ChatMPC: Natural Language based MPC Personalization
September 12, 2023 Β· Declared Dead Β· π American Control Conference
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Authors
Yuya Miyaoka, Masaki Inoue, Tomotaka Nii
arXiv ID
2309.05952
Category
cs.HC: Human-Computer Interaction
Cross-listed
eess.SY
Citations
14
Venue
American Control Conference
Last Checked
4 months ago
Abstract
We address the personalization of control systems, which is an attempt to adjust inherent safety and other essential control performance based on each user's personal preferences. A typical approach to personalization requires a substantial amount of user feedback and data collection, which may result in a burden on users. Moreover, it might be challenging to collect data in real-time. To overcome this drawback, we propose a natural language-based personalization, which places a comparatively lighter burden on users and enables the personalization system to collect data in real-time. In particular, we consider model predictive control (MPC) and introduce an approach that updates the control specification using chat within the MPC framework, namely ChatMPC. In the numerical experiment, we simulated an autonomous robot equipped with ChatMPC. The result shows that the specification in robot control is updated by providing natural language-based chats, which generate different behaviors.
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