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Bias in composite indexes of CSR practice: An analysis of CUR matrix decomposition

机译:CSR实践复合索引中的偏见:CUR矩阵分解分析

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The main objective of this research is to propose the best aggregate index of corporate social responsibility practice at the organisational level. To achieve this, we analyse the consistency of the different aggregated measures that researchers use in their analyses through a robust statistical technique, the CUR matrix, framed in the big data environment for selecting individuals. Accordingly, we use an international sample of 2,675 large listed companies. The results show that the CUR leverage identifies greater consistency of the different aggregate measures of CSR, confirming its coherence with a correlation analysis. In this sense, it is possible to affirm that the composite indexes used in academia do not introduce any bias into the analysis of CSR practices. In addition, we demonstrate the utility of this technique to identify the most powerful companies, analysing their CSR commitment at the country and industry levels, namely, Norsk Hydro in the metal and mining industry in Norway, Stora Enso in forestry and paper in Finland, Akzo Nobel in chemical products in the Netherlands, BMW in automobiles and parts in Germany, Generali in finance in Italy, Novartis in pharmaceuticals in Switzerland, the BT Group in telecommunications in the United Kingdom and Inditex in textiles in Spain. Moreover, the results of the CUR study confirm that companies adapt to the demands or pressures from the stakeholders in different areas of interest, which are specific to each country and industry. The availability of these data allows the identification of the structural drivers of their growth and the establishment of priorities that allow the design of more effective sustainable development momentum policies.
机译:本研究的主要目标是提出在组织层面上的企业社会责任实践最佳总和。为此,我们分析了通过强大的统计技术,CUR矩阵,在大数据环境中进行了统计技术,对研究人员在分析中使用的不同聚合措施的一致性。因此,我们使用2,675家大型上市公司的国际样本。结果表明,CUR杠杆鉴定了CSR的不同聚集措施的更大一致性,确认其与相关分析相干性。从这个意义上讲,可以确认学术界使用的复合索引不会在CSR实践分析中引入任何偏见。此外,我们展示了这种技术识别最强大的公司的效用,在挪威金属和采矿业中的金属和采矿业中的诺尔斯水平分析他们的企业社会责任,即挪威, Akzo Nobel在荷兰的化学产品中,BMW在德国的汽车和零件中,在意大利金融,在瑞士制药的诺华,英国电信中的BT集团和西班牙纺织品的Inditex。此外,CUR研究的结果证实,公司对利益攸关方的需求或压力符合每个国家和行业的不同兴趣领域。这些数据的可用性允许确定其增长的结构驱动因素以及建立优先事项,使设计更有效的可持续发展动量政策。

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