论文标题
对安全混合空间调制的预编码和传输天线亚阵列选择
Precoding and Transmit Antenna Subarray Selection for Secure Hybrid Spatial Modulation
论文作者
论文摘要
空间调制(SM)是多输入 - 元素输出(MIMO)的一种特别重要的形式。与传统的MIMO不同,它同时使用调制符号和天线指数来携带信息。在本文中,为了避免完全数字SM的高成本和电路复杂性,我们主要考虑混合SM系统与混合预编码的发射机结构,结合了数字预编码器和模拟预码器。在这里,采用了部分连接的结构,每个射频链(RF)都连接到发射天线亚阵列(TAS)。在这样的系统中,我们研究了安全杂交预编码和传输天线亚阵列选择(TASS)方法的研究。提出了两种杂交预编码方法,称为通过梯度上升(MAX-ASR-GA)最大化近似保密率(SR),并通过交替的乘数(Max-ASR-ADMM)交替方向方法最大化近似SR,以提高SR性能。至于tass,首先提出了一种最大化近似SR(MAX-ASR)TASS方法的高性能方法。为了降低其高复杂性,提出了两种低复杂性Tass方法,即最大化特征值(Max-eV),并最大程度地提高信噪比与差异比率和人工噪声与信号 - 噪声 - 噪声 - 噪声比率(max-p-sinr-andnr)的乘积。仿真结果将表明,拟议的Max-ASR-GA和Max-ASR-ADMM混合预制器收获了现有方法的大量SR性能提高。对于tass,提出的三种方法max-asr,max-ev和max-p-sinr-andnr的性能要比现有泄漏方法更好。特别是,与Max-ASR相比,提出的Max-EV和Max-P-Sinr-ANSNR是低复杂性,而造成了少量性能损失。
Spatial modulation (SM) is a particularly important form of multiple-input-multiple-output (MIMO). Unlike traditional MIMO, it uses both modulation symbols and antenna indices to carry information. In this paper, to avoid the high cost and circuit complexity of fully-digital SM, we mainly consider the hybrid SM system with a hybrid precoding transmitter architecture, combining a digital precoder and an analog precoder. Here, the partially-connected structure is adopted with each radio frequency chain (RF) being connected to a transmit antenna subarray (TAS). In such a system, we made an investigation of secure hybrid precoding and transmit antenna subarray selection (TASS) methods. Two hybrid precoding methods, called maximizing the approximate secrecy rate (SR) via gradient ascent (Max-ASR-GA) and maximizing the approximate SR via alternating direction method of multipliers (Max-ASR-ADMM), are proposed to improve the SR performance. As for TASS, a high-performance method of maximizing the approximate SR (Max-ASR) TASS method is first presented. To reduce its high complexity, two low-complexity TASS methods, namely maximizing the eigenvalue (Max-EV) and maximizing the product of signal-to-interference-plus-noise ratio and artificial noise-to-signal-plus-noise ratio (Max-P-SINR-ANSNR), are proposed. Simulation results will demonstrate that the proposed Max-ASR-GA and Max-ASR-ADMM hybrid precoders harvest substantial SR performance gains over existing method. For TASS, the proposed three methods Max-ASR, Max-EV, and Max-P-SINR-ANSNR perform better than existing leakage method. Particularly, the proposed Max-EV and Max-P-SINR-ANSNR is low-complexity at the expense of a little performance loss compared with Max-ASR.