论文标题

频道建模和错误性能调查基于读取灯的机上LIFI

Channel Modelling and Error Performance Investigation for Reading Lights Based In-flight LiFi

论文作者

Yesilkaya, Anil, Haas, Harald

论文摘要

新一代的通信技术不断被推动以满足各种用户需求,例如高数据速率,低功耗,非常低的延迟,非常高的可靠性和广泛的可用性。为了满足所有这些要求,5G无线电访问技术已扩展到各种新服务。但是,符合5G视觉的飞机机舱内基于RF的无线通信的应用程序数量有限。船上无线通信中的潜在干扰和安全问题构成了重大部署挑战。通过将每个阅读灯转换为光学无线AP,LIFI可以在密集的机舱环境中提供无缝的板载连接,而不会干扰。此外,可用的阅读灯的利用允许具有高能量和光谱效率的相对简单,具有成本效益的部署。为了成功实施航空机舱LIFI应用,需要全面的光通道表征。在本文中,我们提出了一种新型的MCRT通道建模技术,以捕获飞行中LIFI链接的细节。因此,开发了一个现实的通道模拟器,该模拟器将考虑到机舱模型,内部元素和基于测量的光源,接收器,表面材料特性。还研究了操作波长,机舱模型准确性和用户终端迁移率对光通道条件的影响。作为最后一步,使用获得的机上LIFI通道来评估车载DCO-OFDM性能。数值结果表明,移动终端和准确的飞机机舱建模的位置分别为12和2 dB的性能差异。

The new generation of communication technologies are constantly being pushed to meet a diverse range of user requirements such as high data rate, low power consumption, very low latency, very high reliability and broad availability. To address all these demands, 5G radio access technologies have been extended into a wide range of new services. However, there are still only a limited number of applications for RF based wireless communications inside aircraft cabins that comply with the 5G vision. Potential interference and safety issues in on-board wireless communications pose significant deployment challenges. By transforming each reading light into an optical wireless AP, LiFi, could provide seamless on-board connectivity in dense cabin environments without RF interference. Furthermore, the utilization of available reading lights allows for a relatively simple, cost-effective deployment with the high energy and spectral efficiency. To successfully implement the aeronautical cabin LiFi applications, comprehensive optical channel characterization is required. In this paper, we propose a novel MCRT channel modelling technique to capture the details of in-flight LiFi links. Accordingly, a realistic channel simulator, which takes the cabin models, interior elements and measurement based optical source, receiver, surface material characteristics into account is developed. The effect of the operation wavelength, cabin model accuracy and user terminal mobility on the optical channel conditions is also investigated. As a final step, the on-board DCO-OFDM performance is evaluated by using obtained in-flight LiFi channels. Numerical results show that the location of a mobile terminal and accurate aircraft cabin modelling yield as much as 12 and 2 dB performance difference, respectively.

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