Fr. 157.00

Maximum-Entropy Sampling - Algorithms and Application

English · Hardback

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Description

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This monograph presents a comprehensive treatment of the maximum-entropy sampling problem (MESP), which is a fascinating topic at the intersection of mathematical optimization and data science. The text situates MESP in information theory, as the algorithmic problem of calculating a sub-vector of pre-specificed size from a multivariate Gaussian random vector, so as to maximize Shannon's differential entropy. The text collects and expands on state-of-the-art algorithms for MESP, and addresses its application in the field of environmental monitoring. While MESP is a central optimization problem in the theory of statistical designs (particularly in the area of spatial monitoring), this book largely focuses on the unique challenges of its algorithmic side. From the perspective of mathematical-optimization methodology, MESP is rather unique (a 0/1 nonlinear program having a nonseparable objective function), and the algorithmic techniques employed are highly non-standard. In particular, successful techniques come from several disparate areas within the field of mathematical optimization; for example: convex optimization and duality, semidefinite programming, Lagrangian relaxation, dynamic programming, approximation algorithms, 0/1 optimization (e.g., branch-and-bound), extended formulation, and many aspects of matrix theory. The book is mainly aimed at graduate students and researchers in mathematical optimization and data analytics.
 

List of contents

Overview.- Notation.- The problem and basic properties.- Branch-and-bound.- Upper bounds.- Environmental monitoring.- Opportunities.- Basic formulae and inequalities.- References.- Index.

Product details

Authors Marcia Fampa, Jon Lee
Publisher Springer, Berlin
 
Languages English
Product format Hardback
Released 30.10.2022
 
EAN 9783031130779
ISBN 978-3-0-3113077-9
No. of pages 195
Dimensions 155 mm x 15 mm x 235 mm
Illustrations XVII, 195 p. 10 illus., 9 illus. in color.
Series Springer Series in Operations Research and Financial Engineering
Subject Natural sciences, medicine, IT, technology > Mathematics > Miscellaneous

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