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Distributed Multiuser MIMO for LiFi in Industrial Wireless Applications

机译:工业无线应用中的利用分布式多用户MIMO

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We present a concept for networked optical wireless communications, also denoted as LiFi, to meet the requirements of industrial wireless applications. These are primarily mobility support with moderate data rates per device, reliable real-time communication, and integrated positioning. We describe a distributed multiuser multiple-input multiple-output architecture, serving mobile devices via an optical wireless infrastructure. The system consists of a central unit, being connected to a number of distributed optical frontends covering a larger area. Our main contribution is a medium access control protocol based on space division multiple access. Evaluation results demonstrate the advantages of joint transmission from adjacent optical frontends and the dynamic switching between spatial diversity and multiplexing. The relevance of spatial multiplexing becomes obvious through channel measurements in an indoor scenario. Moreover, we highlight a low-power physical layer based on on-off-keying for battery-powered mobile devices. Our architecture can easily integrate positioning by simultaneously measuring the time-of-flight between multiple optical frontends and the mobile device. We highlight the use of plastic optical fiber as an analog fronthaul technology and discuss the integration with other networks. The main functions described in this paper will be supported by the upcoming IEEE Std 802.15.13.
机译:我们为网络化光无线通信提供了一个概念,也表示为Lifi,以满足工业无线应用的要求。这些主要是移动性支持每个设备的中等数据速率,实时通信和集成定位。我们描述了一种分布式多用户多输入多输出架构,通过光学无线基础设施提供移动设备。系统由中央单元组成,连接到覆盖更大区域的多个分布式光学前端。我们的主要贡献是基于空间划分多访问的中等访问控制协议。评估结果证明了与相邻光学前端的关节传输和空间分集之间的动态切换的优点。空间复用的相关性通过室内场景中的信道测量来实现显而易见。此外,我们基于电池供电的移动设备的开断键来突出显示低功耗物理层。我们的架构可以通过同时测量多个光学前端和移动设备之间的飞行时间轻松集成定位。我们突出了塑料光纤作为模拟Fronthaul技术的使用,并与其他网络讨论集成。本文描述的主要功能将由即将到来的IEEE STD 802.15.13支持。

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