iLearnRobot: An Interactive Learning-Based Multi-Modal Robot with Continuous Improvement
June 25, 2025 Β· Declared Dead Β· π International Conference on Intelligent Computing
"No code URL or promise found in abstract"
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Authors
Kohou Wang, ZhaoXiang Liu, Lin Bai, Kun Fan, Xiang Liu, Huan Hu, Kai Wang, Shiguo Lian
arXiv ID
2507.22896
Category
cs.HC: Human-Computer Interaction
Cross-listed
cs.AI,
cs.CV,
cs.RO
Citations
0
Venue
International Conference on Intelligent Computing
Last Checked
5 months ago
Abstract
It is crucial that robots' performance can be improved after deployment, as they are inherently likely to encounter novel scenarios never seen before. This paper presents an innovative solution: an interactive learning-based robot system powered by a Multi-modal Large Language Model(MLLM). A key feature of our system is its ability to learn from natural dialogues with non-expert users. We also propose chain of question to clarify the exact intent of the question before providing an answer and dual-modality retrieval modules to leverage these interaction events to avoid repeating same mistakes, ensuring a seamless user experience before model updates, which is in contrast to current mainstream MLLM-based robotic systems. Our system marks a novel approach in robotics by integrating interactive learning, paving the way for superior adaptability and performance in diverse environments. We demonstrate the effectiveness and improvement of our method through experiments, both quantitively and qualitatively.
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