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Energy-efficient modulation and physical layer design for low terahertz band communication channel in 5G femtocell Internet of Things

机译:5G毫微微小区物联网中低太赫兹频段通信通道的节能调制和物理层设计

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High throughput capability of the terahertz band (0.3-10 THz) wireless communications is expected to be utilized by the fifth generation of mobile telecommunication systems and enable a plethora of new applications. Supporting devices will transfer large amounts of data in both directions, causing high energy consumption by the electronic circuitries of the equipment in use. Therefore, physical layer for these systems must be designed carefully in order to reduce energy consumption per bit. In this paper, the best performing modulation scheme and hardware parameters that minimize the energy consumption without affecting the system throughput are determined. THz band device technologies are outlined and a complete survey of the state-of-the-art low-THz band circuit blocks which are suitable for mass market production is given. It is shown that for short-range communications, M-ary quadrature amplitude modulation is the most energy-efficient technique that can lead up to 90% reduction in consumed energy. Moreover, optimal transceiver parameters which can be used to further minimize the energy consumption of the THz band system are examined. (C) 2018 Elsevier B.V. All rights reserved.
机译:第五代移动电信系统有望利用太赫兹频段(0.3-10 THz)无线通信的高吞吐能力,并能够实现许多新应用。支持设备将在两个方向上传输大量数据,从而导致所用设备的电子电路消耗大量能量。因此,必须认真设计这些系统的物理层,以减少每位的能耗。在本文中,确定了在不影响系统吞吐量的情况下将能耗降至最低的最佳性能的调制方案和硬件参数。概述了太赫兹频带设备技术,并给出了适用于大规模市场生产的最新低太赫兹频带电路块的完整概述。结果表明,对于短距离通信,Mary正交幅度调制是最节能的技术,可以使能耗降低多达90%。此外,检查了可用于进一步最小化THz频带系统的能量消耗的最佳收发器参数。 (C)2018 Elsevier B.V.保留所有权利。

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