Residential College | false |
Status | 已發表Published |
ChineseEEG: A Chinese Linguistic Corpora EEG Dataset for Semantic Alignment and Neural Decoding | |
Mou, Xinyu1; He, Cuilin2; Tan, Liwei2; Yu, Junjie1; Liang, Huadong3; Zhang, Jianyu1; Tian, Yan2; Yang, Yu Fang4; Xu, Ting5; Wang, Qing6; Cao, Miao7; Chen, Zijiao8; Hu, Chuan Peng9; Wang, Xindi1; Liu, Quanying1; Wu, Haiyan2 | |
2024 | |
Source Publication | Scientific Data |
ISSN | 2052-4463 |
Volume | 11Issue:1Pages:550 |
Abstract | An Electroencephalography (EEG) dataset utilizing rich text stimuli can advance the understanding of how the brain encodes semantic information and contribute to semantic decoding in brain-computer interface (BCI). Addressing the scarcity of EEG datasets featuring Chinese linguistic stimuli, we present the ChineseEEG dataset, a high-density EEG dataset complemented by simultaneous eye-tracking recordings. This dataset was compiled while 10 participants silently read approximately 13 hours of Chinese text from two well-known novels. This dataset provides long-duration EEG recordings, along with pre-processed EEG sensor-level data and semantic embeddings of reading materials extracted by a pre-trained natural language processing (NLP) model. As a pilot EEG dataset derived from natural Chinese linguistic stimuli, ChineseEEG can significantly support research across neuroscience, NLP, and linguistics. It establishes a benchmark dataset for Chinese semantic decoding, aids in the development of BCIs, and facilitates the exploration of alignment between large language models and human cognitive processes. It can also aid research into the brain’s mechanisms of language processing within the context of the Chinese natural language. |
DOI | 10.1038/s41597-024-03398-7 |
URL | View the original |
Indexed By | SCIE |
Language | 英語English |
WOS Research Area | Science & Technology - Other Topics |
WOS Subject | Multidisciplinary Sciences |
WOS ID | WOS:001235342800003 |
Publisher | NATURE PORTFOLIO, HEIDELBERGER PLATZ 3, BERLIN 14197, GERMANY |
Scopus ID | 2-s2.0-85194813748 |
Fulltext Access | |
Citation statistics | |
Document Type | Journal article |
Collection | Faculty of Social Sciences DEPARTMENT OF PSYCHOLOGY INSTITUTE OF COLLABORATIVE INNOVATION |
Corresponding Author | Liu, Quanying; Wu, Haiyan |
Affiliation | 1.Department of Biomedical Engineering, Southern University of Science and Technology, Shenzhen, China 2.Centre for Cognitive and Brain Sciences, Department of Psychology, Faculty of Social Sciences, University of Macau, Taipa, SAR, Macao 3.AI Research Institute, iFLYTEK Co., LTD, Hefei, China 4.Division of Experimental Psychology and Neuropsychology, Department of Education and Psychology, Freie Universität Berlin, Berlin, Germany 5.Center for the Integrative Developmental Neuroscience, Child Mind Institute, New York, United States 6.Shanghai Mental Health Center, School of Medicine, Shanghai Jiao Tong University, Shanghai, 600 S. Wanping Rd., 200030, China 7.Australian National Imaging Facility and Swinburne Neuroimaging Facility, Swinburne University of Technology, Australia 8.Centre for Cognitive and Cognition, Yong Loo Lin School of Medicine, National University of Singapore, Kent Ridge, Singapore 9.School of Psychology, Nanjing Normal University, Nanjing, China |
Corresponding Author Affilication | Faculty of Social Sciences |
Recommended Citation GB/T 7714 | Mou, Xinyu,He, Cuilin,Tan, Liwei,et al. ChineseEEG: A Chinese Linguistic Corpora EEG Dataset for Semantic Alignment and Neural Decoding[J]. Scientific Data, 2024, 11(1), 550. |
APA | Mou, Xinyu., He, Cuilin., Tan, Liwei., Yu, Junjie., Liang, Huadong., Zhang, Jianyu., Tian, Yan., Yang, Yu Fang., Xu, Ting., Wang, Qing., Cao, Miao., Chen, Zijiao., Hu, Chuan Peng., Wang, Xindi., Liu, Quanying., & Wu, Haiyan (2024). ChineseEEG: A Chinese Linguistic Corpora EEG Dataset for Semantic Alignment and Neural Decoding. Scientific Data, 11(1), 550. |
MLA | Mou, Xinyu,et al."ChineseEEG: A Chinese Linguistic Corpora EEG Dataset for Semantic Alignment and Neural Decoding".Scientific Data 11.1(2024):550. |
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