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Algorithm based on the short-term Rényi entropy and IF estimation for noisy EEG signals analysis
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文摘
Modification of Renyi entropy was proposed and applied to EEG analysis in timefrequency domain. Renyi entropy was upgraded by the component separation and instantaneous frequency estimation. The proposed method was tested on both noisy and noise-free EEG signals. Achieved results showed that proposed method was robust up to moderate noise levels. Extracting EEG components and IF estimation show large potential to enhance clinical diagnostics.

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