DocumentCode :
1696998
Title :
A new approach to risk management using soft information
Author :
Yager, Ronald R. ; Yager, Rachel L.
Author_Institution :
Machine Intell. Inst., Iona Coll., New Rochelle, NY, USA
fYear :
2012
Firstpage :
1
Lastpage :
7
Abstract :
We discuss a new approach to aid in decision making in risky situations. This approach is based on the use of a fuzzy rule based formulation to valuate a decision maker´s preferences. This allows us to model the responsible agents decision function, their attitude with respect to different uncertain risky situations. An important aspect of risky decision-making is the modeling of the uncertainty associated with an alternative. We refer to this as an alternative´s uncertainty profile. In the real world this kind of information can be ill defined and imprecise. We discuss the role of perception based granular probability distributions as a means of modeling the uncertainty profiles of the alternatives. We shown how this can be used to modeling imprecision in our knowledge about the uncertainty associated with an alternative. We provide the necessary formalisms to allow for the evaluation of an alternative using the rule-based description of preferences and granular description of an alternatives uncertainty profile.
Keywords :
decision making; finance; fuzzy set theory; granular computing; knowledge based systems; multi-agent systems; risk management; statistical distributions; uncertainty handling; agents decision function; alternative uncertainty profile granular description; decision maker preferences; financial community; fuzzy rule based formulation; perception based granular probability distributions; preference rule-based description; risk management; risky decision-making; soft information; uncertainty modelling; Cost accounting; Decision making; Firing; Probability distribution; Random variables; Uncertainty; Fuzzy sets; Granular Probability; Rule Base; Uncertainty Profile;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computational Intelligence for Financial Engineering & Economics (CIFEr), 2012 IEEE Conference on
Conference_Location :
New York, NY
ISSN :
PENDING
Print_ISBN :
978-1-4673-1802-0
Electronic_ISBN :
PENDING
Type :
conf
DOI :
10.1109/CIFEr.2012.6327792
Filename :
6327792
Link To Document :
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