In this paper, we develop a comprehensive theoretical framework for analyzing the performance of reconfigurable intelligent surfaces (RISs)-assisted communication systems over generalized fading channels and in the presence of phase noise. To this end, we propose the Fox's H model as a unified fading distribution for a large number of widely used generalized fading channels. In particular, we derive a unified analytical framework for computing the outage probability and for estimating the achievable diversity order of RIS-aided systems in the presence of phase shifts that either are optimally configured or are impaired by phase noise. The resulting expressions are general, as they hold for an arbitrary number of reflecting elements, and various channel fading and phase noise distributions. As far as the diversity order is concerned, notably, we introduce an asymptotic analytical framework for determining the diversity order in the absence of phase noise, as well as sufficient conditions based on upper bounds and lower bounds for ensuring that RIS-assisted systems achieve the full diversity order in the presence of phase noise. More specifically, if the absolute difference between pairs of phase errors is less than $\pi/2$, RIS-assisted communications achieve the full diversity order over independent fading channels, even in the presence of phase noise. The theoretical frameworks and findings are validated with the aid of Monte Carlo simulations.
翻译:在本文中,我们制定了一个全面理论框架,用于分析可重新配置的智能表面(RIS)辅助通信系统在普遍消退的频道和有阶段噪音的情况下的性能;为此,我们提议福克斯H模型作为大量广泛使用的普遍消退的频道的统一消退分布;特别是,我们提出了一个统一分析框架,用于计算流出概率和估计经RIS协助的系统在有阶段性转变的情况下可实现的多样性顺序,这种转变是最佳配置的,或受到阶段噪音的破坏;由此产生的表述是一般性的,因为它们含有任意数量的反射元素,以及各种频道消退和阶段噪音分布;就多样性秩序而言,我们特别采用了一个无源分析框架,以便在没有阶段噪音的情况下确定多样性秩序,以及基于上限和较低界限的充足条件,以确保由RIS协助的系统在有阶段噪音的情况下实现完全的多样化秩序;更具体地说,如果阶段性错误的绝对差异甚至低于$pi/2,则具有各种频道的消散和阶段性分布;就多样性而言,我们提出了一个无源性分析框架,在模拟阶段噪音阶段性分析阶段性分析阶段内实现完全的多样性。