Richi Nayak Khanh Luong Nayak Multi-aspect Learning

Multi-aspect Learning

von Richi Nayak Khanh Luong

Methods and Applications

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Beschreibung

This book offers a detailed and comprehensive analysis of multi-aspect data learning, focusing especially on representation learning approaches for unsupervised machine learning. It covers state-of-the-art representation learning techniques for clustering and their applications in various domains. This is the first book to systematically review multi-aspect data learning, incorporating a range of concepts and applications. Additionally, it is the first to comprehensively investigate manifold learning for dimensionality reduction in multi-view data learning. The book presents the latest advances in matrix factorization, subspace clustering, spectral clustering and deep learning methods, with a particular emphasis on the challenges and characteristics of multi-aspect data. Each chapter includes a thorough discussion of state-of-the-art of multi-aspect data learning methods and important research gaps. The book provides readers with the necessary foundational knowledge to apply these methods to new domains and applications, as well as inspire new research in this emerging field.


This book offers a detailed and comprehensive analysis of multi-aspect data learning, focusing especially on representation learning approaches for unsupervised machine learning. It covers state-of-the-art representation learning techniques for clustering and their applications in various domains. This is the first book to systematically review multi-aspect data learning, incorporating a range of concepts and applications. Additionally, it is the first to comprehensively investigate manifold learning for dimensionality reduction in multi-view data learning. The book presents the latest advances in matrix factorization, subspace clustering, spectral clustering and deep learning methods, with a particular emphasis on the challenges and characteristics of multi-aspect data. Each chapter includes a thorough discussion of state-of-the-art of multi-aspect data learning methods and important research gaps. The book provides readers with the necessary foundational knowledge to apply these methods to new domains and applications, as well as inspire new research in this emerging field.


Provides a comprehensive review and in-depth discussion on the multi-aspect data learning Focuses on the state-of-the-art approaches A comprehensive review of methods dealing with the challenges of multi-aspect data

Autor*in

Richi Nayak

Themen in »Multi-aspect Learning«

Multi-aspect Data Learning Multi-view Data Learning Non-negative Matrix Factorization Subspace Learning Spectral Clustering Manifold Learning K Nearest Neighbor

Stimmen zu »Multi-aspect Learning«

Details

ISBN: 9783031335594
Verlag: Springer International Publishing
Erscheinung: 28.07.2023

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