Chee, Peng Lim, Harrison, R.F. and Kennedy, R. Lee. (1996) Application of Autonomous Neural Networks Systems to Medical Pattern Classification Tasks. Research Report. ACSE Research Report 652 . Department of Automatic Control and Systems Engineering
Abstract
This paper presents a study of the application of autonomously learning multiple neural network systems to medical pattern classification tasks. In our earlier work, a hybrid neural network architecture has been developed for on-line learning and probability estimation tasks. The network has been shown to be capable of asymptotically achieving the Bayes optimal classification rates, on-line, in a number of benchmark classification experiments. In the context of pattern classification, however, the concept of multiple classifier systems has been proposed to improve the performance of a single classifier. Thus, three decision combination algorithms have been implemented to produce a multiple neural network classifier system. Here the applicability of the system is assessed using patient records in two medical domains. The first task is the prognosis of patients admitted to coronary care units: whereas the second is the prediction of survival in trauma patients. The results are compared with those from logistic regression models and implications of the system as a useful clinical diagnostic tool are discussed.
Metadata
Item Type: | Monograph |
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Authors/Creators: |
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Copyright, Publisher and Additional Information: | The Department of Automatic Control and Systems Engineering research reports offer a forum for the research output of the academic staff and research students of the Department at the University of Sheffield. Papers are reviewed for quality and presentation by a departmental editor. However, the contents and opinions expressed remain the responsibility of the authors. Some papers in the series may have been subsequently published elsewhere and you are advised to cite the later published version in these instances. |
Keywords: | Multiple neural network classifiers, Pattern classification, Bayesian decision on-line learning, Decision support systems, Medical diagnosis and prognosis. |
Dates: |
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Institution: | The University of Sheffield |
Academic Units: | The University of Sheffield > Faculty of Engineering (Sheffield) > Department of Automatic Control and Systems Engineering (Sheffield) > ACSE Research Reports |
Depositing User: | MRS ALISON THERESA BARNETT |
Date Deposited: | 08 Oct 2014 10:52 |
Last Modified: | 27 Mar 2018 21:27 |
Status: | Published |
Publisher: | Department of Automatic Control and Systems Engineering |
Series Name: | ACSE Research Report 652 |
Open Archives Initiative ID (OAI ID): | oai:eprints.whiterose.ac.uk:80877 |