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Image Analysis, Random Fields And Dynamic Monte Carlo Methods eBook

A Mathematical Introduction

by Gerhard Winkler
language: english
Publisher: Springer Berlin Heidelberg, December of 2012 ‧
59,61€
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This text is concerned with a probabilistic approach to image analysis as initiated by U. GRENANDER, D. and S. GEMAN, B.R. HUNT and many others, and developed and popularized by D. and S. GEMAN in a paper from 1984. It formally adopts the Bayesian paradigm and therefore is referred to as ''Bayesian Image Analysis''. There has been considerable and still growing interest in prior models and, in particular, in discrete Markov random field methods. Whereas image analysis is replete with ad hoc techniques, Bayesian image analysis provides a general framework encompassing various problems from imaging. Among those are such ''classical'' applications like restoration, edge detection, texture discrimination, motion analysis and tomographic reconstruction. The subject is rapidly developing and in the near future is likely to deal with high-level applications like object recognition. Fascinating experiments by Y. CHOW, U. GRENANDER and D.M. KEENAN (1987), (1990) strongly support this belief.

Image Analysis, Random Fields And Dynamic Monte Carlo Methods

A Mathematical Introduction

by Gerhard Winkler

Property Description
ISBN: 9783642975226
Publisher: Springer Berlin Heidelberg
Release Date: December of 2012
Language: English
Format: eBook
File Format and Compatibility: PDF para ADE
Collection: Stochastic Modelling And Applied Probability
Categories: eBooks in English > Science > Mathematics
eBooks in English > Medicine > General Medicine
EAN: 9783642975226