Using machine learning to model technological heterogeneity in carbon emission efficiency evaluation: The case of China's cities
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DOI: 10.1016/j.eneco.2022.106238
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Cited by:
- Hu, Shuo & Wang, Ailun & Lin, Boqiang, 2024. "Marginal abatement cost of CO2: A convex quantile non-radial directional distance function regression method considering noise and inefficiency," Energy, Elsevier, vol. 297(C).
- Hongyun Luo & Xiangyi Lin, 2022. "Empirical Study on the Low-Carbon Economic Efficiency in Zhejiang Province Based on an Improved DEA Model and Projection," Energies, MDPI, vol. 16(1), pages 1-14, December.
- Keyao Yu & Zhigang Li, 2024. "RETRACTED ARTICLE: Assessing carbon emission and energy efficiency in Yangtze River economic belt cities, China," Economic Change and Restructuring, Springer, vol. 57(1), pages 1-31, February.
- Hu, Shuo & Wang, Ailun & Du, Kerui, 2023. "Environmental tax reform and greenwashing: Evidence from Chinese listed companies," Energy Economics, Elsevier, vol. 124(C).
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Keywords
Machine learning; Heterogeneity; Carbon emission efficiency; Reduction potential; Directional distance function; Index decomposition analysis;All these keywords.
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