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The response of household debt to COVID-19 using a neural networks VAR in OECD

Mamatzakis, Emmanuel C; Ongena, Steven; Tsionas, Mike G (2023). The response of household debt to COVID-19 using a neural networks VAR in OECD. Empirical Economics, 65:65-91.

Abstract

This paper investigates responses of household debt to COVID-19 related data like confirmed cases and confirmed deaths within a panel VAR framework for OECD countries. We also employ a plethora of non-pharmaceutical and pharmaceutical interventions as shocks. In terms of methodology, we opt for a global panel VAR (GVAR) methodology that nests underlying country VARs. In addition, as linear factor models may be unable to capture the variability in the data, we use an artificial neural network (ANN) method. The number of factors, as well as the number of intermediate layers, are determined using the marginal likelihood criterion and we estimate the GVAR with MCMC techniques. Results reveal that household debt positively responds to COVID-19 infections and mortality as well as lockdowns, though this response is valid in the short term. However, vaccinations and testing appear to negatively affect household debt. Lockdown measures such as stay-at-home advice, and closing schools, all have a positive impact on household debt in GVAR, though of transitory nature.

Additional indexing

Item Type:Journal Article, not_refereed, original work
Communities & Collections:03 Faculty of Economics > Department of Finance
Dewey Decimal Classification:330 Economics
Scopus Subject Areas:Physical Sciences > Statistics and Probability
Physical Sciences > Mathematics (miscellaneous)
Social Sciences & Humanities > Social Sciences (miscellaneous)
Social Sciences & Humanities > Economics and Econometrics
Scope:Discipline-based scholarship (basic research)
Language:English
Date:2023
Deposited On:18 Aug 2023 10:22
Last Modified:29 Dec 2024 02:39
Publisher:Springer
ISSN:0377-7332
OA Status:Hybrid
Publisher DOI:https://doi.org/10.1007/s00181-022-02325-2
Related URLs:https://papers.ssrn.com/sol3/papers.cfm?abstract_id=4087551 (Organisation)
Other Identification Number:merlin-id:22868
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  • Content: Accepted Version
  • Language: English
  • Licence: Creative Commons: Public Domain Dedication: CC0 1.0 Universal (CC0 1.0)

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