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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Cited by:
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- 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).
- Xiaowei Ding & Ruxu Jing & Kaikun Wu & Maria V. Petrovskaya & Zhikun Li & Alina Steblyanskaya & Lyu Ye & Xiaotong Wang & Vasiliy M. Makarov, 2022. "The Impact Mechanism of Green Credit Policy on the Sustainability Performance of Heavily Polluting Enterprises—Based on the Perspectives of Technological Innovation Level and Credit Resource Allocatio," IJERPH, MDPI, vol. 19(21), pages 1-26, November.
- 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.
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Keywords
Machine learning approaches; Credit policy; Business indicator;All these keywords.
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