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A Sequential Nonparametric Pattern Classification Algorithm Based on the Wald SPRT

机译:基于Wald SPRT的顺序非参数模式分类算法

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A sequential nonparametric pattern classification procedure is presented. The method presented is an estimated version of the Wald sequential probability ratio test (SPRT). This method utilizes density function estimates, and the density estimate used is discussed, including a proof of convergence in probability of the estimate to the true density function. The classification procedure proposed makes use of the theory of order statistics, and estimates of the probabilities of misclassification are given. The procedure was tested on discriminating between two classes of Gaussian samples and on discriminating between two kinds of electroencephalogram (EEG) responses.
机译:提出了一种顺序非参数模式分类程序。提出的方法是Wald顺序概率比检验(SPRT)的估计版本。该方法利用了密度函数估计,并讨论了所使用的密度估计,其中包括估计概率收敛到真实密度函数的证明。提出的分类程序利用了顺序统计理论,并给出了错误分类概率的估计。测试该程序是为了区分两类高斯样本和区分两种脑电图(EEG)反应。

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