DocumentCode :
351112
Title :
A new two-feature GBAM-neurodynamical classifier for breast cancer diagnosis
Author :
Ivancevic, Tijana ; Jain, Lakhmi ; Bottema, Murk
Author_Institution :
Dept. of Appl. Math., Adelaide Univ., SA, Australia
fYear :
1999
fDate :
36495
Firstpage :
296
Lastpage :
299
Abstract :
Like standard discrete artificial neural networks (ANNs), continual neurodynamical systems can be used for the classification and diagnosis of breast cancer. In this paper, a two-feature generalized bidirectional associative memory (GBAM) classifier is formulated in tensorial invariant form. It is implemented in Mathematica 3.0 and tested on two sample features (the radius and perimeter of cell nuclei in fine-needle aspiration slides) from the Wisconsin breast-cancer database. The classification accuracy obtained (86%), together with the invariance of the classification result upon the variation of the dimensions and output form of the neural activation fields, shows the potential classification ability of theoretical classifiers that are directly implemented in computer algebra systems
Keywords :
cancer; content-addressable storage; generalisation (artificial intelligence); image classification; invariance; mammography; medical image processing; neural nets; symbol manipulation; tensors; Mathematica 3.0; Wisconsin breast-cancer database; breast cancer diagnosis; cell nucleus perimeter; cell nucleus radius; classification accuracy; computer algebra systems; continual neurodynamical systems; fine-needle aspiration slides; generalized bidirectional associative memory; invariance; neural activation fields; neural networks; tensorial invariant form; two-feature GBAM-neurodynamical classifier; Artificial neural networks; Australia; Breast cancer; Breast neoplasms; Cancer detection; Diseases; Intelligent networks; Intelligent sensors; Intelligent systems; Mathematics;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Knowledge-Based Intelligent Information Engineering Systems, 1999. Third International Conference
Conference_Location :
Adelaide, SA
Print_ISBN :
0-7803-5578-4
Type :
conf
DOI :
10.1109/KES.1999.820182
Filename :
820182
Link To Document :
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