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Detection of outliers in simple circular regression models using the mean circular error statistic

机译:使用均值圆误差统计量在简单圆回归模型中检测离群值

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摘要

The investigation on the identification of outliers in linear regression models can be extended to those for circular regression case. In this paper, we propose a new numerical statistic called mean circular error to identify possible outliers in circular regression models by using a row deletion approach. Through intensive simulation studies, the cut-off points of the statistic are obtained and its power of performance investigated. It is found that the performance improves as the concentration parameter of circular residuals becomes larger or the sample size becomes smaller. As an illustration, the statistic is applied to a wind direction data set.
机译:线性回归模型中离群值识别的研究可以扩展到圆形回归案例中。在本文中,我们提出了一种新的数值统计,称为均值圆误差,以通过使用行删除方法来识别圆回归模型中的可能离群值。通过深入的模拟研究,获得了统计的临界点,并研究了其性能。发现随着圆形残留物的浓度参数变大或样本大小变小,性能提高。作为说明,该统计信息应用于风向数据集。

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