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Automated epileptic seizure waveform detection method based on the feature of the mean slope of wavelet coefficient counts using a hidden Markov model and EEG signals

机译:自动癫痫癫痫发作波形检测方法,基于使用隐马尔可夫模型和脑电图信号的小波系数计数的平均斜率的特征

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摘要

Long‐term electroencephalography (EEG) monitoring is time‐consuming, and requires experts to interpret EEG signals to detect seizures in patients. In this paper, we propose a novel automated method called adaptive slope of wavelet coefficient counts over various thresholds (ASCOT) to classify patient episodes as seizure waveforms. ASCOT involves extracting the feature matrix by calculating the mean slope of wavelet coefficient counts over various thresholds in each frequency subband. We validated our method using our own database and a public database to avoid overtuning. The experimental results show that the proposed method achieved a reliable and promising accuracy in both our own database (98.93%) and the public database (99.78%). Finally, we evaluated the performance of the method considering various window sizes. In conclusion, the proposed method achieved a reliable seizure detection performance with a short‐term window size. Therefore, our method can be utilized to interpret long‐term EEG results and detect momentary seizure waveforms in diagnostic systems.
机译:长期脑电图(EEG)监测是费时,需要专家解释EEG信号来检测患者的癫痫发作。在本文中,我们提出了称为在各种阈值(ASCOT)来分类患者发作如癫痫发作波形小波系数计数的自适应斜率的新颖自动化方法。 ASCOT涉及通过计算小波系数的计数超过在每个频率子带的各种阈值的平均斜率提取特征矩阵。我们用我们自己的数据库和公共数据库,以避免overtuning验证了我们的方法。实验结果表明,该方法在我们自己的数据库(98.93%)和公共数据库(99.78%)实现了可靠和有前途的准确性。最后,我们评估考虑各种窗口大小的方法的性能。总之,所提出的方法实现了短期的窗口大小而可靠的癫痫检测性能。因此,我们的方法可以被用来解释长期EEG结果和诊断系统检测瞬时发作波形。

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