Dual-Polarized Stacked Metasurface Transceiver Design With Rate Splitting for Next-Generation Wireless Networks

Yifu Sun;Kang An;Miao Yu;Yihua Hu;Yonggang Zhu;Zhi Lin;Ming Xiao;Naofal Al-Dhahir;Dusit Niyato;Jiangzhou Wang
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Abstract

To achieve stringent performance requirements in next generation wireless networks, such as ultra-high data rates, ubiquitous connectivity, and extremely high reliability, this paper proposes a radically novel rate splitting assisted dual-polarized stacked metasurface (RS-DPSM) transceiver architecture. In this architecture, a multi-layer dual-polarized metasurface is stacked at the active antennas and its two inherent polarizations are implemented to enable RS’s common and private messages in parallel. In sharp contrast to the conventional multiple-input multiple-output (MIMO) and metasurface-based transceiver designs, our proposed transceiver is capable of enhancing the channel capacity and introducing multi-dimensional degrees of freedom (DoFs) in the power, spatial, and polarization domains, thus enabling multi-functional, broad-spectrum, and all-time/domain/space communications without requiring massive radio-frequency (RF) chains. In addition, we derive new analytical expressions for the upper bounds of RS-DPSM transceiver’s channel capacity and ergodic sum rate, and provide some key insights. To highlight its potential benefits, we apply the proposed RS-DPSM transceiver to anti-jamming communications, and formulate a generalized sum rate maximization problem under the jammer’s imperfect angular channel state information and unknown cross-polarization discrimination. To enable an efficient resource management under the above practical conditions, we present a low-complexity optimization framework by leveraging the discretization method, properties of the quadratic function, reduced-majorization-minimization algorithm, and block successive upper-bound minimization, which admit the semi-closed-form solutions. Finally, our numerical simulations verify the superiority of our proposed transceiver architecture and optimization framework over key benchmarks.
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新一代无线网络中速率分离的双极化堆叠超表面收发器设计
为了满足下一代无线网络对超高数据速率、无所不在连接和极高可靠性等性能的严格要求,本文提出了一种全新的速率分裂辅助双极化堆叠超表面(RS-DPSM)收发器架构。在这种结构中,多层双极化超表面叠加在有源天线上,并实现其固有的两个极化,以使RS的公共和私有消息并行。与传统的多输入多输出(MIMO)和基于超表面的收发器设计形成鲜明对比,我们提出的收发器能够增强信道容量,并在功率、空间和极化域中引入多维自由度(dfs),从而实现多功能、广谱和全天候/域/空间通信,而无需大量射频(RF)链。此外,我们导出了RS-DPSM收发器信道容量和遍历和速率上界的新解析表达式,并提供了一些关键的见解。为了突出其潜在的优势,我们将所提出的RS-DPSM收发器应用于抗干扰通信中,并提出了在干扰机角度信道状态信息不完全和交极化鉴别未知情况下的广义和速率最大化问题。为了在上述实际条件下实现有效的资源管理,我们利用离散化方法、二次函数的性质、最小化最小化算法和块连续上界最小化算法,提出了一个低复杂度的优化框架,该框架允许半封闭形式的解。最后,我们的数值模拟验证了我们提出的收发器架构和优化框架在关键基准测试中的优越性。
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