Entropy and Information Theory

Entropy and Information Theory

by Robert M. Gray

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About
This book is devoted to the theory of probabilistic information measures and their application to coding theorems for information sources and noisy channels. The eventual goal is a general development of Shannon's mathematical theory of communication, but much of the space is devoted to the tools and methods required to prove the Shannon coding theorems. These tools form an area common to ergodic theory and information theory and comprise several quantitative notions of the information in random variables, random processes, and dynamical systems. Examples are entropy, mutual information, conditional entropy, conditional information, and discrimination or relative entropy, along with the limiting normalized versions of these quantities such as entropy rate and information rate. Much of the book is concerned with their properties, especially the long term asymptotic behavior of sample information and expected information. This is the only up-to-date treatment of traditional information theory emphasizing ergodic theory.

Discussion questions for Entropy and Information Theory

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  1. 1

    How does Robert M. Gray's emphasis on ergodic theory reshape your understanding of information beyond traditional communication engineering?

  2. 2

    In what ways does the concept of "entropy" as a measure of uncertainty in random processes mirror the unpredictable nature of decision-making in your own life?

  3. 3

    How does viewing information sources and dynamical systems through the lens of long-term asymptotic behavior change how you think about patterns and predictability in daily events?

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