Spatial Scattering Modulation With Multipath Component Aggregation

IF 5.3 2区 计算机科学 Q1 TELECOMMUNICATIONS
Jiliang Zhang;Wei Liu;Alan Tennant;Weijie Qi;Jiming Chen;Jie Zhang
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Abstract

In this paper, a multipath component aggregation (MCA) mechanism is introduced for spatial scattering modulation (SSM) to overcome the limitation in conventional SSM that the transmit antenna array steers the beam to a single multipath (MP) component at each instance. In the proposed MCA-SSM system, information bits are divided into two streams. One is mapped to an amplitude-phase-modulation (APM) constellation symbol, and the other is mapped to a beam vector symbol which steers multiple beams to selected strongest MP components via an MCA matrix. In comparison with the conventional SSM system, the proposed MCA-SSM enhances the bit error performance by avoiding both low receiving power due to steering the beam to a single weak MP component and inter-MP interference due to MP components with close values of angle of arrival (AoA) or angle of departure (AoD). For the proposed MCA-SSM, a union upper bound (UUB) on the average bit error probability (ABEP) with any MCA matrix is analytically derived and validated via Monte Carlo simulations. Based on the UUB, the MCA matrix is analytically optimized to minimize the ABEP of the MCA-SSM. Finally, numerical experiments are carried out, which show that the proposed MCA-SSM system remarkably outperforms the state-of-the-art SSM system in terms of ABEP under a typical indoor environment.
空间散射调制与多径分量聚合
本文为空间散射调制(SSM)引入了一种多径分量聚合(MCA)机制,以克服传统 SSM 中发射天线阵列每次都将波束导向单一多径(MP)分量的限制。在拟议的 MCA-SSM 系统中,信息比特被分为两个流。一个映射到振幅相位调制(APM)星座符号,另一个映射到波束矢量符号,后者通过 MCA 矩阵将多个波束导向选定的最强 MP 分量。与传统的 SSM 系统相比,拟议的 MCA-SSM 可避免因将波束导向单个弱 MP 分量而导致的低接收功率,以及因到达角(AoA)或离去角(AoD)值接近的 MP 分量而导致的 MP 间干扰,从而提高误码率性能。对于所提出的 MCA-SSM,分析得出了任何 MCA 矩阵的平均比特误差概率 (ABEP) 的联合上界 (UUB),并通过蒙特卡罗模拟进行了验证。根据 UUB,对 MCA 矩阵进行分析优化,以最小化 MCA-SSM 的 ABEP。最后,进行了数值实验,结果表明,在典型的室内环境下,所提出的 MCA-SSM 系统在 ABEP 方面明显优于最先进的 SSM 系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
IEEE Transactions on Green Communications and Networking
IEEE Transactions on Green Communications and Networking Computer Science-Computer Networks and Communications
CiteScore
9.30
自引率
6.20%
发文量
181
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