利用神经网络将人力资源管理实践与企业绩效联系起来

Shedrack Mbithi Mutua
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摘要

本文研究人力资源管理实践(HRM)与绩效之间的关系。本文阐述了如何利用人工神经网络(ANN)来分析人力资源管理绩效环节中因变量和自变量之间的关系。使用社会科学统计软件包(SPSS)生成人工神经网络。它认为人力资源管理研究应该利用可用的统计广度,包括数据科学统计。本研究采用实证主义研究范式、描述-解释研究设计及问卷调查方法。数据收集采用问卷调查。研究发现,人力资源管理实践在预测财务和非财务绩效方面很重要。人力资源管理实践之间的协同关系也被发现可以预测肯尼亚金融合作社的财务和非财务绩效。除了探索人力资源管理的独立变量,他们的相互关系必须探索和文献报道。
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Linking Human Resource Management Practices and Firms' Performance Using Neural Networks
This paper investigates relationship between human resource management practices (HRM) and performance. This paper demonstrates how analysis to reveal relationship among dependent and independent variables in HRM-performance link can be done using artificial neural networks (ANN). Statistical package for the social sciences (SPSS) was used to produce ANN. It argues that HRM research should utilize the breadth of statistics available including data science statistics. This study utilizes positivist paradigmatic stance, descripto-explanatory research design, and survey methodology. Questionnaires were used in data collection. The study found that HRM practices are important in predicting financial and non-financial performance. Synergetic relationship among HRM practices was also found to predict financial and non-financial performance of financial cooperatives in Kenya. Apart from exploring HRM independent variables, their interrelationships must be explored and reported in literature.
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