DocumentCode :
2542299
Title :
Dynamic Estimation of Curve Evolution in Image Segmentation with CRFs Label Inferring
Author :
Luo, Tong ; Chen, Yuquan ; Li, Jianfeng ; Li, Jianhua
Author_Institution :
Med. Electron & Inf. Dept., Univ. of Shanghai for Sci. & Technol., Shanghai, China
fYear :
2009
fDate :
4-6 Nov. 2009
Firstpage :
1
Lastpage :
5
Abstract :
Typical low level segmentation method like level set method can be explained in maximum a posteriori estimation (MAP) for pixel label. In this paper, CRFs model is introduced in label estimation combined with level set to produce fast low level process and accurate high level inference. The energy term in level set evolution is also extended to contain object spatial factors, gradient is provided as the spatial updating basis, besides the temporal characteristic in curve evolution. Unlike simple CRFs model, a feedback machinery is imported in parameters learning, the reasons lie in the fact that CRFs could has small sample size and its modeling approach is mainly rely on model structure, but image patch is a typical local feature which is not directly applied into. With image patch used in the feedback, the accuracy of learning can be improved. At last, energy function is extended to allow complicated multiple regions competition, the local features is merged in the process.
Keywords :
feedback; image segmentation; maximum likelihood estimation; conditional random field label inferring; curve evolution; dynamic estimation; feedback machinery; image segmentation; label estimation; level set evolution; level set method; low level segmentation method; maximum a posteriori estimation; parameters learning; pixel label; Bayesian methods; Biomedical imaging; Educational institutions; Electrons; Feedback; Image segmentation; Instruments; Labeling; Level set; Maximum a posteriori estimation;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Pattern Recognition, 2009. CCPR 2009. Chinese Conference on
Conference_Location :
Nanjing
Print_ISBN :
978-1-4244-4199-0
Type :
conf
DOI :
10.1109/CCPR.2009.5344062
Filename :
5344062
Link To Document :
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