揭示产业对欧洲金融稳定的作用。能源行业的启示

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2024-05-24 DOI:10.3846/jbem.2024.21404
Iulia Lupu, Radu Lupu, Adina Criste
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引用次数: 0

摘要

对能源行业与其他行业相互交织的广泛分析使能源行业在近期的经济文献中获得了更多的关注。本文旨在创建一个指标,捕捉能源公司财务稳定性对所有其他产业集团的影响。为此,我们使用 2007 年至 2021 年底的每日数据,计算了 STOXX 600 指数中所有欧洲公司的财务稳定性指标。我们研究的主要贡献在于利用神经网络的预测能力来预测这种影响的极端水平。我们之所以选择这种方法,是因为有文献证明这些方法在预测危机方面有更好的表现。我们的方法论还采用了基于 copula (COPOD) 的离群值检测算法,以识别能源行业对其他行业产生重大影响的情况,并开发了一个预测样本外情况的框架。我们发现有证据表明,深度更新模型的预测准确性优于标准 Croston 模型。主要结论是,这一方法框架的设计使当局能够在欧洲层面监测能源行业产生的冲击对金融稳定的影响,并采取战略管理行动。
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UNVEILING THE ROLE OF INDUSTRIES FOR EUROPEAN FINANCIAL STABILITY. INSIGHTS FROM THE ENERGY SECTOR
Extensive analysis of intertwinement with other industries caused the energy sector to gain momentum in the recent economic literature. This paper aims to create an indicator that captures the impact of financial stability for energy companies on all other industrial groups. To this end, we use daily data from 2007 until the end of 2021 to compute financial stability metrics for all European companies from the STOXX 600 index. The main contribution of our study is to harness the neural network forecasting power to predict extreme levels of this impact. We motivate this choice with evidence from the literature that documents the improved performance of these methods in predicting crises. Our methodological approach also employs an outlier detection algorithm based on copula (COPOD) to identify situations when the energy sector substantially impacts other industries and develop a framework to predict out-of-sample situations. We found evidence that the Deep Renewal model has superior forecasting accuracy to the standard Croston model. The main conclusion is that the design of this methodological framework allows authorities to monitor the impact of shocks produced by the energy sector on financial stability at the European level and undertake strategic management actions.
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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