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AN EEG BASED NONLINEARITY ANALYSIS METHOD FOR SCHIZOPHRENIA DIAGNOSIS

机译:基于脑电图的精神分裂症非线性诊断方法

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摘要

In this paper, the complexity and chaos of EEG (electroencephalogram) signals exhibited in schizophrenic patients are analyzed using four nonlinear features: C0-complexity, Kolmogorov entropy together with an estimation of the correlation dimension and Lempel-Ziv complexity. The first two of these being novel applications of these measures. EEGs from 31 schizophrenic patients (18 males, 13 females, mean age 25.9 ± 3.6 years) and 31 age/sex matched control subjects were recorded using 12 electrodes. In a t-test, it was found that all four nonlinear features had a significant variance between the schizophrenics and the control set (p ≤ 0.05). A classification accuracy of 91.7% was obtained by Back Propagation Neural Networks. Our results show that the discrimination of schizophrenic behavior is possible with respect to a control set using nonlinear analysis of EEG signals. We also assert that these methods may be the basis for a valuable tool set of EEG methods that could be used by psychiatrists when diagnosing schizophrenic patients.
机译:本文利用四个非线性特征分析了精神分裂症患者脑电图信号的复杂性和混乱性:C0复杂性,Kolmogorov熵以及相关维数和Lempel-Ziv复杂性的估计。其中的前两个是这些措施的新颖应用。使用12个电极记录了来自31位精神分裂症患者(18位男性,13位女性,平均年龄25.9±3.6岁)和31位年龄/性别匹配的对照受试者的EEG。在t检验中,发现所有四个非线性特征在精神分裂症患者和对照组之间均存在显着差异(p≤0.05)。反向传播神经网络的分类精度为91.7%。我们的结果表明,相对于使用脑电信号非线性分析的控制集,可以区分精神分裂症行为。我们还断言,这些方法可能是精神病医生在诊断精神分裂症患者时可以使用的有价值的EEG方法工具集的基础。

著录项

  • 来源
    《Biomedical engineering》|2012年|136-142|共7页
  • 会议地点 Innsbruck(AT)
  • 作者单位

    School of Information Science Engineering Lanzhou University, P.R.China;

    School of Information Science Engineering Lanzhou University, P.R.China,School of CTN, TEE, Birmingham City University, UK;

    School of Information Science Engineering Lanzhou University, P.R.China;

    School of CTN, TEE, Birmingham City University, UK;

    School of Information Science Engineering Lanzhou University, P.R.China;

    School of Information Science Engineering Lanzhou University, P.R.China;

    School of Information Science Engineering Lanzhou University, P.R.China;

    School of Information Science Engineering Lanzhou University, P.R.China;

    School of Information Science Engineering Lanzhou University, P.R.China;

    School of Information Science Engineering Lanzhou University, P.R.China;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    nonlinear method; schizophrenia; EEG; classification;

    机译:非线性方法精神分裂症;脑电图;分类;

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