency of the proposed model are demonstrated through an extensive set of experiments.
机译:在物联网(IoT)的新兴环境中,通过数十亿个射频识别(RFID)标签和传感器与Internet的连接,应用程序将产生数量空前的交易和大量数据,这需要采用新颖的RFID方法数据流处理和管理。不幸的是,如果没有共享目录或结构化索引,很难维护分布式模型。在本文中,我们提出了用于联合RFID数据流的完全分布式模型。该模型结合了两种技术,即倾斜的时间框架和直方图来表示对象流的模式。我们的模型在空间上高效,可以存储在主存储器中。该模型建立在非结构化的P2P覆盖之上。为了减少分布式数据采集的开销,我们进一步提出了几种算法,这些算法使用统计上最少的网络调用次数来维护模型。通过大量实验证明了所提出模型的可扩展性和效率。

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