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Discriminant function analyses in archaeology: are classification rates too good to be true?

机译:考古学中的判别函数分析:分类率是否太高以至于不能成立?

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摘要

The use of discriminant function analyses (DFA) in archaeological and related research is on the increase, however many of the assumptions of this method receive a mixed treatment in the literature. Statisticians frequently use complex statistical models to investigate analytical parameters, but such idealised datasets may be hard to relate to "real-life" examples and the literature difficult to assess. Using two faunal datasets that are more typical of archaeological and related research, one comprised of size-corrected linear measurements of bovid humeri and another of 3D geometric morphometric (GMM) shape data of African monkey skulls, and two simulated datasets, we illustrate some of the most important but often ignored issues of DFA. We specifically show why it is paramount to address "over-fitting" by cross-validation when applying this method and how the probability of correctly classifying cases by chance can be properly and explicitly taken into account.
机译:判别函数分析(DFA)在考古学和相关研究中的使用正在增加,但是该方法的许多假设在文献中得到了混合处理。统计学家经常使用复杂的统计模型来研究分析参数,但这种理想化的数据集可能很难与“现实生活”示例相关联,并且难以评估文献。使用两个更典型的考古学和相关研究动物区系数据集,其中一个由大小校正的牛肱骨线性测量和另一个非洲猴头骨的3D几何形态学(GMM)形状数据组成,以及两个模拟数据集,我们说明了一些DFA中最重要但经常被忽略的问题。我们将具体说明为什么在应用此方法时通过交叉验证解决“过度拟合”是至关重要的,以及如何正确地并明确地考虑到偶然地对案例进行正确分类的可能性。

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