DocumentCode :
2233451
Title :
Modeling the Network of Loyalty-Profit Chain In Chemical Industry
Author :
Lee, Carl ; Rey, Tim ; Tabolina, Olga ; Mentele, James ; Pletcher, Tim
Author_Institution :
Central Michigan Univ., Mount Pleasant, MI
fYear :
2006
fDate :
10-12 July 2006
Firstpage :
492
Lastpage :
499
Abstract :
This article presents a technique, namely, structured neural network, to model the network of cause-and-effect relationships of the loyalty-profit chain for a chemical industry. A comparison between the structured neural network, the traditional neural network and regression models is presented. It is concluded that a strictly empirical modeling approach is not satisfactory when modeling a complex network. It is crucial to take the contextual knowledge and/or theoretical framework into consideration
Keywords :
cause-effect analysis; chemical industry; neural nets; profitability; cause-effect relationship; chemical industry; complex network modeling; contextual knowledge; loyalty-profit chain; regression model; structured neural network; Chemical industry; Companies; Complex networks; Costs; Customer satisfaction; Electronic mail; Intelligent networks; Marketing and sales; Neural networks; Predictive models;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computer and Information Science, 2006 and 2006 1st IEEE/ACIS International Workshop on Component-Based Software Engineering, Software Architecture and Reuse. ICIS-COMSAR 2006. 5th IEEE/ACIS International Conference on
Conference_Location :
Honolulu, HI
Print_ISBN :
0-7695-2613-6
Type :
conf
DOI :
10.1109/ICIS-COMSAR.2006.62
Filename :
1652038
Link To Document :
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