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ERFR-CTC: Exploiting Residual Frequency Resources in Physical-Level Cross-Technology Communication

机译:ERFR-CTC:利用物理级交叉技术通信中的剩余频率资源

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摘要

In Internet of Things (IoT), physical-level cross-technology communication (CTC) enables IoT gateways to communicate with heterogeneous nodes economically. However, because of bandwidth asymmetry between heterogeneous technologies, many residual frequency resources are often not fully utilized. Without modification on hardware, in this article, we consider the coexistence of ultralow power (ULP) and WiFi nodes, and propose ERFR-CTC that enables an IoT gateway to fully exploit residual frequency resources without adding additional cost. With ERFR-CTC, the gateway can simultaneously communicate with ULP and WiFi nodes only via a single WiFi network interface card (NIC), which is not only economic but also very efficient. In particular, ERFR-CTC enables ULP nodes to correctly demodulate ULP signals without being interfered by WiFi signals. We then develop theoretical models to quantify available residual frequency resources and analyze the system throughput. Finally, extensive simulations verify that our model is very accurate and show that ERFR-CTC can increase the system throughput by up to 51.4%.
机译:在物联网(物联网)中,物理级跨技术通信(CTC)使IOT网关能够经济地与异构节点进行通信。然而,由于异构技术之间的带宽不对称,通常不充分利用许多剩余频率资源。在本文中没有修改硬件,我们考虑超级电源(ULP)和WiFi节点的共存,并提出ERFR-CTC,使IOT网关能够完全利用剩余频率资源而无需增加额外的成本。使用ERFR-CTC,网关只能通过单个WIFI网络接口卡(NIC)同时与ULP和WIFI节点通信,这不仅是经济而且非常有效的。特别地,ERFR-CTC使ULP节点能够正确地解调ULP信号而不被WiFi信号干扰。然后,我们开发理论模型以量化可用的剩余频率资源并分析系统吞吐量。最后,广泛的模拟验证了我们的模型非常准确,并表明ERFR-CTC可以将系统吞吐量提高51.4%。

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