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Machine Learning for Model Order Reduction
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Machine Learning for Model Order Reduction

Softcover Reprint of the Original 1st 2018 ed.

Book Details

Format Paperback / Softback
ISBN-10 3030093077
ISBN-13 9783030093075
Edition Softcover Reprint of the Original 1st 2018 ed.
Publisher Springer Nature Switzerland AG
Imprint Springer Nature Switzerland AG
Country of Manufacture GB
Country of Publication GB
Publication Date Jan 4th, 2019
Print length 93 Pages
Ksh 19,800.00
Werezi Extended Catalogue 0 in stock

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This Book discusses machine learning for model order reduction, which can be used in modern VLSI design to predict the behavior of an electronic circuit, via mathematical models that predict behavior.  The author describes techniques to reduce significantly the time required for simulations involving large-scale ordinary differential equations, which sometimes take several days or even weeks.  This method is called model order reduction (MOR), which reduces the complexity of the original large system and generates a reduced-order model (ROM) to represent the original one.  Readers will gain in-depth knowledge of machine learning and model order reduction concepts, the tradeoffs involved with using various algorithms, and how to apply the techniques presented to circuit simulations and numerical analysis. Introduces machine learning algorithms at the architecture level and the algorithm levels of abstraction;Describes new, hybrid solutions for model order reduction;Presents machine learning algorithms in depth, but simply;Uses real, industrial applications to verify algorithms.

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