INTERPRETING DATA OF REINFORCEMENT LEARNING AGENT CONTROLLER

DRIVE October 1, 2020
Source
The present disclosure describes systems and methods that include calculating, via a reinforcement learning agent (RLA) controller, a plurality of state-action values based on sensor data representing an observed state, wherein the RLA controller utilizes a deep neural network (DNN) and generating, via a fuzzy controller, a plurality of linear models mapping the plurality of state-action values to the sensor data.

Discussion in the ATmosphere

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