DocumentCode :
2442942
Title :
Pyramidal neural networking for mammogram tumour pattern recognition
Author :
Xing, Guoxin ; Feltham, Richard
Author_Institution :
Wakefield Radiol. Ltd., Wellington, New Zealand
Volume :
6
fYear :
1994
fDate :
27 Jun- 2 Jul 1994
Firstpage :
3546
Abstract :
There has been much interest recently in developing neural networks to solve complicated information processing problems such as automatic diagnosis of X-ray mammograms. In New Zealand we are investigating a pyramidal neural network and adaptive contrast enhancement image processing technique for developing a knowledge-system for medical image interpretation. In this paper, we present the pyramidal network architecture with experimental breast cancer tumour pattern mapping results. The pyramidal network configuration has overcome the problem of hidden layer size. To facilitate the learning we introduce a novel method of standard coding mechanism by using local overlapping and minimum value thresholding. The outcome of this unique mapping is promising in designing a useful expert system
Keywords :
image enhancement; image recognition; knowledge based systems; medical diagnostic computing; medical image processing; neural nets; X-ray mammograms; adaptive contrast enhancement image processing; automatic diagnosis; breast cancer tumour; coding; knowledge based system; learning; local overlapping; mammogram tumour; medical image interpretation; minimum value thresholding; pattern recognition; pyramidal neural network; Adaptive systems; Biomedical imaging; Breast cancer; Image coding; Image processing; Information processing; Medical diagnostic imaging; Neural networks; Tumors; X-ray imaging;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Neural Networks, 1994. IEEE World Congress on Computational Intelligence., 1994 IEEE International Conference on
Conference_Location :
Orlando, FL
Print_ISBN :
0-7803-1901-X
Type :
conf
DOI :
10.1109/ICNN.1994.374906
Filename :
374906
Link To Document :
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