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Erschienen in: Granular Computing 3/2019

16.10.2018 | Original Paper

Probabilistic decision making based on rough sets in interval-valued fuzzy information systems

verfasst von: Derong Shi, Xiaoyan Zhang

Erschienen in: Granular Computing | Ausgabe 3/2019

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Abstract

At present, the representative and hot research is three-way decision based on rough set theory. In addition, this topic has been applied in wide variety of specific. In the article, we aim to discuss the rough set method of decision theory in the background of interval-valued fuzzy information systems (IVFIS). First, the main work is to transform the IVFIS into two kinds of approximate spaces by the defined relations, which are fuzzy approximation space and interval-valued fuzzy approximation space, respectively. Simultaneously, fuzzy probability and IVF probability are considered in the whole process. Second, we study two kinds of decision-theoretic rough set methods by combining the Bayesian decision process. Finally, based on the above decision-making models, some illustrative examples about the credit evaluation of enterprises are introduced to deal with the real value and interval-valued data. These results show that the rough set method of decision theory we proposed has wider applications than decision-theoretic rough sets (DTRS).

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Metadaten
Titel
Probabilistic decision making based on rough sets in interval-valued fuzzy information systems
verfasst von
Derong Shi
Xiaoyan Zhang
Publikationsdatum
16.10.2018
Verlag
Springer International Publishing
Erschienen in
Granular Computing / Ausgabe 3/2019
Print ISSN: 2364-4966
Elektronische ISSN: 2364-4974
DOI
https://doi.org/10.1007/s41066-018-0139-9

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