DocumentCode :
477743
Title :
The Choquet Integral with Respect to R-Measure Based on Gamma-Support
Author :
Liu, HsiangChuan ; Tu, YuChieh ; Huang, WenChun ; Chen, ChinChun
Author_Institution :
Dept. of Bioinf., Asia Univ., Taichung
Volume :
1
fYear :
2008
fDate :
18-20 Oct. 2008
Firstpage :
645
Lastpage :
649
Abstract :
When the multicollinearity within independent variables occurs in the multiple regression models, its performance will always be poor. Replacing the above models with the ridge regression model is the traditional improved method. In our previous work, we found that, the Choquet integral regression model with lambda-measure based on the new support, gamma-support, proposed by us has the best performance than before. In this study, for finding the further improved model, we replaced two well known fuzzy measures, P-measure and lambda-measure with our new fuzzy measure, R-measure in Choquet integral regression model with the new support, gamma-support. For comparing the Choquet integral regression model with P-measure, lambda-measure and R-measure based on two different fuzzy supports, V-support and gamma-support, respectively, the traditional multiple regression model and the ridge regression model, a real data experiment by using a 5-fold cross-validation mean square error (MSE) is conducted. Experimental result shows that the Choquet integral regression model with R-measure based on gamma-support has the best performance.
Keywords :
fuzzy set theory; mean square error methods; regression analysis; Choquet integral; R-measure; fuzzy measures; gamma-support; mean square error; multicollinearity; multiple regression models; ridge regression model; Asia; Bioinformatics; Conference management; Educational institutions; Fuzzy systems; Knowledge management; Linear regression; Mean square error methods; Medical services; Statistics; Fuzzy measure; R-measure; V-Support; fuzzy support; y-support;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Fuzzy Systems and Knowledge Discovery, 2008. FSKD '08. Fifth International Conference on
Conference_Location :
Shandong
Print_ISBN :
978-0-7695-3305-6
Type :
conf
DOI :
10.1109/FSKD.2008.545
Filename :
4666055
Link To Document :
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