Markov Random Field Modeling in Computer Vision

S. Z. Li (Autor)

XVI, 264 Seiten
1995
Springer Berlin (Hersteller)
978-3-540-70145-3 (ISBN)

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This text presents a study on using MRFs to solve computer vision problems, covering areas such as: introduction to fundamental theories; formulations of various vision models in the MRF framework; MRF parameter estimation; and optimization algorithms.

Markov random field (MRF) modelling provides a basis for the characterization for contextual constraints on visual interpretation which allows for development of optimal vision algorithms systematically based on sound principles. This text presents a study on using MRFs to solve computer vision problems, covering areas such as: introduction to fundamental theories; formulations of various vision models in the MRF framework; MRF parameter estimation; and optimization algorithms. Various MRF vision models are presented in a unified form, including image restoration and reconstruction, edge and region segmentation, texture, stereo and motion, object matching and recognition, and pose estimation. This book should be a useful reference for researchers working in computer vision, image processing, pattern recognition and applications of MRFs.
Reihe/Serie Computer Science Workbench
Zusatzinfo 72 figs.
Sprache englisch
Gewicht 560 g
Einbandart gebunden
Schlagworte Bildanalyse (EDV) • Computer Science Workbench • Markov-Prozesse • Zufall / Random (Statistik) • Zufall (Statistik)
ISBN-10 3-540-70145-1 / 3540701451
ISBN-13 978-3-540-70145-3 / 9783540701453
Zustand Neuware
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