Google Reinforcement Learning uses successful examples instead of tricky reward functions
Google Reinforcement Learning uses successful examples instead of tricky reward functions
To teach a robot to hammer a nail into a wall, most reinforcement learning algorithms require that the user define a reward function.
The example-based control method uses examples of what the world looks like when a task is completed to teach the robot to solve the task, e.g., examples where the nail is already hammered into the wall.
Project Web site https://ben-eysenbach.github.io/rce
arXiv paper abstract https://arxiv.org/abs/2103.12656
arXiv PDF paper https://arxiv.org/pdf/2103.12656.pdf
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