一种预测癫痫发作的新方法

Abdellatif Abuimara
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引用次数: 2

摘要

本文提出了一种预测癫痫发作的新方法。该方法依赖于对获得的健康人和非健康人在不同情况下的脑电图信号的信号幅度进行分类,如睁眼和闭眼时的脑电图信号、健康人和非健康人癫痫发作和非癫痫发作时的脑电图信号以及大脑不同部位的脑电图信号。这种方法是独特的,因为它是新的,简单和承诺,与它可以简单地预测即将到来的癫痫发作前的小时间间隔。然后对分类测量结果进行了比较。最后得到了实验结果。处理后的信号是每个病人和每个健康人的100次测量。结果表明,这是一种很有前景的预测癫痫发作的方法。不幸的是,这种癫痫发作的预测不能在癫痫发作前很长时间做出,而只能在癫痫发作前很短的时间做出,这就是为什么它等待增强。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A new method for predicting epilepsy seizure
In this paper I present a new method for predicting epilepsy seizure. This method depends on classification of the signal amplitudes of obtained EEG signals from healthy and non-healthy persons in different situations, like EEG signals during eyes opened and eyes closed, EEG signals from healthy and non-healthy persons during times with seizure and without seizure and from different parts of brain. This method is unique because it is new simple and promised and with it a coming seizure can be simply predicted from the small time interval before its happening. Then comparisons between the classified measurements have carried out. And finally the results were obtained. The processed signals were hundred measurements for each patient and each healthy person. The results show that this is a promised method to predict epilepsy seizure. Unfortunately this prediction of the seizure can not made long time before the seizure but only short time before it that why it waits enhancements.
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