Volume 5 Number 1 (Jan. 2010)
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JCP 2010 Vol.5(1): 40-48 ISSN: 1796-203X
doi: 10.4304/jcp.5.1.40-48

Recurrent Neural Network Classifier for Three Layer Conceptual Network and Performance Evaluation

Md. Khalilur Rhaman1 and Tsutomu Endo2
1 Department of Computer Science and Engineering, BRAC University, 66 Mohakhali, Dhaka-1212, Bangladesh.
2 Kyushu Institute of Technology, 680-4 Kawazu, Iizuka, Fukuoka, 820-8502, Japan.


Abstract—Natural language has traditionally been handled using symbolic computation and recursive processes. Classification of natural language by using neural network is a hard problem. Past few years several recurrent neural network (RNN) architectures have emerged which have been used for several smaller natural language problems. In this paper, we adopt Elman RNN classifier for disease classification for a doctor patient-dialog system. We find that the Elman RNN is able to find a representation for natural language. Contextual analysis in dialog is also a major problem. A three layers memory structure was adopted to address the challenge which we referred to as ”Three Layer Conceptual Network” (TLCN). This highly efficient network simulates the human brain by discourse information. An extended case structure framework is used to represent the knowledge. We used the same case frame structure to train and examine the RNN classifier. This system prototype is based on doctor-patients dialogs. The over all system performance achieved 84% accuracy. Disease identification accuracy depends on number of disease and number of utterances. The performance evaluation is also discussed in this paper.

Index Terms—Three Layer Conceptual Network, Knowledge Representation, Recurrent Neural Network.

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Cite: Md. Khalilur Rhaman and Tsutomu Endo, " Recurrent Neural Network Classifier for Three Layer Conceptual Network and Performance Evaluation," Journal of Computers vol. 5, no. 1, pp. 40-48, 2010.

General Information

ISSN: 1796-203X
Abbreviated Title: J.Comput.
Frequency: Bimonthly
Editor-in-Chief: Prof. Liansheng Tan
Executive Editor: Ms. Nina Lee
Abstracting/ Indexing: DBLP, EBSCO,  ProQuest, INSPEC, ULRICH's Periodicals Directory, WorldCat,etc
E-mail: jcp@iap.org
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