论文标题

MIMO全双工系统中的同时收获和信息传输:基于机器学习的设计

Simultaneous Energy Harvesting and Information Transmission in a MIMO Full-Duplex System: A Machine Learning-Based Design

论文作者

Al-Eryani, Yasser, Akrout, Mohamed, Hossain, Ekram

论文摘要

我们提出了一个基于多输入多输出(MIMO)的全双工(FD)方案,该方案使无线设备能够使用相同的时间频率资源同时传输信息并收获能量。在此方案中,对于设置的MIMO,能量传输设备同时从能量收集设备接收信息。此外,由FD运行方式引起的能量收集设备的自我干扰(SI)被用作设备收获的所需功率信号。为了在两个设备上实现友好的天线选择和MIMO预编码,我们提出了两种方法:(i)基于放松的亚最佳方法,以及(ii)一种基于杂种的深钢筋学习(DRL)基于的方法,特别是深层确定性的策略梯度(DDPG) - double Q-Network(DDPG) - 深度Q-NETWORK(DDPG)。最后,我们研究了在两种实施方法下提出的系统的性能,并将其与常规的基于基于时间切换的同时无线信息和电力传输(SWIPT)方法进行比较。 研究结果表明,与基于时间切换的旋转相比,提出的系统可显着提高频谱效率。特别是,基于DRL的方法提供了最高的光谱效率。此外,数值结果表明,对于已考虑的系统设置,每个设备中的天线数量应超过三个,以减轻自身解干到可接受的水平。

We propose a multiple-input multiple-output (MIMO)-based full-duplex (FD) scheme that enables wireless devices to simultaneously transmit information and harvest energy using the same time-frequency resources. In this scheme, for a MIMO point-to-point set up, the energy transmitting device simultaneously receives information from the energy harvesting device. Furthermore, the self-interference (SI) at the energy harvesting device caused by the FD mode of operation is utilized as a desired power signal to be harvested by the device. For implementation-friendly antenna selection and MIMO precoding at both the devices, we propose two methods: (i) a sub-optimal method based on relaxation, and (ii) a hybrid deep reinforcement learning (DRL)-based method, specifically, a deep deterministic policy gradient (DDPG)-deep double Q-network (DDQN) method. Finally, we study the performance of the proposed system under the two implementation methods and compare it with that of the conventional time switching-based simultaneous wireless information and power transfer (SWIPT) method. Findings show that the proposed system gives a significant improvement in spectral efficiency compared to the time switching-based SWIPT. In particular, the DRL-based method provides the highest spectral efficiency. Furthermore, numerical results show that, for the considered system set up, the number of antennas in each device should exceed three to mitigate self-interference to an acceptable level.

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