A Personalized Individual Semantic Extraction Model Based on Criterion for Adaptive Consensus Reaching Process Under Improved Basic Uncertain Linguistic Environment

Meng-Meng Zhu, Junjun Mao, Wei Xu
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Abstract

Personalized individual semantics (PIS) is an important factor reflecting the personal habits of decision makers (DMs) and has been widely studied by scholars. Using criteria as a non-negligible information source in multi-criteria group decision making (MCGDM), how to extract PIS from it is a research gap to be solved. In addition, existing measurements of consensus are insufficiently sensitive to differences between individuals, while the current direction rules use a matrix as the unit of measurement, which is not detailed and precise enough. Therefore, this paper first constructs a PIS extraction model according to the principle that similar criteria have similar descriptions and mutually exclusive criteria have dissimilar descriptions. Secondly, the preference information of PIS is mingled with uncertainty and reliability of improved basic uncertain linguistic information (IBULI) as the data of the consensus reaching algorithm. The proposed consensus algorithm not only fully considers the dispersion of DMs in the consensus measurement stage, but also improves the objectivity of the consensus process through an adaptive feedback stage. Finally, the validity of the proposed model is verified by an example and comparative analysis of the selection of sustainable building materials.
改进的基本不确定语言环境下基于准则的个性化个性化语义提取模型
个性化个体语义(PIS)是反映决策者个人习惯的重要因素,受到学者们的广泛研究。在多准则群决策中,准则作为一个不可忽略的信息源,如何从中提取决策信息是一个有待解决的研究空白。此外,现有的共识度量对个体之间的差异不够敏感,而目前的方向规则使用矩阵作为度量单位,不够详细和精确。因此,本文首先根据相似准则具有相似描述,互斥准则具有不同描述的原则构建了PIS提取模型。其次,将PIS的偏好信息与改进的基本不确定语言信息(IBULI)的不确定性和可靠性混合作为共识达成算法的数据;所提出的共识算法不仅在共识度量阶段充分考虑了dm的离散性,而且通过自适应反馈阶段提高了共识过程的客观性。最后,通过可持续建筑材料选择的实例和对比分析,验证了该模型的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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