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Machine Learning
An Algorithmic Perspective, Second Edition
Buch von Stephen Marsland
Sprache: Englisch

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Beschreibung

This bestseller helps students understand the algorithms of machine learning. It puts them on a path toward mastering the relevant mathematics and statistics as well as the necessary programming and experimentation. Along with improved Python code, this second edition includes two new chapters on deep belief networks and Gaussian processes. It incorporates new material on the support vector machine, random forests, the perceptron convergence theorem, filters, and more. All of the code is available on the author's website.

This bestseller helps students understand the algorithms of machine learning. It puts them on a path toward mastering the relevant mathematics and statistics as well as the necessary programming and experimentation. Along with improved Python code, this second edition includes two new chapters on deep belief networks and Gaussian processes. It incorporates new material on the support vector machine, random forests, the perceptron convergence theorem, filters, and more. All of the code is available on the author's website.

Über den Autor

Stephen Marsland is a professor of scientific computing and the postgraduate director of the School of Engineering and Advanced Technology (SEAT) at Massey University. His research interests in mathematical computing include shape spaces, Euler equations, machine learning, and algorithms. He received a PhD from Manchester University

Inhaltsverzeichnis

Introduction. Linear Discriminants. The Multi-Layer Perceptron. Radial Basis Functions and Splines. Support Vector Machines. Learning with Trees. Decision by Committee: Ensemble Learning. Probability and Learning. Unsupervised Learning. Dimensionality Reduction. Optimization and Search. Evolutionary Learning. Reinforcement Learning. Markov Chain Monte Carlo (MCMC) Methods. Graphical Models. Python.

Details
Erscheinungsjahr: 2014
Genre: Informatik
Rubrik: Naturwissenschaften & Technik
Medium: Buch
Seiten: 458
Inhalt: Einband - fest (Hardcover)
ISBN-13: 9781466583283
ISBN-10: 1466583282
Sprache: Englisch
Einband: Gebunden
Autor: Marsland, Stephen
Hersteller: Taylor & Francis Inc
Maße: 261 x 179 x 27 mm
Von/Mit: Stephen Marsland
Erscheinungsdatum: 08.10.2014
Gewicht: 1,006 kg
preigu-id: 121064786
Über den Autor

Stephen Marsland is a professor of scientific computing and the postgraduate director of the School of Engineering and Advanced Technology (SEAT) at Massey University. His research interests in mathematical computing include shape spaces, Euler equations, machine learning, and algorithms. He received a PhD from Manchester University

Inhaltsverzeichnis

Introduction. Linear Discriminants. The Multi-Layer Perceptron. Radial Basis Functions and Splines. Support Vector Machines. Learning with Trees. Decision by Committee: Ensemble Learning. Probability and Learning. Unsupervised Learning. Dimensionality Reduction. Optimization and Search. Evolutionary Learning. Reinforcement Learning. Markov Chain Monte Carlo (MCMC) Methods. Graphical Models. Python.

Details
Erscheinungsjahr: 2014
Genre: Informatik
Rubrik: Naturwissenschaften & Technik
Medium: Buch
Seiten: 458
Inhalt: Einband - fest (Hardcover)
ISBN-13: 9781466583283
ISBN-10: 1466583282
Sprache: Englisch
Einband: Gebunden
Autor: Marsland, Stephen
Hersteller: Taylor & Francis Inc
Maße: 261 x 179 x 27 mm
Von/Mit: Stephen Marsland
Erscheinungsdatum: 08.10.2014
Gewicht: 1,006 kg
preigu-id: 121064786
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