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Fuzzy Boost Classifier of Decision Experts for Multicriteria Group Decision-Making

机译:多铁路集团决策决策专家的模糊提升分类器

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The expert is a vital role in multicriteria decision-making, which provides source decision opinions. In the existing group decision-making activities, the selection of experts is usually conducted artificially, which relies on personal subjective experience. It has been the urgent demand for an automatic selection of experts, which can help to determine their weights for the follow-up decision calculation. In this paper, an expert classification method is proposed to solve the problem. First, the CatBoost classification algorithm is improved by integrating the 2-tuple linguistic, which can effectively extract the features of samples. Second, the framework of the expert classification is designed. The flow combines the expert resume collection, expert classification, and database update. Third, a decision-making case is analyzed for the expert selection issue. The experiment and result indicate that the proposed classifier performs better than the classic methods. The proposed classification method of the decision experts can support the automatic and intelligent operation of the decision-making activities.
机译:专家对多铁路决策中的一个至关重要的作用,提供了源决策意见。在现有的集团决策活动中,专家的选择通常是人为进行的,依赖于个人主观经验。这是对自动选择专家的迫切需求,这有助于确定其后续决策计算的重量。本文提出了一种专家分类方法来解决问题。首先,通过集成2元组语言来改善Catboost分类算法,这可以有效地提取样本的特征。其次,设计了专家分类的框架。该流程结合了专家恢复集合,专家分类和数据库更新。第三,分析了专家选择问题的决策案例。实验和结果表明,所提出的分类器比经典方法更好。决策专家的拟议分类方法可以支持决策活动的自动和智能运行。

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