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Improved Decision Neural Network (IDNN) based consensus method to solve a multi-objective group decision making problem

机译:基于改进决策神经网络(IDNN)的共识方法解决多目标群体决策问题

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摘要

Multi-criterion frameworks involving several subjective and quantitative factors that allow the complexity of Group Decision Making (GDM) to get worsen, especially for those problems which are having strategic dimensions. Recently, integration of multi-attribute utility theory (MAUT) and feed-forward neural network have been studied with a view to facilitate the automation of GDM. In this paper Improved Decision Neural Network (IDNN) based methodology has been developed to solve the multi-criterion decision problem in GDM. Reductions in the training data set, exploitation of indirect methods like multiplicative preference relation during the training process, and reduced number of iterations to map the MAUF are the advantages of this novel methodology. In this research, a soft consensus based group decision making methodology under linguistic assessments have been adopted for consensus forming among the groups.
机译:涉及多个主观和定量因素的多标准框架,会使团队决策(GDM)的复杂性恶化,尤其是对于那些具有战略意义的问题。最近,为了促进GDM的自动化,已经研究了多属性效用理论(MAUT)和前馈神经网络的集成。本文提出了一种基于改进决策神经网络(IDNN)的方法来解决GDM中的多准则决策问题。减少训练数据集,在训练过程中利用间接方法(例如乘法偏好关系)以及减少映射MAUF的迭代次数,都是这种新颖方法的优势。在这项研究中,采用了基于语言评估的基于软共识的群体决策方法,以在群体之间形成共识。

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