Wei Qi Yan Yan Computational Methods for Deep Learning

Computational Methods for Deep Learning

von Wei Qi Yan

Theory, Algorithms, and Implementations

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Beschreibung

The first edition of this textbook was published in 2021. Over the past two years, we have invested in enhancing all aspects of deep learning methods to ensure the book is comprehensive and impeccable. Taking into account feedback from our readers and audience, the author has diligently updated this book. 

The second edition of this textbook presents control theory, transformer models, and graph neural networks (GNN) in deep learning. We have incorporated the latest algorithmic advances and large-scale deep learning models, such as GPTs, to align with the current research trends. Through the second edition, this book showcases how computational methods in deep learning serve as a dynamic driving force in this era of artificial intelligence (AI). 

This book is intended for research students, engineers, as well as computer scientists with interest in computational methods in deep learning. Furthermore, it is also well-suited for researchers exploring topics such as machine intelligence, robotic control, and related areas.


The first edition of this textbook was published in 2021. Over the past two years, we have invested in enhancing all aspects of deep learning methods to ensure the book is comprehensive and impeccable. Taking into account feedback from our readers and audience, the author has diligently updated this book. 

The second edition of this textbook presents control theory, transformer models, and graph neural networks (GNN) in deep learning. We have incorporated the latest algorithmic advances and large-scale deep learning models, such as GPTs, to align with the current research trends. Through the second edition, this book showcases how computational methods in deep learning serve as a dynamic driving force in this era of artificial intelligence (AI). 

This book is intended for research students, engineers, as well as computer scientists with interest in computational methods in deep learning. Furthermore, it is also well-suited for researchers exploring topics such as machine intelligence, robotic control, and related areas.



Explores advanced topics in deep learning encompassing transformer models, control theory, and graph neural networks Presents detailed mathematical descriptions and algorithms for generative pre-trained models, such as GPTs Serves as a valuable reference book for postgraduate and PhD students

Autor*in

Wei Qi Yan

Themen in »Computational Methods for Deep Learning«

Deep Learning Pattern Analysis Manifold Learning Machine Vision Reinforcement Learning Natural Language Processing Autoencoder Generative Adversarial Networks Transfer Learning Time-Series Analysis Calculus Linear Algebra Numerical Analysis Tensor Algebra Graphical Models

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Details

ISBN: 9789819948222
Verlag: Springer Singapore
Erscheinung: 16.09.2023

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