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Technical note: A nonparametric outlier rejection scheme

机译:技术说明:非参数离群值拒绝方案

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摘要

Experimental data always contains measurement errors (or noise, in signal processing). This paper is concerned with the removal of outliers from a data set consisting of only a handful of points. The data set has a unimodal probability distribution function, the mode is thus a reliable estimate of the central tendency. The approach is nonparametric; for the data set (xi, yi) only the ordinates (yi) are used. The abscissa (xi) are reparametrized to the variable i = 1, N.The data is bounded using a calculated mode and a new measure: the mean absolute deviation from the mode. This does not seem to have been reported before. The mean is removed and low frequency filtering is performed in the frequency domain, after which the mean is reintroduced.
机译:实验数据始终包含测量误差(或信号处理中的噪声)。本文涉及从仅包含少量点的数据集中去除异常值的问题。数据集具有单峰概率分布函数,因此该模式是集中趋势的可靠估计。这种方法是非参数的;对于数据集(xi,yi),仅使用坐标(yi)。横坐标(xi)重新设置为变量i = 1,N.使用计算的模式和新的度量(即与该模式的平均绝对偏差)对数据进行限制。似乎以前没有报告过。去除均值,并在频域中执行低频滤波,然后重新引入均值。

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