Machine Learning for Zombie Hunting. Firms Failures and Financial Constraints
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Cited by:
- Maximilian Gobel & Nuno Tavares, 2022.
"Zombie-Lending in the United States -- Prevalence versus Relevance,"
Papers
2201.10524, arXiv.org, revised Jul 2022.
- Maximilian Göbel & Nuno Tavares, 2022. "Zombie-Lending in the United States: Prevalence versus Relevance," Working Papers REM 2022/0231, ISEG - Lisbon School of Economics and Management, REM, Universidade de Lisboa.
- Falco J. Bargagli-Stoffi & Jan Niederreiter & Massimo Riccaboni, 2020. "Supervised learning for the prediction of firm dynamics," Papers 2009.06413, arXiv.org.
- Falco J. Bargagli Stoffi & Kenneth De Beckker & Joana E. Maldonado & Kristof De Witte, 2021. "Assessing Sensitivity of Machine Learning Predictions.A Novel Toolbox with an Application to Financial Literacy," Papers 2102.04382, arXiv.org.
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More about this item
Keywords
machine learning; Bayesian statistical learning; financial constraints; bankruptcy; zombie firms;All these keywords.
JEL classification:
- C53 - Mathematical and Quantitative Methods - - Econometric Modeling - - - Forecasting and Prediction Models; Simulation Methods
- C55 - Mathematical and Quantitative Methods - - Econometric Modeling - - - Large Data Sets: Modeling and Analysis
- G32 - Financial Economics - - Corporate Finance and Governance - - - Financing Policy; Financial Risk and Risk Management; Capital and Ownership Structure; Value of Firms; Goodwill
- G33 - Financial Economics - - Corporate Finance and Governance - - - Bankruptcy; Liquidation
- L21 - Industrial Organization - - Firm Objectives, Organization, and Behavior - - - Business Objectives of the Firm
- L25 - Industrial Organization - - Firm Objectives, Organization, and Behavior - - - Firm Performance
NEP fields
This paper has been announced in the following NEP Reports:- NEP-BIG-2020-06-22 (Big Data)
- NEP-CMP-2020-06-22 (Computational Economics)
- NEP-RMG-2020-06-22 (Risk Management)
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