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Information-Theoretic Foundations of Mismatched Decoding

机译:无匹配解码的信息 - 理论基础

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摘要

Shannon's channel coding theorem characterizes the maximal rate of information that can be reliably transmitted over a communication channel when optimal encoding and decoding strategies are used. In many scenarios, however, practical considerations such as channel uncertainty and implementation constraints rule out the use of an optimal decoder. The mismatched decoding problem addresses such scenarios by considering the case that the decoder cannot be optimized, but is instead fixed as part of the problem statement. This problem is not only of direct interest in its own right, but also has close connections with other long-standing theoretical problems in information theory. In this monograph, we survey both classical literature and recent developments on the mismatched decoding problem, with an emphasis on achievable random-coding rates for memoryless channels. We present two widely-considered achievable rates known as the generalized mutual information (GMI) and the LM rate, and overview their derivations and properties. In addition, we survey several improved rates via multi-user coding techniques, as well as recent developments and challenges in establishing upper bounds on the mismatch capacity, and an analogous mismatched encoding problem in rate-distortion theory. Throughout the monograph, we highlight a variety of applications and connections with other prominent information theory problems.
机译:Shannon的通道编码定理表征在使用最佳编码和解码策略时可以通过通信信道可靠地传输的最大信息率。然而,在许多情况下,诸如信道不确定性和实现约束之类的实际考虑排列了使用最佳解码器。不匹配的解码问题通过考虑无法优化解码器,而是作为问题陈述的一部分来解决这种情况。这个问题不仅是对自己的权利直接兴趣,而且还与信息理论中的其他长期理论问题密切相关。在本专着中,我们调查了经典文学和最近的不匹配解码问题的发展,重点是无记忆渠道可实现的随机编码率。我们提出了两个被认为的可被称为广义互信息(GMI)和LM速率的可实现率,并概述其派生和属性。此外,我们通过多用户编码技术调查了几种提高的速率,以及最近的发展和挑战在建立不匹配能力上的上限,以及速率 - 失真理论中的类似错位编码问题。在整个专着中,我们突出了各种应用和与其他突出信息理论问题的连接。

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