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An Effective Scheduling-Based RFID Reader Collision Avoidance Model and Its Resource Allocation via Artificial Immune Network

机译:一种基于调度的有效RFID读写器防撞模型及其通过人工免疫网络的资源分配

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摘要

Radio frequency identification, that is, RFID, is one of important technologies in Internet of Things. Reader collision does impair the tag identification efficiency of an RFID system. Many developed methods, for example, the scheduling-based series, that are used to avoid RFID reader collision, have been developed. For scheduling-based methods, communication resources, that is, time slots, channels, and power, are optimally assigned to readers. In this case, reader collision avoidance is equivalent to an optimization problem related to resource allocation. However, the existing methods neglect the overlap between the interrogation regions of readers, which reduces the tag identification rate (TIR). To resolve this shortage, this paper attempts to build a reader-to-reader collision avoidance model considering the interrogation region overlaps (R2RCAM-IRO). In addition, an artificial immune network for resource allocation (RA-IRO-aiNet) is designed to optimize the proposed model. For comparison, some comparative numerical simulations are arranged. The simulation results show that the proposed R2RCAM-IRO is an effective model where TIR is improved significantly. And especially in the application of reader-to-reader collision avoidance, the proposed RA-IRO-aiNet outperforms GA, opt-aiNet, and PSO in the total coverage area of readers.
机译:射频识别(即RFID)是物联网中的重要技术之一。读取器碰撞确实会损害RFID系统的标签识别效率。已经开发出许多已开发的方法,例如用于避免RFID读取器冲突的基于调度的序列。对于基于调度的方法,将通信资源(即时隙,信道和功率)最佳地分配给读取器。在这种情况下,避免读取器冲突等同于与资源分配有关的优化问题。然而,现有的方法忽略了阅读器的询问区域之间的重叠,这降低了标签识别率(TIR)。为了解决这种不足,本文尝试构建一个考虑到询问区域重叠(R2RCAM-IRO)的阅读器到阅读器的碰撞避免模型。另外,设计了用于资源分配的人工免疫网络(RA-IRO-aiNet)来优化所提出的模型。为了比较,安排了一些比较数值模拟。仿真结果表明,所提出的R2RCAM-IRO是有效改善TIR的有效模型。尤其是在阅读器到阅读器碰撞避免的应用中,所提出的RA-IRO-aiNet在阅读器的总覆盖范围方面优于GA,opt-aiNet和PSO。

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  • 来源
    《Mathematical Problems in Engineering》 |2016年第1期|7854154.1-7854154.11|共11页
  • 作者单位

    School of Electronic Engineering Dongguan University of Technology Dongguan Guangdong 523808 China;

    School of Data and Computer Science Sun Yat-Sen University Guangzhou Guangdong 510006 China;

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  • 入库时间 2022-08-18 04:59:44

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