<p><p>This book covers some of the most popular methods in design space sampling, ensembling surrogate models, multi-fidelity surrogate model construction, surrogate model selection and validation, surrogate-based robust design optimization, and surrogate-based evolutionary optimization.</p><p>Surro
Surrogates-Gaussian Process Modeling, Design, and Optimization for the Applied Sciences
โ Scribed by Robert B. Gramacy (Author)
- Publisher
- Chapman and Hall/CRC
- Year
- 2020
- Leaves
- 560
- Edition
- 1
- Category
- Library
No coin nor oath required. For personal study only.
โฆ Synopsis
Computer simulation experiments are essential to modern scientific discovery, whether that be in physics, chemistry, biology, epidemiology, ecology, engineering, etc. Surrogates are meta-models of computer simulations, used to solve mathematical models that are too intricate to be worked by hand. Gaussian process (GP) regression is a supremely flexible tool for the analysis of computer simulation experiments. This book presents an applied introduction to GP regression for modelling and optimization of computer simulation experiments.
Features:
โข Emphasis on methods, applications, and reproducibility.
โข R code is integrated throughout for application of the methods.
โข Includes more than 200 full colour figures.
โข Includes many exercises to supplement understanding, with separate solutions available from the author.
โข Supported by a website with full code available to reproduce all methods and examples.
The book is primarily designed as a textbook for postgraduate students studying GP regression from mathematics, statistics, computer science, and engineering. Given the breadth of examples, it could also be used by researchers from these fields, as well as from economics, life science, social science, etc.
โฆ Table of Contents
Historical perspective
Four motivating datasets
Steepest ascent and ridge analysis
Space-filling design
Gaussian process regression
Model-based design for GPs
Optimization
Calibration and sensitivity
GP fidelity and scale
Heteroskedasticity
Appendices
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