Towards Parallel Decoding with Compressive Sensing in Multi-Reader Large-Scale RFID System

Wei Sun
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引用次数: 2

Abstract

The commodity passive RFID system employs slotted ALOHA protocol to interrogate the tags within the reader’s communication range. So, at each time slot, there is only one RFID tag communicating with the reader. This degrades the network throughput, especially in large-scale RFID deployments such as warehouses. Recently, parallel decoding techniques are proposed, which can only read less than ten tags at each time slot. So, it is not applicable for warehouse applications, where there are thousands of RFID tags.In this paper, we propose to achieve parallel decoding with compressive sensing technique for multi-reader large-scale RFID system. Since it is difficult to decode the collisions from multiple tags at one reader, we distributively deploy multiple readers. However, we have to consider the inter-reader interference. Even though there are thousands of tags deployed in the large warehouse, they may not backscatter the signals at each time slot simultaneously due to the heterogeneity. Therefore, this sparsity property of backscattering signals can allow us to leverage compressive sensing to decode multiple tags simultaneously with multiple readers. Our simulation results reveal that compressive sensing can efficiently achieve parallel decoding in multi-reader large-scale RFID system.
基于压缩感知的多读写器大规模RFID系统并行解码研究
商品无源RFID系统采用开槽ALOHA协议来询问阅读器通信范围内的标签。因此,在每个时隙,只有一个RFID标签与阅读器通信。这会降低网络吞吐量,特别是在仓库等大规模RFID部署中。最近提出的并行解码技术,每个时隙只能读取少于10个标签。因此,它不适用于仓库应用程序,那里有数千个RFID标签。本文提出了一种基于压缩感知技术的多读卡器大规模RFID系统并行解码技术。由于难以在一个阅读器上解码来自多个标签的冲突,因此我们分布式地部署了多个阅读器。然而,我们必须考虑阅读器间的干扰。即使在大型仓库中部署了数千个标签,由于其异构性,它们也可能无法同时在每个时隙反向散射信号。因此,后向散射信号的稀疏性可以让我们利用压缩感知同时解码多个标签。仿真结果表明,压缩感知可以有效地实现多读写器大规模RFID系统的并行解码。
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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