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Automated prediction of epileptic seizures in rats with recurrence quantification analysis.

Automated prediction of epileptic seizures in rats with recurrence quantification analysis. Research Abstract Details 

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  • Automated prediction of epileptic seizures in rats with recurrence quantification analysis. Abstract Text:

    gaoxiang ouyangGaoxiang Ouyang,lijuan xieLijuan Xie,huanwen chenHuanwen Chen,xiaoli liXiaoli Li,xinping guanXinping Guan,huihua wuHuihua Wu,

    The prediction of epileptic seizures is a very important issue in the neural engineering. This is because it may improve the life quality of the patients who are suffering from uncontrolled epilepsy. In our earlier work, we found that the dynamical characteristics of EEG data with recurrence quantification analysis (RQA), also called complexity measure, can identify the differences among inter-ictal, pre-ictal and ictal phases. In this paper, we propose an automated technique with complexity measure of EEG recording to detect pre-ictal phase. Using the EEG recorded from rats with experimentally induced generalized epilepsy, it is found the method can detect the complexity changes of the neural activity prior to epileptic seizures. We suggest that the new method could be considered as an alternative of epileptic seizures prediction in practice.

    Automated prediction of epileptic seizures in rats with recurrence quantification analysis. Publishing Authors By Initials

    g ouyangG Ouyang,l xieL Xie,h chenH Chen,x liX Li,x guanX Guan,h wuH Wu,

    For similar abstracts research abstracts see: abstracts research

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    Automated prediction of epileptic seizures in rats with recurrence quantification analysis. Journal Published:

    PUBLICATION TYPE: Journal Article

    Journal: Conference proceedings : ... Annual International

    VOLUME: 1

    Page Numbers: 153-6

    Journal Abbreviation:

    ISSN: 1557-170X

    DAY: 6

    MONTH: 02

    YEAR: 2005

    Automated prediction of epileptic seizures in rats with recurrence quantification analysis. Information

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    LANGUAGE: eng

    NlmUniqueID: 101243413

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    Grant and Affiliation Information for Automated prediction of epileptic seizures in rats with recurrence quantification analysis.

    AFFILIATION: Inst. of Electr. Eng., Yanshan Univ., Hebei.

    Country: United States

    United States Research PublicationUnited States Research Publication

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    MEDLINETA: Conf Proc IEEE Eng Med Biol So

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