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Bayesian Optimization

  • Book
  • May 23, 2023
  • #DecisionMaking #Probability #ComputerScience
Roman Garnett
@RomanGarnett
(Author)
www.goodreads.com
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1 Recommender
1 Mention
Bayesian optimization is a methodology for optimizing expensive objective functions that has proven success in the sciences, engineering, and beyond. This timely text provides a sel... Show More

Bayesian optimization is a methodology for optimizing expensive objective functions that has proven success in the sciences, engineering, and beyond. This timely text provides a self-contained and comprehensive introduction to the subject, starting from scratch and carefully developing all the key ideas along the way. This bottom-up approach illuminates unifying themes in the design of Bayesian optimization algorithms and builds a solid theoretical foundation for approaching novel situations. The core of the book is divided into three main parts, covering theoretical and practical aspects of Gaussian process modeling, the Bayesian approach to sequential decision making, and the realization and computation of practical and effective optimization policies. Following this foundational material, the book provides an overview of theoretical convergence results, a survey of notable extensions, a comprehensive history of Bayesian optimization, and an extensive annotated bibliography of applications.

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ISBN: 110842578X

ISBN-13: 9781108425780

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Luigi Acerbi @AcerbiLuigi · Oct 12, 2021
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Wow, it's giftmas! This book by Roman Garnett is an amazing resource for everyone working with Gaussian processes, surrogate modeling, active learning, and - you may guess - Bayesian optimization. Looking forward to go through it in detail, and an instant recommendation!
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