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Bayesian Tensor Decomposition for Signal Processing and Machine Learning

Modeling, Tuning-Free Algorithms and Applications

Produktform: E-Buch Text Elektronisches Buch in proprietärem

This book presents recent advances of Bayesian inference in structured tensor decompositions. It explains how Bayesian modeling and inference lead to tuning-free tensor decomposition algorithms, which achieve state-of-the-art performances in many applications, including The book begins with an introduction to the general topics of tensors and Bayesian theories. It then discusses probabilistic models of various structured tensor decompositions and their inference algorithms, with applications tailored for each tensor decomposition presented in the corresponding chapters. The book concludes by looking to the future, and areas where this research can be further developed.Bayesian Tensor Decomposition for Signal Processing and Machine Learning is suitable for postgraduates and researchers with interests in tensor data analytics and Bayesian methods.weiterlesen

Elektronisches Format: PDF

Sprache(n): Englisch

ISBN: 978-3-031-22438-6 / 978-3031224386 / 9783031224386

Verlag: Springer International Publishing

Erscheinungsdatum: 16.02.2023

Seiten: 183

Autor(en): Lei Cheng, Zhongtao Chen, Yik-Chung Wu

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