假设提取、介数中心性和供应链复杂性

IF 1.8 4区 经济学 Q2 ECONOMICS
Shohei Tokito, S. Kagawa, T. Hanaka
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引用次数: 10

摘要

摘要假设提取和介数中心性分析这两个框架可用于识别复杂供应链中对环境重要的部门。本研究推导了假设提取和介数中心性分析之间关系的分析表达式。其次,使用Eora和WIOD,本研究分析了通过假设提取和介数中心性分析确定的“重要”部门的差异程度。虽然通过秩相关获得的结果相似,但这两种方法都有优势。这项研究表明,估计介数中心性是有意义的,计算成本较低,可以帮助我们了解全球供应链网络中的结构位置。使用介数中心性指标的数学关系可以很容易地计算假设的提取指标。我们得出的结论是,通过更绿色的全球供应链参与,围绕中国的化工和金属产品这两个关键行业实施有效的二氧化碳减排政策,应该加强它们更高的介数中心性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hypothetical extraction, betweenness centrality, and supply chain complexity
ABSTRACT Two frameworks, hypothetical extraction and betweenness centrality analysis, can be used to identify environmentally important sectors in complex supply chains. This study derives an analytic expression for the relationship between hypothetical extraction and betweenness centrality analysis. Second, using the Eora and WIOD, this study analyzes the degree of difference in ‘important’ sectors identified by hypothetical extraction and betweenness centrality analysis. While the results obtained by rank correlation yield similarities, both methods have advantages. This study demonstrates that estimating betweenness centrality is meaningful and less computationally expensive, and can help us to understand the structural positions in the global supply chain network. The hypothetical extraction indicators can be easily computed using the betweenness centrality indicators’ mathematical relationship. We conclude that the implementation of effective CO2-reduction polices through greener global supply chain engagement center around two key sectors, chemical and metal products from China, and their higher betweenness centrality should be strengthened.
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来源期刊
CiteScore
5.60
自引率
4.00%
发文量
17
期刊介绍: Economic Systems Research is a double blind peer-reviewed scientific journal dedicated to the furtherance of theoretical and factual knowledge about economic systems, structures and processes, and their change through time and space, at the subnational, national and international level. The journal contains sensible, matter-of-fact tools and data for modelling, policy analysis, planning and decision making in large economic environments. It promotes understanding in economic thinking and between theoretical schools of East and West, North and South.
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