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Hybrid Framework for Robotic Manipulation: Integrating Reinforcement Learning and Large Language Models

Description

This paper introduces a new hybrid framework that combines Reinforcement Learning (RL) and Large Language Models (LLMs) to improve robotic manipulation tasks. By utilizing RL for accurate low-level control and LLMs for high level task planning and understanding of natural language, the proposed framework effectively connects low-level execution with high-level reasoning in robotic systems. This integration allows robots to understand and carry out complex, human-like instructions while adapting

Source

http://arxiv.org/abs/2603.30022v1