论文标题

Terahertz通信的同时传输和反射表面(星形)

Simultaneously Transmitting and Reflecting Surface (STARS) for Terahertz Communications

论文作者

Wang, Zhaolin, Mu, Xidong, Xu, Jiaqi, Liu, Yuanwei

论文摘要

提出了同时传输和反射表面(恒星)辅助Terahertz(THZ)通信系统。提出了一种新型的功耗模型,该模型取决于恒星元素的类型和分辨率。通过共同优化基站(BS)(BS)的杂交边缘成形以及在恒星处的无源光束成形,在窄带和宽带THZ系统中最大化光谱效率(SE)和能源效率(EE)。 1)对于窄带系统,首先研究独立的移相恒星。所得的复杂关节优化问题使用双重分解将其分解为一系列子问题。提出了低复杂性元素的算法,以优化BS处的模拟波束和恒星处的无源光束。然后将提出的算法扩展到耦合相移恒星的情况。 2)对于宽带系统,BS和恒星处的空间宽带效应会导致由于梁拆分问题而导致显着的性能降解。为了解决这个问题,将真实的时间延迟器(TTD)引入传统的杂交边界结构中,以促进宽带波束成形。提出了一种基于准Newton方法的迭代算法来设计TTD的系数。最后,我们的数值结果证实了恒星优于常规可重构智能表面(RIS)。还可以揭示i)i)在窄带和宽带系统中,恒星的耦合相位耦合所引起的SE和EE仅略有性能损失,ii)常规混合式边界的性能可比性的SE性能可比性的SE性能,而EE的性能和EE的性能更高,并且与窄带系统中的全数数数数字相比,在宽带系统中不需要用于宽带系统的宽带频率,而tttd box tos tttd splite则是hybrid beam ybrid hybrid hybrid metrid hybrid metrid met rid smiting。

A simultaneously transmitting and reflecting surface (STARS) aided terahertz (THz) communication system is proposed. A novel power consumption model is proposed that depends on the type and resolution of the STARS elements. The spectral efficiency (SE) and energy efficiency (EE) are maximized in both narrowband and wideband THz systems by jointly optimizing the hybrid beamforming at the base station (BS) and the passive beamforming at the STARS. 1) For narrowband systems, independent phase-shift STARSs are investigated first. The resulting complex joint optimization problem is decoupled into a series of subproblems using penalty dual decomposition. Low-complexity element-wise algorithms are proposed to optimize the analog beamforming at the BS and the passive beamforming at the STARS. The proposed algorithm is then extended to the case of coupled phase-shift STARS. 2) For wideband systems, the spatial wideband effect at the BS and STARS leads to significant performance degradation due to the beam split issue. To address this, true time delayers (TTDs) are introduced into the conventional hybrid beamforming structure for facilitating wideband beamforming. An iterative algorithm based on the quasi-Newton method is proposed to design the coefficients of the TTDs. Finally, our numerical results confirm the superiority of the STARS over the conventional reconfigurable intelligent surface (RIS). It is also revealed that i) there is only a slight performance loss in terms of SE and EE caused by coupled phase shifts of the STARS in both narrowband and wideband systems, and ii) the conventional hybrid beamforming achieves comparable SE performance and much higher EE performance compared with the full-digital beamforming in narrowband systems but not in wideband systems, where the TTD-based hybrid beamforming is required for mitigating wideband beam split.

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