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Multiple-Symbol Joint Signal Processing for Differentially Encoded Single- and Multi-Carrier Communications: Principles, Designs and Applications

机译:差分编码的单载波和多载波通信的多符号联合信号处理:原理,设计和应用

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摘要

Bypassing the potentially excessive-complexity and yet inaccurate channel estimation, differentially encoded modulation in conjunction with low-complexity non-coherent detection constitutes a viable candidate for future multiple-antenna aided systems, where estimating all the links may become unrealistic, especially in high-speed environments. Upon exploiting the correlation between the phase distortions experienced by the consecutively transmitted symbols and/or based on mutually and iteratively utilizing the increasingly improved bit reliability information among the associated multiple symbols in the context of differentially modulated systems using channel code aided iterative receivers, the joint processing on consecutively received multiple symbols improves the system's performance. For example, an increased robustness against rapid channel fluctuation, improved flexibility in the system's performance-complexity compromise as well as a reduced performance loss is achieved in comparison to its coherent detection aided counterpart. In order to stimulate further research on differentially modulated systems and on the associated multiple-symbol signal processing based advanced receiver design, a comprehensive review on their related concepts and fundamental principles is carried out in this treatise, followed by a number of potential challenges encountered in their practical implementations in future high-spectral-efficiency wireless transmissions, such as their applications in high-order differentially modulated systems and in differential interference suppression of spatial-division multiplexing/multiple access scenarios.
机译:绕过潜在的过度复杂和不准确的信道估计,差分编码调制与低复杂度非相干检测一起构成了未来多天线辅助系统的可行候选方案,在该系统中,估计所有链路可能变得不切实际,尤其是在高带宽情况下。加速环境。利用连续传输的符号经历的相位失真之间的相关性和/或在使用信道码辅助迭代接收器的差分调制系统的情况下,基于相互关联和迭代地利用关联的多个符号之间不断提高的比特可靠性信息,联合对连续接收的多个符号进行处理可提高系统性能。例如,与相干的检测辅助对象相比,可以提高抵抗快速信道波动的鲁棒性,提高系统性能复杂性的灵活性以及减少的性能损失。为了促进对差分调制系统以及基于高级接收机设计的相关多符号信号处理的进一步研究,本论文对它们的相关概念和基本原理进行了全面的综述,随后提出了许多潜在的挑战。它们在未来的高频谱效率无线传输中的实际实现,例如它们在高阶差分调制系统中的应用以及在空分复用/多址方案的差分干扰抑制中的应用。

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