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Semi-empirical Neural Network Modeling and Digital Twins...

Semi-empirical Neural Network Modeling and Digital Twins Development

Dmitriy Tarkhov, T. V. Lazovskaya, Alexander Nikolayevich Vasilyev
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Semi-empirical Neural Network Modeling presents a new approach on how to quickly construct an accurate, multilayered neural network solution of differential equations. Current neural network methods have significant disadvantages, including a lengthy learning process and single-layered neural networks built on the finite element method (FEM). The strength of the new method presented in this book is the automatic inclusion of task parameters in the final solution formula, which eliminates the need for repeated problem-solving. This is especially important for constructing individual models with unique features. The book illustrates key concepts through a large number of specific problems, both hypothetical models and practical interest.

  • Offers a new approach to neural networks using a unified simulation model at all stages of design and operation
  • Illustrates this new approach with numerous concrete examples throughout the book
  • Presents the methodology in separate and clearly-defined stages
种类:
年:
2019
出版:
1
出版社:
Academic Pr
语言:
english
页:
320
ISBN 10:
0128156511
ISBN 13:
9780128156513
文件:
PDF, 6.91 MB
IPFS:
CID , CID Blake2b
english, 2019
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