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Practice of optimization theory in g...
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Jin, Yin-Fu.
Practice of optimization theory in geotechnical engineering
Record Type:
Electronic resources : Monographic component part
Title/Author:
Practice of optimization theory in geotechnical engineeringby Zhen-Yu Yin, Yin-Fu Jin.
Author:
Yin, Zhen-Yu.
other author:
Jin, Yin-Fu.
Published:
Singapore :Springer Singapore :2019.
Description:
xxxvii, 356 p. :ill., digital ;24 cm.
Contained By:
Springer eBooks
Subject:
Geotechnical engineering.
Online resource:
https://doi.org/10.1007/978-981-13-3408-5
ISBN:
9789811334085$q(electronic bk.)
Practice of optimization theory in geotechnical engineering
Yin, Zhen-Yu.
Practice of optimization theory in geotechnical engineering
[electronic resource] /by Zhen-Yu Yin, Yin-Fu Jin. - Singapore :Springer Singapore :2019. - xxxvii, 356 p. :ill., digital ;24 cm.
Introduction -- Methodology of parameter identification -- Optimisation algorithms -- Laboratory tests for mechanical behaviours of soils -- Constitutive modeling of soils -- ErosOpt platform -- Appendix A: NMS -- Appendix B: NMGA -- Appendix C: NMDE.
This book presents the development of optimization platform for geotechnical engineering which is one of the key components in smart geotechnics. The book discusses the fundamentals of the optimization algorithm with constitutive models of soils. Helping readers easily understand the optimization algorithm applied in geotechnical engineering, this book first introduces the methodology of the optimization-based parameter identification, and then elaborates the principle of three newly developed efficient optimization algorithms, followed by the ideas of a variety of laboratory tests and formulations of constitutive models. Moving on to the application of optimization methods in geotechnical engineering, this book presents an optimization-based parameter identification platform with a practical and concise interface based on the above theories. The book is intended for undergraduate and graduate-level teaching in soil mechanics and geotechnical engineering and other related engineering specialties. It is also of use to industry practitioners, due to the inclusion of real-world applications, opening the door to advanced courses on both modeling and algorithm development within the industrial engineering and operations research fields.
ISBN: 9789811334085$q(electronic bk.)
Standard No.: 10.1007/978-981-13-3408-5doiSubjects--Topical Terms:
678999
Geotechnical engineering.
LC Class. No.: TA705 / .Y569 2019
Dewey Class. No.: 624.151
Practice of optimization theory in geotechnical engineering
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Introduction -- Methodology of parameter identification -- Optimisation algorithms -- Laboratory tests for mechanical behaviours of soils -- Constitutive modeling of soils -- ErosOpt platform -- Appendix A: NMS -- Appendix B: NMGA -- Appendix C: NMDE.
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This book presents the development of optimization platform for geotechnical engineering which is one of the key components in smart geotechnics. The book discusses the fundamentals of the optimization algorithm with constitutive models of soils. Helping readers easily understand the optimization algorithm applied in geotechnical engineering, this book first introduces the methodology of the optimization-based parameter identification, and then elaborates the principle of three newly developed efficient optimization algorithms, followed by the ideas of a variety of laboratory tests and formulations of constitutive models. Moving on to the application of optimization methods in geotechnical engineering, this book presents an optimization-based parameter identification platform with a practical and concise interface based on the above theories. The book is intended for undergraduate and graduate-level teaching in soil mechanics and geotechnical engineering and other related engineering specialties. It is also of use to industry practitioners, due to the inclusion of real-world applications, opening the door to advanced courses on both modeling and algorithm development within the industrial engineering and operations research fields.
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Engineering (Springer-11647)
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EB TA705 .Y51 2019 2019
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https://doi.org/10.1007/978-981-13-3408-5
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