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Optimized Bayesian Dynamic Advising

Optimized Bayesian Dynamic Advising

Miroslav Karny

About this book

Written by one of the world’s leading groups in the area of Bayesian identification, control and decision making, this book provides the theoretical and algorithmic basis of optimized probabilistic advising. Starting from abstract ideas and formulations, and culminating in detailed algorithms, Optimized Bayesian Dynamic Advising comprises a unified treatment of an important problem of the design of advisory systems supporting supervisors of complex processes. It introduces the theoretical and algorithmic basis of developed advising, relying on novel and powerful combination black-box modeling by dynamic mixture models and fully probabilistic dynamic optimization. The proposed non-standard problem formulation and its solution mark a significant contribution to the design of anthropocentric automation systems. Written for a broad audience, including developers of algorithms and application engineers, researchers, lecturers and postgraduates, this book can be used as a reference tool, and an advanced text on Bayesian dynamic decision making.

Details

OL Work ID
OL8533071W

Subjects

Bayesian statistical decision theoryComputer scienceArtificial intelligenceComputer simulationOptical pattern recognitionMathematical statisticsModels and PrinciplesUser Interfaces and Human Computer InteractionArtificial Intelligence (incl. Robotics)Simulation and ModelingPattern RecognitionStatistics and Computing/Statistics Programs

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Book data from Open Library. Cover images courtesy of Open Library.