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Utilizing Motor-Imagery Brain-Computer Interfaces for the Assessment of Developmental Coordination Disorder in Children
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Utilizing Motor-Imagery Brain-Computer Interfaces for the Assessment of Developmental Coordination Disorder in Children

Kuan-Yi Lee, Kong-Yi Chang, Hao-Che Hsu, Yu-Ting Tseng, Chun-Shu Wei, Shih-Syun Lin 和 Chun-Hsiang Chuang
2024 46th Annual International Conference of the IEEE Engineering in Medicine and Biology Society (EMBC), 卷.2024, 頁碼.1-4
07/2024
PMID: 40038985

摘要

Accuracy Brain-computer interfaces Developmental Coordination Disorder Electroencephalography Engineering in medicine and biology Measurement Motor Imagery Motors Pediatrics Support vector machines
Developmental Coordination Disorder (DCD) is a neurodevelopmental disorder characterized by significant motor difficulties that affect daily life. Current assessment methods primarily focus on behavioral analysis, lacking in neuroscientific metrics for a comprehensive evaluation. This study introduced an electroencephalography-based motor imagery brain-computer interface classification system for evaluating children with DCD. A key of this system was the implementation of entropy-based data screening, which markedly enhanced classification performance. Notably, using mu band power in a support vector machine achieved an accuracy rate of 79.0%. These findings pave the way for developing a tool that could assist professionals in identifying children potentially affected by DCD.

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