Machine learning approaches for explaining determinants of the debt financing in heavy-polluting enterprises
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DOI: 10.1016/j.frl.2021.102094
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- Zhang, Dayong & Li, Jun & Ji, Qiang, 2020. "Does better access to credit help reduce energy intensity in China? Evidence from manufacturing firms," Energy Policy, Elsevier, vol. 145(C).
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- Muhammad Ansar Majeed & Tanveer Ahsan & Ammar Ali Gull, 2024. "Does corruption sand the wheels of sustainable development? Evidence through green innovation," Business Strategy and the Environment, Wiley Blackwell, vol. 33(5), pages 4626-4651, July.
- Berger, Theo, 2023. "Explainable artificial intelligence and economic panel data: A study on volatility spillover along the supply chains," Finance Research Letters, Elsevier, vol. 54(C).
- Kovvuri, Veera Raghava Reddy & Fu, Hsuan & Fan, Xiuyi & Seisenberger, Monika, 2023. "Fund performance evaluation with explainable artificial intelligence," Finance Research Letters, Elsevier, vol. 58(PB).
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Keywords
Machine learning approaches; Credit policy; Business indicator;All these keywords.
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