DocumentCode :
2798517
Title :
A Semantic Modeling Approach for Medical Image Semantic Retrieval Using Hybrid Bayesian Networks
Author :
Lin, Chun-Yi ; Yin, Jun-Xun ; Gao, Xue ; Chen, Jian-Yu ; Qin, Pei
Author_Institution :
Coll. of Electron. & Inf. Eng., South China Univ. of Tech., Guangzhou
Volume :
2
fYear :
2006
fDate :
16-18 Oct. 2006
Firstpage :
482
Lastpage :
487
Abstract :
A multi-level semantic modeling method, which integrates support vector machines (SVM) into hybrid Bayesian networks (HBN), is proposed in this paper. SVM discretizes the continuous variables of medical image features by classifying them into finite states as middle-level semantics. Based on the HBN, the semantic model for medical image semantic retrieval can be designed at multi-level semantics. To validate the method, a model is built to achieve automatic image annotation at the content level from a small set of astrocytona MRI (magnetic resonance imaging) samples. Multi-level annotation is a promising solution to enable medical image retrieval at different semantic levels. Experiment results show that this approach is very effective to enable multi-level interpretation of astrocytona MRI scan. It outperforms the Bayesian network-based model using k-nearest neighbor classifiers (K-NN). This study provides a novel way to bridge the gap between the high-level semantics and the low-level image features
Keywords :
belief networks; biomedical MRI; image retrieval; medical image processing; pattern classification; support vector machines; astrocytona MRI sample; automatic image annotation; hybrid Bayesian networks; k-nearest neighbor classifiers; medical image semantic retrieval; semantic modeling; support vector machines; Bayesian methods; Biomedical imaging; Cancer; Hidden Markov models; Image retrieval; Magnetic resonance imaging; Medical diagnostic imaging; Neoplasms; Support vector machine classification; Support vector machines;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Intelligent Systems Design and Applications, 2006. ISDA '06. Sixth International Conference on
Conference_Location :
Jinan
Print_ISBN :
0-7695-2528-8
Type :
conf
DOI :
10.1109/ISDA.2006.253884
Filename :
4021711
Link To Document :
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