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Realizing Wireless Communication Through Software-Defined HyperSurface Environments

机译:通过软件定义的HyperSurface环境实现无线通信

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Wireless communication environments are unaware of the ongoing data exchange efforts within them. Moreover, their effect on the communication quality is intractable in all but the simplest cases. The present work proposes a new paradigm, where indoor scattering becomes software-defined and, subsequently, optimizable across wide frequency ranges. Moreover, the controlled scattering can surpass natural behavior, exemplary overriding Snell's law, reflecting waves towards any custom angle (including negative ones). Thus, path loss and multi-path fading effects can be controlled and mitigated. The core technology of this new paradigm are metasurfaces, planar artificial structures whose effect on impinging electromagnetic waves is fully defined by their macro-structure. The present study contributes the software-programmable wireless environment model, consisting of several HyperSurface tiles controlled by a central, environment configuration server. HyperSurfaces are a novel class of metasurfaces whose structure and, hence, electromagnetic behavior can be altered and controlled via a software interface. Multiple networked tiles coat indoor objects, allowing fine-grained, customizable reflection, absorption or polarization overall. A central server calculates and deploys the optimal electromagnetic interaction per tile, to the benefit of communicating devices. Realistic simulations using full 3D ray-tracing demonstrate the groundbreaking potential of the proposed approach in 2.4GHz and 60GHz frequencies.
机译:无线通信环境没有意识到其中正在进行的数据交换工作。而且,除了最简单的情况外,它们对通信质量的影响都是难以捉摸的。本工作提出了一种新的范式,室内散射由软件定义,并且随后可在较宽的频率范围内得到优化。此外,受控的散射可以超越自然行为,可以超越斯涅尔定律,将波反射到任何自定义角度(包括负角度)。因此,可以控制和减轻路径损耗和多路径衰落效应。这种新范式的核心技术是超表面,平面人造结构,它们对撞击电磁波的影响完全由它们的宏观结构来定义。本研究为软件可编程的无线环境模型做出了贡献,该模型由中央环境配置服务器控制的几个HyperSurface磁贴组成。 HyperSurfaces是一类新型的超表面,可以通过软件界面更改和控制其结构以及电磁行为。多个网状瓷砖覆盖室内物体,整体上可实现细粒度,可自定义的反射,吸收或偏振。中央服务器计算并部署每个图块的最佳电磁交互,以使通信设备受益。使用完整的3D射线跟踪的逼真的仿真证明了该方法在2.4GHz和60GHz频率下的突破性潜力。

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