Cogalan T, Haas H, Panayirci E
University of Edinburgh, Li-Fi R&D Centre, Edinburgh EH9 3JL, UK.
Kadir Has University, Department of Electrical and Electronics Engineering, Istanbul 34083, Turkey.
Philos Trans A Math Phys Eng Sci. 2020 Apr 17;378(2169):20190195. doi: 10.1098/rsta.2019.0195. Epub 2020 Mar 2.
Visible light communication (VLC) systems are inherently signal-to-noise ratio (SNR) limited due to link budget constraints. One favourable method to overcome this limitation is to focus on the pre-log factors of the channel capacity. Multiple-input multiple-output (MIMO) techniques are therefore a promising avenue of research. However, inter-channel interference in MIMO limits the achievable capacity. Spatial modulation (SM) avoids this limitation. Furthermore, the performance of MIMO systems in VLC is limited by the similarities among spatial channels. This limitation becomes particularly severe in intensity modulation/direct detection (IM/DD) systems because of the lack of phase information. The motivation of this paper is to propose a system that results in a multi-channel transmission system that enables reliable multi-user optical MIMO SM transmission without the need for a precoder, power allocation algorithm or additional optics at the receiver. A general bit error performance model for the SM system is developed for an arbitrary number of light-emitting diodes (LEDs) in conjunction with pulse amplitude modulation. Based on this model, an LED array structure is designed to result in spatially separated multiple channels by manipulating the transmitter geometry. This article is part of the theme issue 'Optical wireless communication'.
由于链路预算限制,可见光通信(VLC)系统本质上受到信噪比(SNR)的限制。克服这一限制的一种有利方法是关注信道容量的预对数因子。因此,多输入多输出(MIMO)技术是一个很有前景的研究途径。然而,MIMO中的信道间干扰限制了可实现的容量。空间调制(SM)避免了这一限制。此外,VLC中MIMO系统的性能受到空间信道之间相似性的限制。由于缺乏相位信息,这种限制在强度调制/直接检测(IM/DD)系统中尤为严重。本文的动机是提出一种系统,该系统能形成一个多信道传输系统,实现可靠的多用户光学MIMO SM传输,而无需预编码器、功率分配算法或在接收器处使用额外的光学器件。针对任意数量的发光二极管(LED)并结合脉冲幅度调制,开发了一种用于SM系统的通用误码性能模型。基于该模型,通过操纵发射器几何结构来设计LED阵列结构,以形成空间分离的多个信道。本文是主题专辑“光无线通信”的一部分。