论文标题
模块化极限阵列通信的近场建模和性能分析
Near-Field Modelling and Performance Analysis of Modular Extremely Large-Scale Array Communications
论文作者
论文摘要
这封信研究了一种新的阵列架构,称为模块化极大的阵列(XL-Array),以模块化的方式排列了大量阵列元素。每个模块由中等数量的数组元素组成,并且模块与模块间空间定期布置,通常比信号波长大得多,以适应实际的安装结构。我们通过考虑非均匀的球形波(NUSW)特性,研究模块化XL阵列通信的数学建模并进行性能分析,该特征比常规均匀的平面波(UPW)假设更合适。根据模块化XL-array的几何形状(包括总阵列大小和模块分离)以及用户的位置,根据最大信噪比(SNR)得出了封闭形式的表达式。渐近SNR缩放定律被揭示,因为模块化阵列的大小输入无穷大。此外,我们表明,开发的建模和性能分析包括与特殊情况相交的XL阵列或远场UPW假设的现有结果。数值结果证明了近场建模对模块化XL阵列通信的重要性,因为它导致与常规远场UPW建模的结果显着不同。
This letter studies a new array architecture, termed as modular extremely large-scale array (XL-array), for which a large number of array elements are arranged in a modular manner. Each module consists of a moderate number of array elements and the modules are regularly arranged with the inter-module space typically much larger than signal wavelength to cater to the actual mounting structure. We study the mathematical modelling and conduct the performance analysis for modular XL-array communications, by considering the non-uniform spherical wave (NUSW) characteristic that is more suitable than the conventional uniform plane wave (UPW) assumption for physically large arrays. A closed-form expression is derived for the maximum signal-to-noise ratio (SNR) in terms of the geometries of the modular XL-array, including the total array size and module separation, as well as the user's location. The asymptotic SNR scaling law is revealed as the size of modular array goes to infinity. Furthermore, we show that the developed modelling and performance analysis include the existing results for collocated XL-array or far-field UPW assumption as special cases. Numerical results demonstrate the importance of near-field modelling for modular XL-array communications since it leads to significantly different results from the conventional far-field UPW modelling.