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Robótica & RL
Explaining Reinforcement Learning Decisions in Self-adaptive Systems
arXiv:2608.14620v1 Announce Type: new Abstract: Reinforcement Learning (RL) has been extensively used in autonomous and self-* systems, but RL policies, especially deep RL ones relying on neural networks, lack transparency and are difficult to understand. This can lead to diminished user trust, and makes for a more challenging verification of systems. To address this challenge, this paper introduces Explanations using Alternative Realities for Reinforcement Learning (EARL), a Python library to p...
arXiv cs.LG
·Jasmina Gajcin, Juan C. Rosero, Ivana Dusparic
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