Hybrid Paradigm-based Brain-Computer Interface for Robotic Arm Control

December 14, 2022 Β· Declared Dead Β· πŸ› Balkan Conference in Informatics

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Authors Byeong-Hoo Lee, Jeong-Hyun Cho, Byung-Hee Kwon arXiv ID 2212.08122 Category cs.HC: Human-Computer Interaction Cross-listed cs.AI, cs.RO, eess.SY Citations 2 Venue Balkan Conference in Informatics Last Checked 4 months ago
Abstract
Brain-computer interface (BCI) uses brain signals to communicate with external devices without actual control. Particularly, BCI is one of the interfaces for controlling the robotic arm. In this study, we propose a knowledge distillation-based framework to manipulate robotic arm through hybrid paradigm induced EEG signals for practical use. The teacher model is designed to decode input data hierarchically and transfer knowledge to student model. To this end, soft labels and distillation loss functions are applied to the student model training. According to experimental results, student model achieved the best performance among the singular architecture-based methods. It is confirmed that using hierarchical models and knowledge distillation, the performance of a simple architecture can be improved. Since it is uncertain what knowledge is transferred, it is important to clarify this part in future studies.
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