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Optical Wireless Applications - A Solution to Ease the Wireless Airwaves Spectrum Crunch

机译:光学无线应用-缓解无线电波频谱紧缩的解决方案

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Demands by the communications industry for greater and greater bandwidth push the capability of conventional wireless technology. Part of the Radio Spectrum that is suitable for mobility is very limited. Higher frequency waves above 30 GHz tend to travel only a few miles or less and generally do not penetrate solid materials very well. This offers a sustainable solution for the current Spectrum Crunch in the lower microwave bands. One mission of this paper is to demonstrate practical and usable networks that can select a self-limiting link distance, allowing spectrum reuse. The motivation for operators of such bands to actually choose to self-limit is that by doing so, they improve the signal-to-noise against competing users at a lower cost than trying to overcome interference. These characteristics of wave propagation are not necessarily disadvantageous as they enable more densely packed communications links. Thus, high frequencies can provide very efficient spectrum utilization through "selective spectrum reuse", and naturally increase the security of transmissions. Optical systems and networks offer a far greater bandwidth. This means new devices and systems have to be developed. Semiconductor Light Emitting Diode (LED) is considered to be the future primary lighting source for buildings, automobiles and aircrafts. LED provides higher energy efficiency compared to incandescent and fluorescent light sources and it will play a major role in the global reduction of carbon dioxide emissions, as a consequence of the significant energy savings. Lasers are also under investigation for similar applications. These core devices have the potential to revolutionize how we use light, including not only for illumination, but as well; for communications, sensing, navigation, positioning, surveillance, and imaging.
机译:通信行业对越来越大的带宽的需求推动了常规无线技术的能力。适用于移动性的无线电频谱部分非常有限。高于30 GHz的更高频率的波往往仅传播几英里或更短,并且通常不会很好地穿透固体材料。这为当前较低微波频段的频谱紧缩提供了可持续的解决方案。本文的一个任务是演示实用且可用的网络,这些网络可以选择自限链路距离,从而允许频谱重用。这种频段的运营商实际选择自我限制的动机是,通过这样做,他们以比试图克服干扰更低的成本提高了对竞争用户的信噪比。波传播的这些特征不一定不利,因为它们使通信链路更密集。因此,高频可以通过“选择性频谱复用”提供非常有效的频谱利用,并自然提高传输的安全性。光学系统和网络提供了更大的带宽。这意味着必须开发新的设备和系统。半导体发光二极管(LED)被认为是建筑物,汽车和飞机的未来主要光源。与白炽灯和荧光灯光源相比,LED提供更高的能源效率,由于节省了大量能源,LED将在全球减少二氧化碳排放量中发挥重要作用。激光器也正在研究类似的应用。这些核心设备有可能改变我们使用光的方式,不仅包括照明,还包括照明。用于通讯,传感,导航,定位,监视和成像。

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