研究随季节天气变化的自由空间高带宽数据通信链路的时序抖动

Vijit Bedi, V. Nikulin, Ka. Soderberg, L. Wessing, P. Ricci, Din Islam, William F. Lipe, Robert J. Dimeo, Christine A. Mathers, John W. Heinig
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引用次数: 0

摘要

自由空间光通信(FSOC)具有无与伦比的高带宽和安全通信潜力,同时最小化尺寸、重量和功耗(SWAP)。然而,大气闪烁对高带宽信号的影响通过降低OSNR(光信噪比)和q因子限制了数据链路的性能。导致通信信号质量恶化的一个关键因素是时序抖动。抖动可能是由于数据信号的时序,也可能是由于数据位流在自由空间中传播时的幅度变化。随着数据带宽的增加,这些影响变得更加显著。在较低的数据速率信号中,一个小的时间偏差是可以容忍的或高于接收器灵敏度的,但在较高的数据速率下,随着抖动的增加,它就变成了不可容忍的信号。总抖动(TJ)可以进一步分解为确定性抖动(DJ)和随机抖动(RJ)。这些可能有助于理解信号行为和FSOC或任何数据通信链路退化的根本原因。因此,为了使系统达到期望的BER(误码率和误码率),通过研究时序抖动的每个子类DJ和RJ来深入分析抖动将非常有帮助,并增强链路的鲁棒性。在本文中,我们报告了在1550nm传播的10gbps FSOC数据链路的深入抖动分析。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Investigating timing jitter on a free-space high-bandwidth data communication link with seasonal weather variations
Free-space optical communication (FSOC) holds unmatched potential for high bandwidth and secure communications while minimizing size, weight, and power (SWAP). However, the effects of atmospheric scintillations on high bandwidth signals limits data link performance by degrading OSNR (Optical signal-to-noise ratio) and Q-factor. A critical component due to which a communication signal quality deteriorates is timing jitter. Jitter may be due to timing of the data signal or it may be due to the amplitude variations in the data bit stream as it propagates through free-space. As the data bandwidth increases, these effects become more significant. A small-time deviation in a lower data rate signal which would be tolerable or be above a receiver sensitivity, turns into an intolerable signal at higher data rates as jitter increases. The total jitter (TJ) can be further broken down to deterministic jitter (DJ) and random jitter (RJ). These may help understand signal behavior and the root cause of degradation in a FSOC or any data communication link. Thus, for a system to achieve desired BER (bit-error-rate and bit-error-ratio), an in-depth analysis of jitter by investigating each of the subclass of both timing jitters, DJ and RJ, would be extremely helpful and enhance the robustness of the link. In this paper, we report in-depth jitter analysis from a FSOC data link at 10 Gbps propagating at 1550 nm.
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