Recurrent Neural Networks: From Simple to Gated Architectures

★★★★☆ 4.0 48 reviews

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Management number 231707988 Release Date 2026/06/18 List Price US$14.92 Model Number 231707988
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This textbook provides a compact but comprehensive treatment that provides analytical and design steps to recurrent neural networks from scratch. It provides a treatment of the general recurrent neural networks with principled methods for training that render the (generalized) backpropagation through time (BPTT).  This author focuses on the basics and nuances of recurrent neural networks, providing technical and principled treatment of the subject, with a view toward using coding and deep learning computational frameworks, e.g., Python and Tensorflow-Keras. Recurrent neural networks are treated holistically from simple to gated architectures, adopting the technical machinery of adaptive non-convex optimization with dynamic constraints to leverage its systematic power in organizing the learning and training processes. This permits the flow of concepts and techniques that provide grounded support for design and training choices. The author’s approach enables strategic co-trainingof output layers, using supervised learning, and hidden layers, using unsupervised learning, to generate more efficient internal representations and accuracy performance. As a result, readers will be enabled to create designs tailoring proficient procedures for recurrent neural networks in their targeted applications. Read more

ASIN B09PMZ3ND9
XRay Not Enabled
ISBN13 978-3030899295
Language English
File size 12.2 MB
Page Flip Enabled
Publisher Springer
Word Wise Not Enabled
Print length 216 pages
Accessibility Learn more
Publication date January 3, 2022
Enhanced typesetting Enabled

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