Energy Efficiency Can Deliver for Climate Policy: Evidence from Machine Learning-Based Targeting
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- Christensen, Peter & Francisco, Paul & Myers, Erica & Shao, Hansen & Souza, Mateus, 2024. "Energy efficiency can deliver for climate policy: Evidence from machine learning-based targeting," Journal of Public Economics, Elsevier, vol. 234(C).
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- Augusto Cerqua & Marco Letta & Gabriele Pinto, 2024. "On the (Mis)Use of Machine Learning with Panel Data," Papers 2411.09218, arXiv.org.
- Michele Loberto & Alessandro Mistretta & Matteo Spuri, 2023. "The capitalization of energy labels into house prices. Evidence from Italy," Questioni di Economia e Finanza (Occasional Papers) 818, Bank of Italy, Economic Research and International Relations Area.
- Maya Papineau & Nicholas Rivers & Kareman Yassin, 2022. "Estimates of long-run energy savings and realization rates from a large energy efficiency retrofit program," Carleton Economic Papers 22-09, Carleton University, Department of Economics.
- Fabra, Natalia & Reguant, Mar, 2024. "The energy transition: A balancing act," Resource and Energy Economics, Elsevier, vol. 76(C).
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More about this item
JEL classification:
- H50 - Public Economics - - National Government Expenditures and Related Policies - - - General
- Q4 - Agricultural and Natural Resource Economics; Environmental and Ecological Economics - - Energy
NEP fields
This paper has been announced in the following NEP Reports:- NEP-BIG-2022-10-24 (Big Data)
- NEP-CMP-2022-10-24 (Computational Economics)
- NEP-ENE-2022-10-24 (Energy Economics)
- NEP-ENV-2022-10-24 (Environmental Economics)
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