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Rejoinder to the discussion of 'The power of monitoring: how to make the most of a contaminated multivariate sample'

机译:重新加入“监控的力量:如何充分利用受污染的多元样本”的讨论

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In this discussion, we consider two examples. The first example concerns the Old Faithful data, which the authors (Cerioli, Riani, Atkinson, Corbellini in Stat Methods Appl, to appear) discuss in detail in their paper. The second example, which is taken from www.kaggle.com , is based on the prices and other attributes of 53,900 diamonds. The point of our discussion is to demonstrate that the process of producing valid models and then looking at diagnostics, that compare least squares and robust fits, can also effectively identify outliers and/or important structure missing from the model. Using this approach, we identify a dramatic change point in the diamonds data. We are very curious about what information the sophisticated monitoring methods produce about this change point and its effects on the outcome variable.
机译:在讨论中,我们考虑两个示例。第一个示例涉及“旧忠实”数据,作者(在Stat Methods Appl中出现的Cerioli,Riani,Atkinson,Corbellini)在其论文中进行了详细讨论。第二个示例来自www.kaggle.com,它基于53900颗钻石的价格和其他属性。我们讨论的重点是证明生成有效模型然后查看诊断结果(比较最小二乘和稳健拟合)的过程,也可以有效地识别模型中缺失的异常值和/或重要结构。使用这种方法,我们在钻石数据中确定了一个巨大的变化点。我们对复杂的监视方法会产生哪些有关此更改点及其对结果变量的影响的信息感到非常好奇。

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