DocumentCode :
1386123
Title :
Labeling of MR brain images using Boolean neural network
Author :
Li, Xiaohong ; Bhide, Shirish ; Kabuka, Mansur R.
Author_Institution :
Center for Med. Imaging & Med. Inf., Coral Gables, FL, USA
Volume :
15
Issue :
5
fYear :
1996
fDate :
10/1/1996 12:00:00 AM
Firstpage :
628
Lastpage :
638
Abstract :
Presents a knowledge-based approach for labeling two-dimensional (2-D) magnetic resonance (MR) brain images using the Boolean neural network (BNN), which has binary inputs and outputs, integer weights, fast learning and classification, and guaranteed convergence. The approach consists of two components: a BNN clustering algorithm and a constraint satisfying Boolean neural network (CSBNN) labeling procedure. The BNN clustering algorithm is developed to initially segment an image into a number of regions. Then the segmented regions are labeled with the CSBNN, which is a modified version of BNN. The CSBNN uses a knowledge base that contains information on image-feature space and tissue models as constraints. The method is tested using sets of MR brain images. The regions of the different brain tissues are satisfactorily segmented and labeled. A comparison with the Hopfield neural network and the traditional simulated annealing method for image labeling is provided. The comparison results show that the CSBNN approach offers a fast, feasible, and reliable alternative to the existing techniques for medical image labeling
Keywords :
Boolean algebra; biomedical NMR; brain; image classification; image segmentation; medical image processing; neural nets; Boolean neural network; Hopfield neural network; MR brain images labeling; binary inputs; binary outputs; clustering algorithm; fast learning; guaranteed convergence; integer weights; knowledge-based approach; magnetic resonance imaging; medical diagnostic imaging; medical image labeling; simulated annealing method; Biological neural networks; Brain; Clustering algorithms; Convergence; Hopfield neural networks; Image segmentation; Labeling; Magnetic resonance; Testing; Two dimensional displays;
fLanguage :
English
Journal_Title :
Medical Imaging, IEEE Transactions on
Publisher :
ieee
ISSN :
0278-0062
Type :
jour
DOI :
10.1109/42.538940
Filename :
538940
Link To Document :
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