Full duplex (FD) systems suffer from very high hardware cost and high power consumption to mitigate the self-interference (SI) in the analog domain. Moreover, in millimeter wave (mmWave) they rely on hybrid beamforming (HYBF) as a signal processing tool to partially deal with the SI, which presents many drawback, e.g., high insertion loss, high power consumption and high computational complexity for its configuration. This article proposes the use of near-field (NF-) IRSs for FD systems with the objective to solve the aforementioned issues cost-efficiently. Namely, we propose to truncate the analog stage of the mmWave FD systems and assist them with an NF-IRS, to simultaneously and smartly control the uplink (DL) and downlink (DL) channels, while assisting in shaping the SI channel: this to obtain very strong passive SI cancellation. A novel joint active and passive beamforming design for the weighted sum-rate (WSR) maximization of a NF-IRS-assisted mmWave point-to-point FD system is presented. Results show that the proposed solution fully reaps the benefits of the IRSs only when they operate in the NF, which leads to considerably higher gains compared to the conventional massive MIMO (mMIMO) mmWave FD and half duplex (HD) systems.
翻译:此外,在毫米波(mmWave)中,它们依赖混合波形(HYBF)作为信号处理工具来部分处理SIS,这带来许多缺点,例如,高插入损失、高电耗和其配置的计算复杂度。本篇文章提议对FD系统使用近场(NF-IRS)IRS, 目的是以高成本效益的方式解决上述问题。也就是说,我们提议对毫米WaveFD系统的模拟阶段进行疏松,协助它们使用NF-IRS,同时和明智地控制NF-IRS(DL)和下链接(DL)渠道,同时帮助塑造SI频道:这是非常强烈地被动地取消SI。对于加权总和率(WSR)来说,为NFS-IRS辅助的毫米Wave点到MFD系统进行新的联合式和被动式设计,目的是最大限度地实现NFS-RS系统的模拟阶段化阶段,结果显示,相对于IMFM系统的大规模收益,拟议的RFM系统将完全恢复到IMFM系统。