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Knygos aprašymas

This volume brings together the main results in the field of Bayesian Optimization (BO), focusing on the last ten years and showing how, on the basic framework, new methods have been specialized to solve emerging problems from machine learning, artificial intelligence, and system optimization. It also analyzes the software resources available for BO and a few selected application areas. Some areas for which new results are shown include constrained optimization, safe optimization, and applied mathematics, specifically BO's use in solving difficult nonlinear mixed integer problems. The book will help bring readers to a full understanding of the basic Bayesian Optimization framework and gain an appreciation of its potential for emerging application areas. It will be of particular interest to the data science, computer science, optimization, and engineering communities.

Informacija

Autorius: Antonio Candelieri, Francesco Archetti,
Serija: SpringerBriefs in Optimization
Leidėjas: Springer Nature Switzerland
Išleidimo metai: 2019
Knygos puslapių skaičius: 140
ISBN-10: 3030244938
ISBN-13: 9783030244934
Formatas: Knyga minkštu viršeliu
Kalba: Anglų
Žanras: Bayesian inference

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