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Joint distribution adaptation based TSK Fuzzy logic system for epileptic EEG signal identification

  • East China Normal University
  • Shanghai University

科研成果: 书/报告/会议事项章节会议稿件同行评审

摘要

Transfer learning based method, which utilizes plenty labeled data in the source domain to build an accuracy classifier for the target domain, serves as an effective means in the epileptic detection by using electroencephalogram (EEG) signals. Among existing approaches, Fuzzy logic system (FLS) based on transductive transfer learning is an efficient method due to its superior interpretability and strong learning abilities. However, this kind of method cannot simultaneously reduce the differences in both marginal distributions and conditional distributions between the training and test datasets of EEG signals. To overcome this problem, in this paper, we construct a Takagi-Sugeno-Kang (TSK) FLS based on the joint distribution adaptation (JDA), which refers to TSK-JDA-FLS. It aims to match both marginal and conditional distributions, and we extend the algorithm to perform a multi-class classification for identifying epileptic EEG signals. Extensive experiments verify that TSK-JDA-FLS significantly outperforms competitive non-transfer learning and transfer learning methods in the epileptic EEG datasets.

源语言英语
主期刊名Proceedings - 2016 IEEE International Conference on Bioinformatics and Biomedicine, BIBM 2016
编辑Kevin Burrage, Qian Zhu, Yunlong Liu, Tianhai Tian, Yadong Wang, Xiaohua Tony Hu, Qinghua Jiang, Jiangning Song, Shinichi Morishita, Kevin Burrage, Guohua Wang
出版商Institute of Electrical and Electronics Engineers Inc.
340-345
页数6
ISBN(电子版)9781509016105
DOI
出版状态已出版 - 17 1月 2017
活动2016 IEEE International Conference on Bioinformatics and Biomedicine, BIBM 2016 - Shenzhen, 中国
期限: 15 12月 201618 12月 2016

出版系列

姓名Proceedings - 2016 IEEE International Conference on Bioinformatics and Biomedicine, BIBM 2016

会议

会议2016 IEEE International Conference on Bioinformatics and Biomedicine, BIBM 2016
国家/地区中国
Shenzhen
时期15/12/1618/12/16

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