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ON MARKOV RANDOM FIELD MODELS FOR SEGMENTATION OF NOISY IMAGES
作者姓名:Kuang  Jinyu  Zhu  Junxiu
作者单位:Department of Radio-Electronics,Beijing Normal University,Beijing 100875
基金项目:Supported by the National Natural Science Foundation of China
摘    要:Markov random field(MRF) models for segmentation of noisy images are discussed. According to the maximum a posteriori criterion, a configuration of an image field is regarded as an optimal estimate of the original scene when its energy is minimized. However, the minimum energy configuration does not correspond to the scene on edges of a given image, which results in errors of segmentation. Improvements of the model are made and a relaxation algorithm based on the improved model is presented using the edge information obtained by a coarse-to-fine procedure. Some examples are presented to illustrate the applicability of the algorithm to segmentation of noisy images.


On Markov random field models for segmentation of noisy images
Kuang Jinyu Zhu Junxiu.ON MARKOV RANDOM FIELD MODELS FOR SEGMENTATION OF NOISY IMAGES[J].Journal of Electronics,1996,13(1):31-39.
Authors:Kuang Jinyu  Zhu Junxiu
Institution:(1) Department of Radio-Electronics, Beijing Normal University, 100875 Beijing
Abstract:Markov random field(MRF) models for segmentation of noisy images are discussed. According to the maximum a posteriori criterion, a configuration of an image field is regarded as an optimal estimate of the original scene when its energy is minimized. However, the minimum energy configuration does not correspond to the scene on edges of a given image, which results in errors of segmentation. Improvements of the model are made and a relaxation algorithm based on the improved model is presented using the edge information obtained by a coarse-to- fine procedure. Some examples are presented to illustrate the applicability of the algorithm to segmentation of noisy images.
Keywords:Markov random field  Gibbs distribution  Edge detection  Relaxation algorithm  Image segmentation
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