رکورد قبلیرکورد بعدی

" Modeling and Inverse Problems in Imaging Analysis "


Document Type : BL
Record Number : 621221
Doc. No : dltt
Main Entry : Chalmond, Bernard.
Title & Author : Modeling and Inverse Problems in Imaging Analysis\ by Bernard Chalmond.
Publication Statement : New York, NY :: Springer New York :: Imprint: Springer,, 2003.
Series Statement : Applied Mathematical Sciences,; 155
ISBN : 9780387216621
: : 9781441930491
Contents : 1 Introduction -- 1.1 About Modeling -- 1.2 Structure of the Book -- I Spline Models -- 2 Nonparametric Spline Models -- 3 Parametric Spline Models -- 4 Auto-Associative Models -- II Markov Models -- 5 Fundamental Aspects -- 6 Bayesian Estimation -- 7 Simulation and Optimization -- 8 Parameter Estimation -- III Modeling in Action -- 9 Model-Building -- 10 Degradation in Imaging -- 11 Detection of Filamentary Entities -- 12 Reconstruction and Projections -- 13 Matching -- References -- Author Index.
Abstract : More mathematics have been taking part in the development of digital image processing as a science, and the contributions are reflected in the increasingly important role modeling has played solving complex problems. This book is mostly concerned with energy-based models. Through concrete image analysis problems, the author develops consistent modeling, a know-how generally hidden in the proposed solutions. The book is divided into three main parts. The first two parts describe the theory behind the applications that are presented in the third part. These materials include splines (variational approach, regression spline, spline in high dimension) and random fields (Markovian field, parametric estimation, stochastic and deterministic optimization, continuous Gaussian field). Most of these applications come from industrial projects in which the author was involved in robot vision and radiography: tracking 3-D lines, radiographic image processing, 3-D reconstruction and tomography, matching and deformation learning. Numerous graphical illustrations accompany the text showing the performance of the proposed models. This book will be useful to researchers and graduate students in mathematics, physics, computer science, and engineering.
Subject : Mathematics.
Subject : Computer vision.
Subject : Mathematical statistics.
Added Entry : SpringerLink (Online service)
Parallel Title : Translated by Kari A. Foster.
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