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Vision-Language-Action Jump-Starting for Reinforcement Learning Robotic Agents

Angelo Moroncelli, Roberto Zanetti, Marco Maccarini, Loris Roveda
Thursday at 04:00
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arXiv:2604.13733v2 Announce Type: replace-cross Abstract: Reinforcement learning (RL) enables high-frequency, closed-loop control for robotic manipulation, but scaling to long-horizon tasks with sparse or imperfect rewards remains difficult due to inefficient exploration and poor credit assignment. Vision-Language-Action (VLA) models leverage...

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