Measurement of Regional Electric Vehicle Adoption Using Multiagent Deep Reinforcement Learning
Seung Jun Choi,
Junfeng Jiao
Abstract:This study explores the socioeconomic disparities observed in the early adoption of Electric Vehicles (EVs) in the United States. A multiagent deep reinforcement learning-based policy simulator was developed to address the disparities. The model, tested using data from Austin, Texas, indicates that neighborhoods with higher incomes and a predominantly White demographic are leading in EV adoption. To help low-income communities keep pace, we introduced tiered subsidies and incrementally increased their amounts.… Show more
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