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An Efficient Early Frame Breaking Strategy for RFID Tag Identification in Large-Scale Industrial Internet of Things

机译:大型工业互联网中RFID标签识别的高效早期帧破坏策略

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With the increase in the number of tags, an efficient approach of tag identification is becoming an urgent need in Industrial Internet of Things (IIoT). However, the identification performance of existing Aloha-based anticollision schemes is limited when the initial frame size is seriously mismatched with the actual tag population size. The performance will degrade further when IIoT is deployed in the error-prone channel environment. To optimize the identification performance of RFID system in an error-prone channel environment, we propose an efficient early frame breaking strategy based anticollision algorithm (EFB-ACA) with channel awareness. The EFB-ACA divides the whole tag identification process into two phases: convergence phase and identification phase. The function of convergence phase is to make the adjusted frame quickly converge to an appropriate size. The early frame breaking strategy is embedded in the convergence phase. Numerical results show that the proposed EFB-ACA algorithm outperforms the other methods on efficiency and stability in the error-prone channel. In addition, EFB-ACA algorithm also outperforms the other methods in the error-free channel.
机译:随着标签数量的增加,标签识别的有效方法正在成为工业互联网(IIOT)的迫切需要。然而,当初始帧大小与实际标签群体大小严重不匹配时,现有的基于Aloha的抗癌方案的识别性能受到限制。当Ioiot部署在错误易于通道环境中时,性能会进一步降低。为了优化RFID系统在易于易置频道环境中的识别性能,我们提出了一种基于频道意识的基于频率的抗癌算法(EFB-ACA)的有效早期帧破坏策略。 EFB-ACA将整个标签识别过程分为两相:收敛阶段和识别阶段。收敛阶段的功能是使调整后的帧快速收敛到适当的尺寸。早期帧破坏策略嵌入在收敛阶段。数值结果表明,所提出的EFB-ACA算法优于易于误差通道中的效率和稳定性的其他方法。此外,EFB-ACA算法还优于无差错通道中的其他方法。

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