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Meta modelling of job satisfaction effective factors for improvement policy making in organizations

机译:工作满意度的元模型,用于组织改进决策的有效因素

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Purpose - The purpose of this paper is to propose a Meta modeling based on regression, neural network, and clustering to analyze the job satisfaction factors and improvement policy making. Design/methodology/approach - Since any job satisfaction evaluation supposes to improve the status by prescribing specific strategies to be performed in the organization, proposing applicable strategies is decisively important. Task demand, social structure and leader-member exchange (LMX) are general applications easily conceptualized while proposing job satisfaction improvement strategies. Findings - On the basis of these empirical findings, the authors first aim to identify relationships between LMX, task demand, social structure and individual factors, organizational factors, job properties, which are easier to be employed in strategy formulation for job satisfaction, and then determine the sub-factors and subsequently cluster them. The effectiveness of the proposed model is verified by a case study. Originality/value - Here, a Meta modeling based on regression, neural network, and clustering is proposed to analyze the job satisfaction factors and improvement policy making.
机译:目的-本文的目的是提出一种基于回归,神经网络和聚类的元建模,以分析工作满意度因素和改进政策制定。设计/方法/方法-由于任何工作满意度评估都旨在通过规定要在组织中执行的特定策略来改善状况,因此,提出适用的策略至关重要。在提出工作满意度改善策略时,任务需求,社会结构和领导者交换(LMX)是容易被概念化的通用应用程序。发现-基于这些经验发现,作者首先旨在确定LMX,任务需求,社会结构与个人因素,组织因素,工作性质之间的关系,这些关系更容易用于工作满意度的战略制定中,然后确定子因素,然后将它们聚类。案例研究验证了所提出模型的有效性。创意/价值-在此,提出了一种基于回归,神经网络和聚类的元模型,以分析工作满意度因素和改进政策制定。

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