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Characterization and advanced communication techniques for free-space optical channels.

机译:自由空间光信道的特性和先进的通信技术。

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摘要

Free-Space Optical (FSO) communication through the terrestrial atmospheric channel may offer many benefits in the wireless communications arena, like very high power efficiency; suitability for secure communications; absence of electromagnetic interference; and potentially very high bandwidth, to name a few. An optical beam propagating through the atmosphere is subject to optical turbulence. Optical turbulence is a random process that distorts the intensity and phase structure of a propagating optical beam and induces a varying signal at the receiver of an FSO communication link. This phenomenon (usually referred to as scintillation) degrades the performance of the FSO link by increasing the probability of error. In this dissertation we seek to characterize the effects of the scintillation-induced power fluctuations by determining the channel capacity of the optical link using numerical methods. We find that capacity decreases monotonically with increasing turbulence strength in weak turbulence conditions, but it is non-monotonic in strong turbulence conditions. We show that low-density parity-check (LDPC) codes provide strong error control capabilities in this channel if a perfect interleaver can be used. Multiple transmit optical beams can also be used to reduce scintillation. We characterize the spatial correlation of the atmospheric optical channel and determine a scintillation model for the multiple-bearn scheme. With this model we are able to predict the effective reduction in scintillation as a function of the system design parameters. A Multi-channel FSO communications system based on orbital angular momentum (OAM)-carrying beams is studied. We numerically analyze the effects of atmospheric turbulence on the system and find that turbulence induces attenuation and crosstalk among OAM channels. Based on a model in which the constituent channels are binary symmetric and crosstalk is a Gaussian noise source, we find optimal sets of OAM states at each turbulence condition studied, and determine the aggregate capacity of the multi-channel system at those conditions. At very high data rates the FSO channel shows some inter-symbol interference. We address the problem of joint sequence detection in partial-response (PR) channels and decoding of LDPC codes. We model the PR channel and the LDPC code as a combined inference problem. We derive the belief propagation equations that allow the simultaneous detection and decoding of a LDPC codeword in a PR channel.
机译:通过地面大气通道的自由空间光(FSO)通信可能在无线通信领域提供许多好处,例如非常高的功率效率;适用于安全通信;没有电磁干扰;还有可能非常高的带宽,仅举几例。穿过大气传播的光束会受到光学湍流的影响。光学湍流是一个随机过程,会扭曲传播光束的强度和相位结构,并在FSO通信链路的接收器处引起变化的信号。这种现象(通常称为闪烁)通过增加错误的可能性而降低了FSO链路的性能。在本文中,我们试图通过使用数值方法确定光链路的信道容量来表征闪烁引起的功率波动的影响。我们发现,在弱湍流条件下,容量随湍流强度的增加而单调降低,但在强湍流条件下,容量却非单调。我们显示,如果可以使用完美的交织器,则低密度奇偶校验(LDPC)码在此通道中提供了强大的错误控制功能。多个发射光束也可以用于减少闪烁。我们表征了大气光通道的空间相关性,并确定了多波束方案的闪烁模型。使用该模型,我们可以预测系统设计参数的闪烁有效减少量。研究了基于轨道角动量(OAM)传输波束的多信道FSO通信系统。我们数值分析了大气湍流对系统的影响,发现湍流会引起OAM通道之间的衰减和串扰。基于组成通道为二进制对称且串扰为高斯噪声源的模型,我们在研究的每个湍流条件下找到了最优的OAM状态集,并确定了在这些条件下的多通道系统的总容量。在非常高的数据速率下,FSO信道显示出一些符号间干扰。我们解决了部分响应(PR)通道中联合序列检测和LDPC码解码的问题。我们将PR通道和LDPC码建模为组合推理问题。我们导出了置信传播方程,该方程允许在PR通道中同时检测和解码LDPC码字。

著录项

  • 作者

    Anguita, Jaime Andres.;

  • 作者单位

    The University of Arizona.$bElectrical & Computer Engineering.;

  • 授予单位 The University of Arizona.$bElectrical & Computer Engineering.;
  • 学科 Engineering Electronics and Electrical.; Physics Optics.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 164 p.
  • 总页数 164
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术;光学;
  • 关键词

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