cs.AI updates on arXiv.org 07月22日 12:44
FCRF: Flexible Constructivism Reflection for Long-Horizon Robotic Task Planning with Large Language Models
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本文提出一种名为柔性建构主义反思框架(FCRF)的新架构,旨在通过灵活的自我反思机制,提升大型语言模型在复杂长期任务中的执行可靠性和灵活性,并通过模拟和实际部署验证了其有效性。

arXiv:2507.14975v1 Announce Type: cross Abstract: Autonomous error correction is critical for domestic robots to achieve reliable execution of complex long-horizon tasks. Prior work has explored self-reflection in Large Language Models (LLMs) for task planning error correction; however, existing methods are constrained by inflexible self-reflection mechanisms that limit their effectiveness. Motivated by these limitations and inspired by human cognitive adaptation, we propose the Flexible Constructivism Reflection Framework (FCRF), a novel Mentor-Actor architecture that enables LLMs to perform flexible self-reflection based on task difficulty, while constructively integrating historical valuable experience with failure lessons. We evaluated FCRF on diverse domestic tasks through simulation in AlfWorld and physical deployment in the real-world environment. Experimental results demonstrate that FCRF significantly improves overall performance and self-reflection flexibility in complex long-horizon robotic tasks.

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机器人 任务执行 自我反思 大型语言模型 柔性建构主义
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