Fr. 198.00

Deep Learning: Concepts and Architectures

English · Paperback / Softback

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Description

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This book introduces readers to the fundamental concepts of deep learning and offers practical insights into how this learning paradigm supports automatic mechanisms of structural knowledge representation. It discusses a number of multilayer architectures giving rise to tangible and functionally meaningful pieces of knowledge, and shows how the structural developments have become essential to the successful delivery of competitive practical solutions to real-world problems. The book also demonstrates how the architectural developments, which arise in the setting of deep learning, support detailed learning and refinements to the system design. Featuring detailed descriptions of the current trends in the design and analysis of deep learning topologies, the book offers practical guidelines and presents competitive solutions to various areas of language modeling, graph representation, and forecasting.

List of contents

Preface.- Chapter 1. Deep Learning Architectures.- Chapter 2. Theoretical Characterization of Deep Neural Networks.- Chapter 3. Scaling Analysis of Specialized Tensor Processing Architectures for Deep Learning Models, etc.

Product details

Assisted by Chen (Editor), Chen (Editor), Shyi-Ming Chen (Editor), Witol Pedrycz (Editor), Witold Pedrycz (Editor)
Publisher Springer, Berlin
 
Languages English
Product format Paperback / Softback
Released 27.11.2020
 
EAN 9783030317584
ISBN 978-3-0-3031758-4
No. of pages 342
Dimensions 158 mm x 20 mm x 237 mm
Illustrations XII, 342 p. 135 illus., 95 illus. in color.
Series Studies in Computational Intelligence
Subject Natural sciences, medicine, IT, technology > Technology > General, dictionaries

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