Cover image for Feature and Dimensionality Reduction for Clustering with Deep Learning
Title:
Feature and Dimensionality Reduction for Clustering with Deep Learning
Author:
Ros, Frederic. author. (orcid)0000-0001-9954-8399
ISBN:
9783031487439
Edition:
1st ed. 2024.
Physical Description:
XI, 268 p. 1 illus. online resource.
Series:
Unsupervised and Semi-Supervised Learning,
Abstract:
This book presents an overview of recent methods of feature selection and dimensionality reduction that are based on Deep Neural Networks (DNNs) for a clustering perspective, with particular attention to the knowledge discovery question. The authors first present a synthesis of the major recent influencing techniques and "tricks" participating in recent advances in deep clustering, as well as a recall of the main deep learning architectures. Secondly, the book highlights the most popular works by "family" to provide a more suitable starting point from which to develop a full understanding of the domain. Overall, the book proposes a comprehensive up-to-date review of deep feature selection and deep clustering methods with particular attention to the knowledge discovery question and under a multi-criteria analysis. The book can be very helpful for young researchers, non-experts, and R&D AI engineers. Presents a synthesis of recent influencing techniques and "tricks" participating in advances in deep clustering; Highlights works by "family" to provide a more suitable starting point to develop a full understanding of the domain; Includes recent methods of feature selection and dimensionality reduction that are based on Deep Neural Networks.
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