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Quantitative methods for detecting cerebral infarction from multiple channel EEG recordings

机译:从多通道脑电图记录中检测脑梗死的定量方法

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摘要

EEG has been known to be non-stationary and time varying. Time-frequency representation (TFR) is a proper tool for such non-stationary signals. In the present paper, TFR-based quantitative methods that can translate complicated and subjective waveform-based EEG analysis into objective measures are introduced to characterize EEG recorded from normal subjects and cerebral infarction (CI) patients. Relative frequency band energy (RFBE) is computed from time-frequency plane for the five subbands: delta, theta, alpha, beta and gamma. Moreover, we propose the Shannon entropy (SE) of TFR to detect the difference in EEG for the two kinds of subjects. Finally, the temporal evolutions of these quantitative parameters are presented to trace EEG changes. The experiment results show that CI results in the RFBE changes of the five rhythms; however, the RFBEs of some rhythms have stronger association with CI. Increase in EEG SE of CI patients is obvious. The time evolutions of RFBE and SE as valuable objective measures can be displayed in real time and be used as helpful references in detection and monitoring of CI.
机译:已知脑电图是非平稳的且随时间变化的。时频表示(TFR)是处理此类非平稳信号的合适工具。在本文中,引入了基于TFR的定量方法,该方法可以将基于波形的复杂和主观的EEG分析转化为客观的指标,以表征正常受试者和脑梗死(CI)患者记录的EEG。从时频平面计算五个子带的相对频带能量(RFBE):δ,θ,α,β和γ。此外,我们提出了TFR的香农熵(SE)来检测两种受试者的脑电图差异。最后,提出了这些定量参数的时间演变以追踪脑电图的变化。实验结果表明,CI导致5个节律的RFBE改变。但是,某些节奏的RFBE与CI有更强的关联。 CI患者的EEG SE增加明显。 RFBE和SE的时间演变是有价值的客观度量,可以实时显示,并且可以用作检测和监视CI的有用参考。

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