Optimization methods for regularized convex formulations in machine learning

We develop efficient numerical optimization algorithms for regularized convex formulations that appear in a variety of areas such as machine learning, statistics, and signal processing. Their objective functions consist of a loss term and a regularization term, where the latter controls the complexi...

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Bibliographic Details
Main Author: Lee, Sang Kyun
Format: Dissertation
Language:English
Published: ProQuest Dissertations & Theses 01.01.2011
Subjects:
ISBN:9781267055095, 126705509X
Online Access:Get full text
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