I. Introduction
Exploration is a fundamental challenge in Reinforcement Learning (RL), especially in scenarios with sparse rewards where the agent may struggle to learn optimal decision-making due to a lack of informative feedback signals [1]–[5].
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Exploration is a fundamental challenge in Reinforcement Learning (RL), especially in scenarios with sparse rewards where the agent may struggle to learn optimal decision-making due to a lack of informative feedback signals [1]–[5].
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