DocumentCode :
3495455
Title :
Eclectic extraction of propositional rules from Neural Networks
Author :
Iqbal, Ridwan AI
Author_Institution :
Dept. of Comput. Sci., American Int. Univ.-Bangladesh, Dhaka, Bangladesh
fYear :
2011
fDate :
22-24 Dec. 2011
Firstpage :
234
Lastpage :
239
Abstract :
Artificial Neural Network is among the most popular algorithm for supervised learning. However, Neural Networks have a well-known drawback of being a “Black Box” learner that is not comprehensible to the Users. This lack of transparency makes it unsuitable for many high risk tasks such as medical diagnosis that requires a rational justification for making a decision. Rule Extraction methods attempt to curb this limitation by extracting comprehensible rules from a trained Network. Many such extraction algorithms have been developed over the years with their respective strengths and weaknesses. They have been broadly categorized into three types based on their approach to use internal model of the Network. Eclectic Methods are hybrid algorithms that combine the other approaches to attain more performance. In this paper, we present an Eclectic method called HERETIC. Our algorithm uses Inductive Decision Tree learning combined with information of the neural network structure for extracting logical rules. Experiments and theoretical analysis show HERETIC to be better in terms of speed and performance.
Keywords :
decision trees; feedforward neural nets; learning (artificial intelligence); multilayer perceptrons; HERETIC eclectic method; artificial neural network; black box learning; eclectic extraction; feedforward neural network; hierarchical and eclectic rule extraction via tree induction and combination; inductive decision tree learning; logical rule extraction; medical diagnosis; multilayer perceptrons; propositional rule extraction; rule extraction method; supervised learning; Artificial neural networks; Irrigation; Decision Trees; Eclectic Method; Neural Networks; Rule Extraction;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computer and Information Technology (ICCIT), 2011 14th International Conference on
Conference_Location :
Dhaka
Print_ISBN :
978-1-61284-907-2
Type :
conf
DOI :
10.1109/ICCITechn.2011.6164790
Filename :
6164790
Link To Document :
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