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Wenzhen Huang

1 accepted papers

2021

Learning to Reweight Imaginary Transitions for Model-Based Reinforcement Learning

AAAI 2021technical

Model-based reinforcement learning (RL) is more sample efficient than model-free RL by using imaginary trajectories generated by the learned dynamics model. When the model is inaccurate or biased, imaginary trajectories may be deleterious for training the action-value and policy functions. To allevi…