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Simulation-driven design by knowledge-based response correction techniques

Focused on efficient simulation-driven multi-fidelity optimization techniques, this monograph on simulation-driven optimization covers simulations utilizing physics-based low-fidelity models, often based on coarse-discretization simulations or other types of simplified physics representations, such...

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Detalles Bibliográficos
Autores principales: Koziel, Slawomir, Leifsson, Leifur
Lenguaje:eng
Publicado: Springer 2016
Materias:
Acceso en línea:https://dx.doi.org/10.1007/978-3-319-30115-0
http://cds.cern.ch/record/2157779
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author Koziel, Slawomir
Leifsson, Leifur
author_facet Koziel, Slawomir
Leifsson, Leifur
author_sort Koziel, Slawomir
collection CERN
description Focused on efficient simulation-driven multi-fidelity optimization techniques, this monograph on simulation-driven optimization covers simulations utilizing physics-based low-fidelity models, often based on coarse-discretization simulations or other types of simplified physics representations, such as analytical models. The methods presented in the book exploit as much as possible any knowledge about the system or device of interest embedded in the low-fidelity model with the purpose of reducing the computational overhead of the design process. Most of the techniques described in the book are of response correction type and can be split into parametric (usually based on analytical formulas) and non-parametric, i.e., not based on analytical formulas. The latter, while more complex in implementation, tend to be more efficient. The book presents a general formulation of response correction techniques as well as a number of specific methods, including those based on correcting the low-fidelity model response (output space mapping, manifold mapping, adaptive response correction and shape-preserving response prediction), as well as on suitable modification of design specifications. Detailed formulations, application examples and the discussion of advantages and disadvantages of these techniques are also included. The book demonstrates the use of the discussed techniques for solving real-world engineering design problems, including applications in microwave engineering, antenna design, and aero/hydrodynamics.
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spelling cern-21577792021-04-21T19:40:48Zdoi:10.1007/978-3-319-30115-0http://cds.cern.ch/record/2157779engKoziel, SlawomirLeifsson, LeifurSimulation-driven design by knowledge-based response correction techniquesMathematical Physics and MathematicsFocused on efficient simulation-driven multi-fidelity optimization techniques, this monograph on simulation-driven optimization covers simulations utilizing physics-based low-fidelity models, often based on coarse-discretization simulations or other types of simplified physics representations, such as analytical models. The methods presented in the book exploit as much as possible any knowledge about the system or device of interest embedded in the low-fidelity model with the purpose of reducing the computational overhead of the design process. Most of the techniques described in the book are of response correction type and can be split into parametric (usually based on analytical formulas) and non-parametric, i.e., not based on analytical formulas. The latter, while more complex in implementation, tend to be more efficient. The book presents a general formulation of response correction techniques as well as a number of specific methods, including those based on correcting the low-fidelity model response (output space mapping, manifold mapping, adaptive response correction and shape-preserving response prediction), as well as on suitable modification of design specifications. Detailed formulations, application examples and the discussion of advantages and disadvantages of these techniques are also included. The book demonstrates the use of the discussed techniques for solving real-world engineering design problems, including applications in microwave engineering, antenna design, and aero/hydrodynamics.Springeroai:cds.cern.ch:21577792016
spellingShingle Mathematical Physics and Mathematics
Koziel, Slawomir
Leifsson, Leifur
Simulation-driven design by knowledge-based response correction techniques
title Simulation-driven design by knowledge-based response correction techniques
title_full Simulation-driven design by knowledge-based response correction techniques
title_fullStr Simulation-driven design by knowledge-based response correction techniques
title_full_unstemmed Simulation-driven design by knowledge-based response correction techniques
title_short Simulation-driven design by knowledge-based response correction techniques
title_sort simulation-driven design by knowledge-based response correction techniques
topic Mathematical Physics and Mathematics
url https://dx.doi.org/10.1007/978-3-319-30115-0
http://cds.cern.ch/record/2157779
work_keys_str_mv AT kozielslawomir simulationdrivendesignbyknowledgebasedresponsecorrectiontechniques
AT leifssonleifur simulationdrivendesignbyknowledgebasedresponsecorrectiontechniques