On the capacity of volume limited current distributions

S. Krishnamurthy, B. Hughes
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Abstract

The capacity of MIMO channel is related to the channel statistics and this in turn related to the choice of antennas and the channel propagation environment. Recently, there has been some work on the evaluation of antenna independent spatial capacity. This analysis considers a multiple-antenna system in which unlimited number of antenna array elements are available, but there is a restriction on the volume they can occupy. The problem is viewed in electro-magnetic (EM) theory setting where a spatially continuous current distribution radiates into free space, with a receiver in the surrounding space measuring the radiated EM field. The advantage the aforementioned approach is that it provides an antenna independent analysis and this forms and upper bound on the achievable capacity with finite number of antennas. However, in computing the capacity, simplifying assumptions that reduce the vectorial EM problem to a scalar wave problem is made and heuristic arguments are used to extrapolate the results to the vectorial case. The impact of this on the results is not readily apparent. In this work, we consider the complete vector EM problem for a system comprising of a transmitter restricted to spherical volume and a receiver, which is a concentric spherical surface in the far-field, and derive some bounds on capacity. We first develop some tools essential for calculation the capacity of the system and then we compute the singular values of this channel in closed form. The main results of this paper are as follows: 1) the capacity scaling law in the high signal-to-noise ratio (SNR) regime is given by (c2 + c1 log SNR) log SNR + 0(log SNR), where c1 is linear and c2 quadratic in the radius of the transmitting volume; and 2) the received power scales as a cubic function of the radius of the transmitting spherical volume
关于容量的体积限制电流分布
MIMO信道的容量与信道统计量有关,而信道统计量又与天线的选择和信道传播环境有关。近年来,人们对天线独立空间容量的评估进行了一些研究。本分析考虑了一个多天线系统,其中天线阵列元素的数量是无限的,但它们可以占用的体积是有限制的。该问题是在电磁(EM)理论设置中考虑的,其中空间连续的电流分布辐射到自由空间,周围空间中的接收器测量辐射的电磁场。上述方法的优点是它提供了与天线无关的分析,这形成了有限天线数量下可实现容量的上界。然而,在计算容量时,提出了简化假设,将矢量电磁问题简化为标量波问题,并使用启发式论证将结果外推到矢量情况。这对结果的影响并不明显。本文研究了由球形体积的发射机和远场为同心球面的接收机组成的系统的完全矢量电磁问题,并推导了容量的一些界。我们首先开发了一些计算系统容量的必要工具,然后以封闭形式计算该通道的奇异值。本文的主要研究结果如下:1)高信噪比下的容量缩放规律为(c2 + c1 log SNR) log SNR + 0(log SNR),其中c1为线性,c2为传输体积半径的二次函数;(2)接收功率是发射球面体积半径的三次函数
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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