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Journal ArticleDOI

Approximate Reasoning on a Basis of Z -Number-Valued If–Then Rules

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TLDR
A new approach is developed to study approximate reasoning with Zadeh rules on a basis of linear interpolation to provide an application of the approach to job satisfaction evaluation and to students’ educational achievement evaluation problems related to psychological and perceptual issues naturally characterized by imperfect information.
Abstract
Approximate reasoning is about reasoning with imperfect information. Nowadays, a large diversity of approaches to approximate reasoning with fuzzy information and fuzzy type-2 information exists. It should be stressed, however, that real-world imperfect information is characterized by combination of fuzzy and probabilistic uncertainties, which is referred to as bimodal information. In view of this, Zadeh introduced the concept of a Z -number regarded as an ordered pair Z = ( A , B ) of fuzzy numbers A and B , where A is a linguistic value of a variable of interest, and B is a linguistic value of probability measure of A , playing a role of its reliability. Unfortunately, up to day, there is no research on approximate reasoning realized on the basis of if–then rules with Z -number-valued antecedents and consequents, briefly, Z- rules. Zadeh addressed this problem as related to an uncharted territory. In this paper, a new approach is developed to study approximate reasoning with Z- rules on a basis of linear interpolation. We provide an application of the approach to job satisfaction evaluation and to students’ educational achievement evaluation problems related to psychological and perceptual issues naturally characterized by imperfect information. The obtained results show applicability and validity of the proposed approach.

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Citations
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Journal ArticleDOI

A Novel Z -Network Model Based on Bayesian Network and Z -Number

TL;DR: A novel framework of dependence assessment in human reliability analysis is proposed based on Z
Journal ArticleDOI

A Multicriteria Group Decision-Making Method Based on the Normal Cloud Model With Zadeh's Z -Numbers

TL;DR: An innovative method for addressing multicriteria group decision-making (MCGDM) problems with Z-numbers under the condition that the weight information is completely unknown is developed.
Journal ArticleDOI

A Method of Measuring Uncertainty for Z-Number

TL;DR: A new uncertainty measure of fuzzy set is developed considering the influence of fuzziness measure and the range (or cardinality) of the fuzzy set and method of measuring the uncertainty of Z-number is proposed.
Journal ArticleDOI

Z-VIKOR Method Based on a New Comprehensive Weighted Distance Measure of Z-Number and Its Application

TL;DR: The classic VlseKriterijum-ska Optimizacija I Kompromisno Resenje (VIKOR) method is suggested to extend to the Z-information environment and the proposed distance measure is suggested, which is convenient and effective for the direct computation of Z-numbers.
Journal ArticleDOI

Generating Z-number based on OWA weights using maximum entropy

TL;DR: Results show that the attitude (preference) of the decision maker can give an optimal possibility distribution of the reliability for Z‐number using maximum entropy.
References
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Book

Fuzzy sets

TL;DR: A separation theorem for convex fuzzy sets is proved without requiring that the fuzzy sets be disjoint.
Journal ArticleDOI

The concept of a linguistic variable and its application to approximate reasoning—II☆

TL;DR: Much of what constitutes the core of scientific knowledge may be regarded as a reservoir of concepts and techniques which can be drawn upon to construct mathematical models of various types of systems and thereby yield quantitative information concerning their behavior.
Journal ArticleDOI

Outline of a New Approach to the Analysis of Complex Systems and Decision Processes

TL;DR: By relying on the use of linguistic variables and fuzzy algorithms, the approach provides an approximate and yet effective means of describing the behavior of systems which are too complex or too ill-defined to admit of precise mathematical analysis.
Journal ArticleDOI

Probability measures of Fuzzy events

TL;DR: In probability theory, an event, A, is a member of a a-field, CY, of subsets of a sample space ~2, where CY is any collection of disjoint events.
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