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Multiscale Modeling - A Bayesian Perspective (Paperback, Softcover reprint of hardcover 1st ed. 2007): Marco A. R. Ferreira,... Multiscale Modeling - A Bayesian Perspective (Paperback, Softcover reprint of hardcover 1st ed. 2007)
Marco A. R. Ferreira, Herbert K.H. Lee
R2,957 Discovery Miles 29 570 Ships in 10 - 15 working days

This highly useful book contains methodology for the analysis of data that arise from multiscale processes. It brings together a number of recent developments and makes them accessible to a wider audience. Taking a Bayesian approach allows for full accounting of uncertainty, and also addresses the delicate issue of uncertainty at multiple scales. These methods can handle different amounts of prior knowledge at different scales, as often occurs in practice.

Multiscale Modeling - A Bayesian Perspective (Hardcover, 2007 ed.): Marco A. R. Ferreira, Herbert K.H. Lee Multiscale Modeling - A Bayesian Perspective (Hardcover, 2007 ed.)
Marco A. R. Ferreira, Herbert K.H. Lee
R2,979 Discovery Miles 29 790 Ships in 10 - 15 working days

A wide variety of processes occur on multiple scales, either naturally or as a consequence of measurement. This book contains methodology for the analysis of data that arise from such multiscale processes. The book brings together a number of recent developments and makes them accessible to a wider audience. Taking a Bayesian approach allows for full accounting of uncertainty, and also addresses the delicate issue of uncertainty at multiple scales. The Bayesian approach also facilitates the use of knowledge from prior experience or data, and these methods can handle different amounts of prior knowledge at different scales, as often occurs in practice.

The book is aimed at statisticians, applied mathematicians, and engineers working on problems dealing with multiscale processes in time and/or space, such as in engineering, finance, and environmetrics. The book will also be of interest to those working on multiscale computation research. The main prerequisites are knowledge of Bayesian statistics and basic Markov chain Monte Carlo methods. A number of real-world examples are thoroughly analyzed in order to demonstrate the methods and to assist the readers in applying these methods to their own work. To further assist readers, the authors are making source code (for R) available for many of the basic methods discussed herein.

Bayesian Optimization with Application to Computer Experiments (Paperback, 1st ed. 2021): Tony Pourmohamad, Herbert K.H. Lee Bayesian Optimization with Application to Computer Experiments (Paperback, 1st ed. 2021)
Tony Pourmohamad, Herbert K.H. Lee
R1,883 Discovery Miles 18 830 Ships in 10 - 15 working days

This book introduces readers to Bayesian optimization, highlighting advances in the field and showcasing its successful applications to computer experiments. R code is available as online supplementary material for most included examples, so that readers can better comprehend and reproduce methods. Compact and accessible, the volume is broken down into four chapters. Chapter 1 introduces the reader to the topic of computer experiments; it includes a variety of examples across many industries. Chapter 2 focuses on the task of surrogate model building and contains a mix of several different surrogate models that are used in the computer modeling and machine learning communities. Chapter 3 introduces the core concepts of Bayesian optimization and discusses unconstrained optimization. Chapter 4 moves on to constrained optimization, and showcases some of the most novel methods found in the field. This will be a useful companion to researchers and practitioners working with computer experiments and computer modeling. Additionally, readers with a background in machine learning but minimal background in computer experiments will find this book an interesting case study of the applicability of Bayesian optimization outside the realm of machine learning.

Bayesian Nonparametics via Neural Networks (Paperback, Illustrated Ed): Herbert K.H. Lee Bayesian Nonparametics via Neural Networks (Paperback, Illustrated Ed)
Herbert K.H. Lee; Series edited by Martin Wells
R1,882 Discovery Miles 18 820 Ships in 12 - 17 working days

Bayesian Nonparametrics via Neural Networks is the first book to focus on neural networks in the context of nonparametric regression and classification, working within the Bayesian paradigm. Its goal is to demystify neural networks, putting them firmly in a statistical context rather than treating them as a black box. This approach is in contrast to existing books, which tend to treat neural networks as a machine learning algorithm instead of a statistical model. Once this underlying statistical model is recognized, other standard statistical techniques can be applied to improve the model. The Bayesian approach allows better accounting for uncertainty. This book covers uncertainty in model choice and methods to deal with this issue, exploring a number of ideas from statistics and machine learning. A detailed discussion on the choice of prior and new noninformative priors is included, along with a substantial literature review. Written for statisticians using statistical terminology, Bayesian Nonparametrics via Neural Networks will lead statisticians to an increased understanding of the neural network model and its applicability to real-world problems. To illustrate the major mathematical concepts, the author uses two examples throughout the book: one on ozone pollution and the other on credit applications. The methodology demonstrated is relevant for regression and classification-type problems and is of interest because of the widespread potential applications of the methodologies described in the book.

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