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Propagation Modeling Results for Narrow-beam Undersea Laser Communications

机译:窄光束海底激光通信的传播建模结果

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Communication links through ocean waters are challenging due to undersea propagation physics. Undersea optical communications at blue or green wavelengths can achieve high data rates (megabit- to gigabit-per-second class links) despite the challenging undersea medium. Absorption and scattering in ocean waters attenuate optical signals and distort the waveform through dense multipath. The exponential propagation loss and the temporal spread due to multipath limit the achievable link distance and data rate. In this paper, we describe the Monte Carlo modeling of the undersea scattering and absorption channel. We model photon signal attenuation levels, spatial photon distributions, time of arrival statistics, and angle of arrival statistics for a variety of lasercom scenarios through both clear and turbid water environments. Modeling results inform the design options for an undersea optical communication system, particularly illustrating the advantages of narrow-beam lasers compared to wide beam methods (e.g. LED sources). The modeled pupil plane and focal plane photon arrival distributions enable beam tracking techniques for robust pointing solutions, even in highly scattering harbor waters. Laser communication with collimated beams maximizes the photon transfer through the scattering medium and enables spatial and temporal filters to minimize waveform distortion and background interference.
机译:由于海底传播物理,通过海水的通信链接具有挑战性。尽管具有挑战性的海底介质,但蓝色或绿色波长的海底光通信仍可实现高数据速率(每秒兆比特至千兆比特级链路)。海水中的吸收和散射会衰减光信号,并通过密集的多径使波形失真。由于多径导致的指数传播损耗和时间扩展限制了可实现的链路距离和数据速率。在本文中,我们描述了海底散射和吸收通道的蒙特卡洛模型。我们通过清澈和浑浊的水环境,对各种lasercom场景中的光子信号衰减水平,空间光子分布,到达时间统计信息和到达角度统计信息进行建模。建模结果为海底光通信系统提供了设计选择,特别是说明了与宽光束方法(例如LED光源)相比,窄光束激光器的优势。建模的瞳孔平面和焦平面光子到达分布使光束跟踪技术可用于鲁棒的指向解决方案,即使在高度分散的港口水域中也是如此。与准直光束的激光通信可最大程度地提高光子通过散射介质的传输,并使空间和时间滤波器能够将波形失真和背景干扰降至最低。

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