Towards Terabit LiFi Networking

A. Qidan, T. El-Gorashi, J. Elmirghani
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引用次数: 8

Abstract

: Light Fidelity (Li-Fi) is a networked version of optical wireless communication (OWC), which is a strong candidate to fulfill the unprecedented increase in user-traffic expected in the near future. In OWC, a high number of optical access points (APs) is usually deployed on the ceiling of an indoor environment to serve multiple users with different demands. Despite the high data rates of OWC networks, due to the use of the optical band for data transmission, they cannot replace current radio frequency (RF) wireless networks where OWC has several issues including the small converge area of an optical AP, the lack of uplink transmission and high blockage probabilities. However, OWC has the potential to support the requirements in the next generation (6G) of wireless communications. In this context, heterogeneous optical/RF networks can be considered to overcome the limitations of OWC and RF systems, while providing a high quality of service in terms of achievable data rates and coverage. In this work, infrared lasers, vertical-cavity surface-emitting(VCSEL) lasers, are used as the key elements of optical APs for serving multiple users. Then, transmission schemes such as zero forcing (ZF) and blind interference alignment (BIA) are introduced to manage multi-user interference and maximize the sum rate of users. Moreover, a WiFi system is considered to provide uplink transmission and serve users that experience a low signal to noise ratio (SNR) from the optical system. To use the resources of the heterogeneous optical/RF network efficiently, we derive a utility-based objective function that aims to maximize the overall sum rate of the network. This complex problem can be solved using distributed algorithms to provide sub-optimal solutions with low complexity. The results show that the sum rate of the proposed hybrid network is higher than the standalone optical network, using different transmission schemes.
迈向太比特LiFi网络
光保真(Li-Fi)是光无线通信(OWC)的网络版本,在不久的将来有望满足空前增长的用户流量。在OWC中,通常在室内环境的天花板上部署大量的光接入点(ap),以服务具有不同需求的多个用户。尽管OWC网络的数据速率很高,但由于使用光波段进行数据传输,它们无法取代当前的射频(RF)无线网络,其中OWC存在几个问题,包括光AP的收敛区域小,缺乏上行链路传输和高阻塞概率。然而,OWC具有支持下一代(6G)无线通信需求的潜力。在这种情况下,异构光/射频网络可以考虑克服OWC和射频系统的局限性,同时在可实现的数据速率和覆盖范围方面提供高质量的服务。在这项工作中,红外激光器,垂直腔面发射(VCSEL)激光器,被用作光学ap服务多用户的关键元件。然后,引入零强迫(ZF)和盲干扰对准(BIA)等传输方案来管理多用户干扰,最大化用户和速率。此外,WiFi系统被认为提供上行传输,并服务于光系统的低信噪比(SNR)用户。为了有效地利用异构光/射频网络的资源,我们推导了一个基于效用的目标函数,旨在最大化网络的总体和速率。这种复杂的问题可以使用分布式算法来解决,以提供低复杂度的次优解。结果表明,在不同的传输方案下,所提出的混合光网络的和速率都高于独立光网络。
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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