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Journal Article

Towards Improving Motor Imagery Brain–Computer Interface Using Multimodal Speech Imagery

Jigang Tong; Zhengxing Xing; Xiaoying Wei; Chao Yue; Enzeng Dong; Shengzhi Du; Zhe Sun; Jordi Solé-Casals; Cesar F. Caiafa
Journal of Medical and Biological Engineering · Vol. 43, Issue 3 · pp. 216-226 · 2023

Abstract

Purpose The brain–computer interface (BCI) based on motor imagery (MI) has attracted extensive interest due to its spontaneity and convenience. However, the traditional MI paradigm is limited by weak features in evoked EEG signal, which often leads to lower classification performance. Methods In this paper, a novel paradigm is proposed to improve the BCI performance, by the speech imaginary combined with silent reading (SR) and writing imagery (WI), instead of imagining the body movements. In this multimodal (imaginary voices and movements) paradigm, the subjects silently read Chinese Pinyin (pronunciation) and imaginarily write the Chinese characters, according to a cue. Results Eight subjects participated in binary classification tasks, by carrying out the traditional MI and the proposed paradigm in different experiments for comparison. 77.03% average classification accuracy was obtained by the new paradigm versus 68.96% by the traditional paradigm. Conclusion The results of experiments show that the proposed paradigm evokes stronger features, which benefits the classification. This work opens a new view on evoking stronger EEG features by multimodal activities/stimuli using specific paradigms for BCI.

Bibliographic Information

JournalJournal of Medical and Biological Engineering
PublisherSpringer
Publication Date2023-06-01
Publication Year2023
Volume43
Issue3
Pages216-226
Document TypeJournal Article
Print ISSN1609-0985
eISSN2199-4757
DOI10.1007/s40846-023-00798-9

Access Information

NARA Access Coverage2015-01-01~Current
Journal Homepagehttps://www.springer.com/journal/40846
Publisher PageOpen Publisher Page
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