Guanghui Lan Lan First-order and Stochastic Optimization Methods for Machine Learning

First-order and Stochastic Optimization Methods for Machine Learning

von Guanghui Lan

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Beschreibung

This book covers not only foundational materials but also the most recent progresses made during the past few years on the area of machine learning algorithms. In spite of the intensive research and development in this area, there does not exist a systematic treatment to introduce the fundamental concepts and recent progresses on machine learning algorithms, especially on those based on stochastic optimization methods, randomized algorithms, nonconvex optimization, distributed and online learning, and projection free methods. This book will benefit the broad audience in the area of machine learning, artificial intelligence and mathematical programming community by presenting these recent developments in a tutorial style, starting from the basic building blocks to the most carefully designed and complicated algorithms for machine learning.


This book covers not only foundational materials but also the most recent progresses made during the past few years on the area of machine learning algorithms. In spite of the intensive research and development in this area, there does not exist a systematic treatment to introduce the fundamental concepts and recent progresses on machine learning algorithms, especially on those based on stochastic optimization methods, randomized algorithms, nonconvex optimization, distributed and online learning, and projection free methods. This book will benefit the broad audience in the area of machine learning, artificial intelligence and mathematical programming community by presenting these recent developments in a tutorial style, starting from the basic building blocks to the most carefully designed and complicated algorithms for machine learning.




Presents comprehensive study of topics in machine learning from introductory material through most complicated algorithms Summarizes most recent findings in the area of machine learning Addresses a broad audience in machine learning, artificial intelligence, and mathematical programming Includes exercises

Autor*in

Guanghui Lan

Themen in »First-order and Stochastic Optimization Methods for Machine Learning«

Stochastic optimization methods Machine learning algorithms Randomized algorithms Nonconvex optimization methods Distributed and decentralized methods

Stimmen zu »First-order and Stochastic Optimization Methods for Machine Learning«

Details

ISBN: 9783030395704
Verlag: Springer International Publishing
Erscheinung: 16.05.2021

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