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  1.  15
    From Expert to Elite? — Research on Top Archer’s EEG Network Topology.Feng Gu, Anmin Gong, Yi Qu, Aiyong Bao, Jin Wu, Changhao Jiang & Yunfa Fu - 2022 - Frontiers in Human Neuroscience 16.
    It is not only difficult to be a sports expert but also difficult to grow from a sports expert to a sports elite. Professional athletes are often concerned about the differences between an expert and an elite and how to eventually become an elite athlete. To explore the differences in brain neural mechanism between experts and elites in the process of motor behavior and reveal the internal connection between motor performance and brain activity, we collected and analyzed the electroencephalography findings (...)
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  2.  11
    Efficacy, Trainability, and Neuroplasticity of SMR vs. Alpha Rhythm Shooting Performance Neurofeedback Training.Anmin Gong, Wenya Nan, Erwei Yin, Changhao Jiang & Yunfa Fu - 2020 - Frontiers in Human Neuroscience 14.
  3.  10
    Improved Brain–Computer Interface Signal Recognition Algorithm Based on Few-Channel Motor Imagery.Fan Wang, Huadong Liu, Lei Zhao, Lei Su, Jianhua Zhou, Anmin Gong & Yunfa Fu - 2022 - Frontiers in Human Neuroscience 16.
    Common spatial pattern is an effective algorithm for extracting electroencephalogram features of motor imagery ; however, CSP mainly aims at multichannel EEG signals, and its effect in extracting EEG features with fewer channels is poor—even worse than before using CSP. To solve the above problem, a new combined feature extraction method has been proposed in this study. For EEG signals from fewer channels, wavelet packet transform, fast ensemble empirical mode decomposition, and local mean decomposition were used to decompose the band-pass (...)
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    A New Subject-Specific Discriminative and Multi-Scale Filter Bank Tangent Space Mapping Method for Recognition of Multiclass Motor Imagery.Fan Wu, Anmin Gong, Hongyun Li, Lei Zhao, Wei Zhang & Yunfa Fu - 2021 - Frontiers in Human Neuroscience 15.
    Objective: Tangent Space Mapping using the geometric structure of the covariance matrices is an effective method to recognize multiclass motor imagery. Compared with the traditional CSP method, the Riemann geometric method based on TSM takes into account the nonlinear information contained in the covariance matrix, and can extract more abundant and effective features. Moreover, the method is an unsupervised operation, which can reduce the time of feature extraction. However, EEG features induced by MI mental activities of different subjects are not (...)
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