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- 2Control
- 2Reinforcement Learning
- 1Actor-Expert
- 1Application of Reinforcement Learning
- 1Continuous action space
- 1Deep Reinforcement Learning
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Fall 2019
Q-learning can be difficult to use in continuous action spaces, because a difficult optimization has to be solved to find the maximal action. Some common strategies have been to discretize the action space, solve the maximization with a powerful optimizer at each step, restrict the functional...
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