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An Algebraic and Probabilistic Framework for Network Information Theory

机译:网络信息理论的代数和概率框架

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摘要

In this monograph, we develop a mathematical framework based on asymptotically good random structured codes, i.e., codes possessing algebraic properties, for network information theory. We use these codes to propose new strategies for communication in multi-terminal settings. The proposed coding strategies are applicable to arbitrary instances of the multi-terminal communication problems under consideration. In particular, we consider four fundamental problems which can be considered as building blocks of networks: distributed source coding, interference channels, multiple-access channels with distributed states and multiple description source coding. We then develop a systematic framework for characterizing the performance limits of these strategies for these problems from an information-theoretic viewpoint. Lastly, we identify several examples of the multiterminal communication problems studied herein, for which structured codes attain optimality, and provide strictly better performance as compared to classical techniques based on unstructured codes. In summary, we develop an algebraic and probabilistic framework to demonstrate the fundamental role played by structured codes in multiterminal communication problems. This monograph deals exclusively with discrete source and channel coding problems.
机译:在本专着中,我们基于渐近良好的随机结构化码,即具有代数属性的代码来开发一种基于渐近良好的随机结构码的数学框架,用于网络信息理论。我们使用这些代码提出了在多终端设置中进行通信的新策略。建议的编码策略适用于所考虑的多终端通信问题的任意实例。特别是,我们考虑了四个基本问题,可以被视为网络的构建块:分布式源编码,干扰通道,具有分布式状态的多址通道和多个描述源编码。然后,我们开发系统框架,用于表征来自信息理论观点的这些问题的这些策略的性能限制。最后,我们识别本文研究的多星际通信问题的若干示例,其中结构化代码获得了最佳性,并且与基于非结构化码的经典技术相比,提供了严格的性能。总之,我们开发了一个代数和概率框架,以展示结构化代码在多级通信问题中发挥的基本作用。本专着与离散源和频道编码问题完全优惠。

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