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A MIXTURE MODEL CLASSIFIER AND ITS APPLICATION ON THE BIOMEDICAL TIME SERIES

机译:混合模型分类器及其在生物医学时间序列中的应用

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摘要

This article presents a methodology based on the mixture model to classify the real biomedical time series. The mixture model is shown to be an efficient probabilistic density estimation scheme aimed at approximating the posterior probability distribution of a certain class of data. The approximation is conducted by employing a weighted mixture of a finite number of Gaussian kernels whose parameters and mixing coefficients are estimated iteratively through a maximum likelihood method. A database of the real electrocardiogram (ECG) time series of out-of-hospital cardiac arrest patients suffering ventricular fibrillation (VF) with known defibrillation outcomes was adopted to evaluate the performance of this model and confirm its efficiency compared with other classification methods.
机译:本文提出了一种基于混合模型的方法,可以对实际的生物医学时间序列进行分类。混合模型被证明是一种有效的概率密度估计方案,旨在近似于某类数据的后验概率分布。通过使用有限数量的高斯核的加权混合来进行近似,其参数和混合系数通过最大似然法进行迭代估计。该数据库采用了具有已知除纤颤结果的心室颤动(VF)的院外心脏骤停患者的真实心电图(ECG)时间序列数据库,以评估该模型的性能并与其他分类方法进行比较,确认其有效性。

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  • 来源
    《Applied Artificial Intelligence》 |2012年第7期|p.588-597|共10页
  • 作者单位

    School of Computer Science, Nanjing Normal University, Nanjing 210046, China;

    School of Engineering and Computer Science, University of Exeter, Exeter, UK;

    Center for Information and Communication Technology, Stavanger University,Stavanger, Norway;

    Department of Anesthesiology, Ulleval University Hospital, Oslo, Norway;

    Department of Physics, Heriot-Watt University, Edinburgh, UK;

    Department of Physics, Heriot-Watt University, Edinburgh, UK;

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