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Output uncertainty score for decision making processes using interval type-2 fuzzy systems

journal contribution
posted on 2017-10-01, 00:00 authored by Syed Salaken, Abbas KhosraviAbbas Khosravi, Thanh Thi NguyenThanh Thi Nguyen, Saeid Nahavandi
Fuzzy decision support systems are proven to be very effective in imprecise and incomplete environment. However, the amount of uncertainty associated with the output of these fuzzy systems is never quantified and utilized in decision making process. A new percentage score based tool is introduced in this work to capture this valuable information. By utilizing this tool, it is possible to interpret the confidence of the mechanism on its final recommendation. This allows for the enhancement of information quality and preservation of the uncertainty throughout the decision making chain. Several properties of the proposed output uncertainty score is discussed and proved. Experimentation on real dataset reveals that the output uncertainty depends on the summation of input uncertainty, but does not correlate with prediction accuracy when used in forecasting system.

History

Journal

Engineering applications of artificial intelligence

Volume

65

Pagination

159 - 167

Publisher

Elsevier

Location

Amsterdam, The Netherlands

ISSN

0952-1976

Language

eng

Publication classification

C1.1 Refereed article in a scholarly journal

Copyright notice

2017, Elsevier