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Teachability And Interpretability In Reinforcement Learning, Jeevan Rajagopal
Teachability And Interpretability In Reinforcement Learning, Jeevan Rajagopal
Department of Computer Science and Engineering: Dissertations, Theses, and Student Research
There have been many recent advancements in the field of reinforcement learning, starting from the Deep Q Network playing various Atari 2600 games all the way to Google Deempind's Alphastar playing competitively in the game StarCraft. However, as the field challenges more complex environments, the current methods of training models and understanding their decision making become less effective. Currently, the problem is partially dealt with by simply adding more resources, but the need for a better solution remains.
This thesis proposes a reinforcement learning framework where a teacher or entity with domain knowledge of the task to complete can assist …