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Capacity Estimation and Near-Capacity Achieving Techniques for Digitally Modulated Communication Systems

机译:数字调制通信系统的容量估算和近容量实现技术

摘要

This thesis studies potential improvements that can be made to the current data rates of digital communication systems. The physical layer of the system will be investigated in band-limited scenarios, where high spectral efficiency is necessary in order to meet the ever-growing data rate demand. Several issues are tackled, both with theoretical and more practical aspects. The theoretical part is mainly concerned with estimating the constellation constrained capacity (CCC) of channels with discrete input, which is an inherent property of digital communication systems. The channels under investigation will include linear interference channels of high dimensionality (such as multiple-input multiple-output), and the non-linear optical fiber channel, which has been gathering more and more attention from the information theory community in recent years. In both cases novel CCC estimates and lower bounds are provided in this thesis. Intuition about the optimal signaling distribution is also provided, which is generally not the standard uniform for high spectral and energy efficiency communications. The practical part deals with tools to approach the CCC with real-life transceivers. The constellation shaping concept is one such tool. More specifically, the probabilistic shaping concept is of interest to this thesis. A rate-adaptive solution is proposed for designing the mapping function of a probabilistic shaped coded modulation system, which allows for approaching the above mentioned optimal distribution in practice. This results in increased energy and/or spectral efficiency for both linear and non-linear channels, but also increased maximum reach of the optical link at fixed spectral efficiency. The specific problem of phase noise in digital systems is also studied in this thesis. Phase noise, and particularly non-linear phase noise is especially detrimental to high-speed, high spectral efficiency optical communications. As part of this work, a low-complexity solution is proposed for tracking, which is able to combat the combined effect of linear and non-linear phase noise in optical fibers, achieving close to the CCC estimate. The main contribution of the PhD project is providing engineers with limits on the data rates that current digital communication systems can achieve, and also with methods and insights for approaching those rates, thus interconnecting theory and practice.
机译:本文研究了可以对数字通信系统当前数据速率进行的潜在改进。系统的物理层将在频带受限的情况下进行研究,在这种情况下,为了满足不断增长的数据速率需求,必须具有很高的频谱效率。解决了一些问题,包括理论方面和实践方面的问题。理论部分主要涉及估计具有离散输入的信道的星座约束容量(CCC),这是数字通信系统的固有特性。研究的信道将包括高维线性干扰信道(例如多输入多输出)和非线性光纤信道,近年来,这些信道已引起了信息理论界的越来越多的关注。在这两种情况下,本文均提供了新颖的CCC估计值和下界。还提供了关于最佳信令分布的直觉,这通常不是用于高频谱和能效通信的标准统一标准。实际部分涉及使用实际收发器处理CCC的工具。星座整形概念就是这样一种工具。更具体地说,概率整形概念对此论文很感兴趣。为了设计概率整形编码调制系统的映射函数,提出了一种速率自适应的解决方案,该解决方案允许在实践中接近上述最佳分布。这导致线性和非线性信道的能量和/或频谱效率增加,但是在固定频谱效率下,光链路的最大距离也增加。本文还研究了数字系统中相位噪声的具体问题。相位噪声,尤其是非线性相位噪声,特别不利于高速,高频谱效率的光通信。作为这项工作的一部分,提出了一种用于跟踪的低复杂度解决方案,该解决方案能够抵抗光纤中线性和非线性相位噪声的组合影响,从而实现接近CCC的估计。博士项目的主要贡献是为工程师提供了当前数字通信系统可以达到的数据速率的极限,并为达到这些速率提供了方法和见识,从而将理论与实践联系在一起。

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