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Kernel Methods and Machine Learning

S. Y. Kung
pubblicato da Cambridge University Press

Prezzo online:
85,69
100,73
-15 %
100,73

Offering a fundamental basis in kernel-based learning theory, this book covers both statistical and algebraic principles. It provides over 30 major theorems for kernel-based supervised and unsupervised learning models. The first of the theorems establishes a condition, arguably necessary and sufficient, for the kernelization of learning models. In addition, several other theorems are devoted to proving mathematical equivalence between seemingly unrelated models. With over 25 closed-form and iterative algorithms, the book provides a step-by-step guide to algorithmic procedures and analysing which factors to consider in tackling a given problem, enabling readers to improve specifically designed learning algorithms, build models for new applications and develop efficient techniques suitable for green machine learning technologies. Numerous real-world examples and over 200 problems, several of which are Matlab-based simulation exercises, make this an essential resource for graduate students and professionals in computer science, electrical and biomedical engineering. Solutions to problems are provided online for instructors.

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Generi Informatica e Web » Linguaggi e Applicazioni » Scienza dei calcolatori , Scienza e Tecnica » Medicina » Ingegneria e Tecnologia » Energia: tecnologia e ingegneria

Editore Cambridge University Press

Formato Ebook con Adobe DRM

Pubblicato 17/04/2014

Lingua Inglese

EAN-13 9781139861892

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