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Fuzzy rule-based seizure prediction based on correlation dimension changes in intracranial EEG

机译:基于颅内脑电图相关量变化的基于模糊规则的癫痫发作预测

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In this paper, we present a method for epileptic seizure prediction from intracranial EEG recordings. We applied correlation dimension, a nonlinear dynamics based univariate characteristic measure for extracting features from EEG segments. Finally, we designed a fuzzy rule-based system for seizure prediction. The system is primarily designed based on expert's knowledge and reasoning. A spatial-temporal filtering method was used in accordance with the fuzzy rule-based inference system for issuing forecasting alarms. The system was evaluated on EEG data from 10 patients having 15 seizures.
机译:在本文中,我们提出了一种从颅内脑电图记录中预测癫痫发作的方法。我们应用了相关维数,这是一种基于非线性动力学的单变量特征量度,用于从EEG段中提取特征。最后,我们设计了基于模糊规则的癫痫发作预测系统。该系统主要是根据专家的知识和推理来设计的。根据基于模糊规则的推理系统,使用时空过滤方法来发布预测警报。根据来自10例癫痫发作的10例患者的EEG数据对系统进行了评估。

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