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Exploring predictors of working capital management efficiency and their influence on firm performance: an integrated DEA-SEM approach

机译:探索营运资金管理效率的预测因子及其对企业绩效的影响:综合DEA-SEM方法

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Purpose - This study develops an integrated approach combining data envelopment analysis (DEA) and structural equation modeling (SEM) for estimating the working capital management (WCM) efficiency and evaluating the effects of diverse exogenous variables on the WCM efficiency and firms' performance. Design/methodology/approach - DEA is applied for deriving WCM efficiency for 212 Indian manufacturing firms over a period from 2008 to 2019. Also, the effect of human capital (HC), structural capital (SC), cost of external financing (CEF), interest coverage (IC), leverage (LEV), net fixed asset ratio (NFA), asset turnover ratio (ATR) and productivity (PRD) on the WCM efficiency and firms' performance is examined using SEM. Findings - The average mean efficiency scores ranging from 0.623 to 0.654 highlight the firms operating at around 60% of WCM efficiency only, which is a major concern for Indian manufacturing firms. Further, IC, LEV, NFA, ATR revealed direct effect on the WCM efficiency as well as indirect effect on firms' performance, whereas CEF had only a direct effect on WCM efficiency. HC, SC and PRD had no effects on WCM efficiency and firms' performance. Practical implications - The findings offer vital insights in guiding policy decisions for Indian manufacturing firms. Originality/value - This study is the first to identify the endogenous nature of the relationship of HC, SC, CEF, IC altogether with firms' performance, compounded by the WCM efficiency, by applying a comprehensive methodology of DEA and SEM and provides an efficiency performance model for better decision-making.
机译:目的 - 本研究开发了一种组合数据包络分析(DEA)和结构方程建模(SEM)的综合方法,用于估算工作资本管理(WCM)效率,并评估各种外源变量对WCM效率和公司性能的影响。设计/方法/方法 - DEA适用于2008年至2019年的212个印度制造公司的WCM效率。此外,人力资本(HC),结构资本(SC),外部融资费用(CEF)的影响。使用SEM检查息息覆盖(IC),杠杆(LEV),净固定资产比率(NFA),资产周转率(ATR)和生产率(PRD)进行了SEM。调查结果 - 平均平均效率评分从0.623到0.654突出显示,仅限于约60%的WCM效率运行,这是印度制造公司的主要关注点。此外,IC,LEV,NFA,ATR对WCM效率的直接影响以及对公司性能的间接影响,而CEF则仅对WCM效率直接影响。 HC,SC和PRD对WCM效率和公司的表现没有影响。实际意义 - 调查结果为印度制造公司的指导政策决策提供了重要见解。原创性/值 - 本研究首先是通过应用DEA和SEM的综合方法,通过应用DEA和SEM的综合方法,首先识别HC,SC,CEF,CEF,IC的关系的内源性,并通过WCM效率进行复合,并提供效率更好决策的性能模型。

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