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Böcker i Foundations and Trends (R) in Communications and Information Theory-serien

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  • av Marina Haikin
    1 180,-

    Working at the intersection of information theory and neighboring disciplines, the authors provide a comprehensive survey of a particular area of asymptotic frame theory that can drastically improve the performance of codes used in communication and signal processing systems.

  • - Theory and Practice
    av Yihong Wu
    1 336,-

    The authors of this monograph survey a suite of techniques based on the theory of polynomials, collectively referred to as polynomial methods. These techniques provide useful tools for the design of highly practical algorithms with provable optimality, and for establishing the fundamental limits of inference problems through moment matching.

  • av S. Sandeep Pradhan
    1 466,-

    Addresses several network communication problems which can be considered as building blocks of networks. The book considers these problems from both the data transmission and the data storage perspectives, and devises structured coding schemes for the finite alphabet cases of these problems.

  • av Mauro Barni
    1 466,-

    Addresses several variants of a general adversarial binary detection problem, depending on the knowledge available to the Defender and the Attacker of the statistical characterization of a system. The authors lead the reader through the considerations and solutions under two hypotheses, using a framework that can be adopted in many applications.

  • av Jonathan Scarlett
    1 466,-

    Surveys both classical literature and recent developments on the mismatched decoding problem, with an emphasis on achievable random-coding rates for memoryless channels. In doing so they present two widely-considered achievable rates known as the generalized mutual information and the LM rate, and overview their derivations and properties.

  • - Mitigating Fundamental Bottlenecks in Large-scale Distributed Computing and Machine Learning
    av Songze Li
    1 466,-

    Introduces the novel concept of Coded Computing. Coded Computing exploits coding theory to optimally inject and leverage data/task redundancy in distributed computing systems, creating coding opportunities to overcome the bottlenecks.

  • av Georgios Paschos
    1 466,-

    Focuses on the fundamental underlying mathematical models, into a powerful framework for performing optimization of caching systems. In doing so, the authors present a background for the anticipated explosion in caching research, and provide a didactic view into how engineers have managed to infuse mathematical models into the study of caching.

  • - Structures, Criteria, Factorization, and Coding
    av Robert F. H. Fischer
    1 646,-

    Provides a tutorial review of the Lattice-Reduction-Aided and Integer-Forcing approaches to equalization in MIMO communications. The authors highlight the similarities and differences of both approaches while summarizing the various criteria for selecting the integer linear combinations available in the literature in a unified way.

  • - An Information Theory Perspective
    av Matthew Aldridge
    1 466,-

    The focus of this book is on the non-adaptive setting of group testing. In this setting, the test pools are designed in advance enabling them to be implemented in parallel. The book gives a comprehensive and thorough treatment of the subject from an information theoretic perspective, and covers several related developments.

  • av Maxim Raginsky
    1 486,-

    Focuses on some of the key modern mathematical tools that are used for the derivation of concentration inequalities, on their links to information theory, and on their various applications to communications and coding. In addition to being a survey, this book also includes various new recent results derived by the authors.

  • - A Tutorial
    av Imre Csiszar
    536,-

    Explores the applications of information theory concepts in statistics, in the finite alphabet setting. The topics covered include large deviations, hypothesis testing, maximum likelihood estimation in exponential families, analysis of contingency tables, and iterative algorithms with an "information geometry" background.

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