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AdaPool: A Diurnal-Adaptive Fleet Management Framework Using Model-Free Deep Reinforcement Learning and Change Point Detection
Journal article   Peer reviewed

AdaPool: A Diurnal-Adaptive Fleet Management Framework Using Model-Free Deep Reinforcement Learning and Change Point Detection

Marina Haliem, Vaneet Aggarwal and Bharat Bhargava
IEEE transactions on intelligent transportation systems, Vol.23(3), pp.2471-2481
01/03/2022

Abstract

Adaptation models change point detection deep Q-networks Dispatching Heuristic algorithms non-stationary MDPs Planning Reinforcement learning Ride-sharing route planning Urban areas Vehicle dynamics

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