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Q-Learning algorithm for robot behaviour adaptation

Software
Publication Date:
2023
abstract:
An application that applies the Q-learning algorithm to support an adaptation strategy for the robot in the context of an application for cognitive training. The goal is to help the user maintain a high-engaged level and stimulate in case the user is at a low-engaged level. In the project, the robot agent learns its policy by leveraging the simulator by interacting with the simulated users, updating its knowledge using the Bellman Equation. The algorithm returns a trained Q matrix(s, a). Programming Language: Python
Iris type:
05.11 Software
Keywords:
Q-learning; Reinforcement learning
List of contributors:
Zedda, Eleonora
Handle:
https://iris.cnr.it/handle/20.500.14243/437911
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