A comparative analysis of probabilistic linguistic preference relations and distributed preference relations for decision making

IF 4.8 2区 计算机科学 Q1 COMPUTER SCIENCE, ARTIFICIAL INTELLIGENCE Fuzzy Optimization and Decision Making Pub Date : 2021-04-20 DOI:10.1007/s10700-021-09357-w
Min Xue, Chao Fu, Shanlin Yang
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引用次数: 6

Abstract

When a decision-maker prefers to compare different alternatives in pairs to handle real situations, there are many different expression styles that can be used. Two representative expression styles are the probabilistic linguistic preference relation (PLPR), which originates from the fuzzy linguistic approach and the distributed preference relation (DPR), which originates from the evidential reasoning approach. Although these two expression styles look quite similar, their meanings, operations, and relevant decision making processes are significantly different. This presents the decision-maker with the challenge of selecting either PLPRs or DPRs in different real cases. To address this issue, this paper provides a detailed analysis of the similarities and differences between PLPRs and DPRs. The analysis is conducted from five perspectives, including modeling of decision making problems, handling of uncertainty, consistency between preference relations, information aggregation, and elicitation process. An engineer selection problem for an automobile manufacturing enterprise is investigated to demonstrate how to appropriately select PLPRs or DPRs to model and analyze decision making problems in real situations with consideration for the preferences of decision-makers.

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概率语言偏好关系与分布偏好关系在决策中的比较分析
当一个决策者喜欢成对比较不同的选择来处理实际情况时,有许多不同的表达风格可以使用。两种具有代表性的表达方式是源于模糊语言方法的概率语言偏好关系(PLPR)和源于证据推理方法的分布式偏好关系(DPR)。虽然这两种表达方式看起来很相似,但它们的含义、操作和相关的决策过程却有很大的不同。这给决策者提出了在不同实际情况下选择plpr或dpr的挑战。为了解决这一问题,本文详细分析了plpr与DPRs的异同。从决策问题建模、不确定性处理、偏好关系一致性、信息聚合和启发过程五个角度进行分析。以某汽车制造企业的工程师选择问题为研究对象,探讨如何在考虑决策者偏好的情况下,合理选择plpr或dpr来建模和分析实际情况下的决策问题。
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来源期刊
Fuzzy Optimization and Decision Making
Fuzzy Optimization and Decision Making 工程技术-计算机:人工智能
CiteScore
11.50
自引率
10.60%
发文量
27
审稿时长
6 months
期刊介绍: The key objective of Fuzzy Optimization and Decision Making is to promote research and the development of fuzzy technology and soft-computing methodologies to enhance our ability to address complicated optimization and decision making problems involving non-probabilitic uncertainty. The journal will cover all aspects of employing fuzzy technologies to see optimal solutions and assist in making the best possible decisions. It will provide a global forum for advancing the state-of-the-art theory and practice of fuzzy optimization and decision making in the presence of uncertainty. Any theoretical, empirical, and experimental work related to fuzzy modeling and associated mathematics, solution methods, and systems is welcome. The goal is to help foster the understanding, development, and practice of fuzzy technologies for solving economic, engineering, management, and societal problems. The journal will provide a forum for authors and readers in the fields of business, economics, engineering, mathematics, management science, operations research, and systems.
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