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Tackling Complexity in Green Contractor Selection for Mega Infrastructure Projects: A Hesitant Fuzzy Linguistic MADM Approach with considering Group Attitudinal Character and Attributes’ Interdependency

机译:大型基础设施项目绿色承包商选择中的复杂性:考虑群体态度特征和属性的相互依赖性的犹豫模糊语言MADM方法

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Continuous environmental concerns regarding construction industry have been driving general constructors of mega infrastructure projects to incorporate green contractors. Although conventional multiple attributes decision-making (MADM) methodologies have provided feasible ways to select contractor, high complexity in scenarios of megaprojects still challenges existing MADM methods in concurrently accommodating three key issues of decision hesitancy, attributes interdependency, and group attitudinal character. To elicit decision-makers’ hesitant fuzzy assessments more objectively and comprehensively, we define an expression tool called interval-valued dual hesitant fuzzy uncertain unbalanced linguistic set (IVDHF_UUBLS) and develop aggregation operators through its operations. To exploit attributes interdependency, we establish a synthesized attributes’ weighting model to fuse an attributes interdependency-based weighting vector and an argument-dependent weighting vector, which are, respectively, derived through Decision-Making and Trial Evaluation Laboratory (DEMATEL) technique and maximizing deviation method. To effectively utilize decision-makers’ group attitudinal characters, we also develop a TOPSIS-based method to rationally transform group ideal attitudes into order-inducing vectors. On the strength of the above methods, an integrated MADM approach is then constructed. Finally, illustrative case study and experiments are conducted to validate our approach.
机译:有关建筑业的持续环境关注一直在推动大型基础设施项目的一般建设者纳入绿色承包商。尽管常规的多属性决策(MADM)方法提供了选择承包商的可行方法,但是大型项目场景中的高复杂度仍然在挑战决策犹豫,属性相互依存和群体态度特征这三个关键问题时挑战了现有的MADM方法。为了更客观,更全面地引起决策者的犹豫不决的模糊评估,我们定义了一种表达工具,称为区间值对偶犹豫不定模糊不确定不平衡语言集(IVDHF_UUBLS),并通过其运算开发聚集算子。为了利用属性的相互依赖关系,我们建立了一个综合的属性加权模型,以融合基于属性相互依赖的加权向量和基于参数的加权向量,它们分别通过决策和试验评估实验室(DEMATEL)技术推导并最大化偏差法。为了有效地利用决策者的群体态度特征,我们还开发了一种基于TOPSIS的方法,将群体理想态度合理地转化为诱发秩序的向量。利用上述方法的优势,然后构建了集成的MADM方法。最后,通过示例性案例研究和实验来验证我们的方法。

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