DocumentCode :
121638
Title :
Integration of rule based and case based reasoning system to support decision making
Author :
Verma, L. ; SRINIVASAN, SUDARSHAN ; Sapra, Varun
Author_Institution :
Sch. of Comput.& Eng., ITM Univ., Gurgaon, India
fYear :
2014
fDate :
7-8 Feb. 2014
Firstpage :
106
Lastpage :
108
Abstract :
Augmented by rule based reasoning and data mining method, case-based reasoning (CBR) has emerged as a major research area because CBR is not only a psychological theory for human knowledge, but also will be a new comer stone of the intelligent computer system technology. This paper focuses on the coalition between the research areas of Data Mining, CBR System and decision support systems (DSSs). A conceptual framework model for DSSs based on Data mining and CBR is elaborated here. The model consists of a knowledge base, case base reasoning and data mining subsystems. For our research we chose knowledge driven model because the model has capacity to self-learn, identify association between data, classifying and clustering of the data based on the characteristics, suggest recommended actions to users, all these factors incorporate intelligence into the system thus increasing the capacity of problem solving and improve suggestion accuracy.
Keywords :
case-based reasoning; data mining; decision making; decision support systems; knowledge based systems; pattern classification; pattern clustering; sensor fusion; CBR; DSS; case based reasoning system; data association identification; data classification; data clustering; data mining method; decision making; decision support systems; knowledge driven model; problem solving; rule based reasoning system; Artificial intelligence; Cognition; Data mining; Data models; Engines; Reliability; Case Based Reasoning; Data Mining; Decision Support System; Rule Based System;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Issues and Challenges in Intelligent Computing Techniques (ICICT), 2014 International Conference on
Conference_Location :
Ghaziabad
Type :
conf
DOI :
10.1109/ICICICT.2014.6781260
Filename :
6781260
Link To Document :
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