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Testing peatland testate amoeba transfer functions: Appropriate methods for clustered training-sets

机译:测试泥炭地睾丸阿米巴传递函数:群集训练集的适当方法

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摘要

Transfer functions are widely used in palaeoecology to infer past environmental conditions from fossil remains of many groups of organisms. In contrast to traditional training-set design with one observation per site, some training-sets, including those for peatland testate amoeba-hydrology transfer functions, have a clustered structure with many observations from each site. Here we show that this clustered design causes standard performance statistics to be overly optimistic. Model performance when applied to independent data sets is considerably weaker than suggested by statistical cross-validation. We discuss the reasons for these problems and describe leave-one-site-out cross-validation and the cluster bootstrap as appropriate methods for clustered training-sets. Using these methods we show that the performance of most testate amoeba-hydrology transfer functions is worse than previously assumed and reconstructions are more uncertain.
机译:传递函数已在古生态学中广泛使用,可以从许多生物群的化石遗骸中推断出过去的环境条件。与每个站点只有一个观测值的传统训练集设计相比,某些训练集(包括泥炭地睾丸阿米巴水文传递函数的训练集)具有群集结构,每个站点都有许多观测值。在这里,我们证明了这种群集设计导致标准性能统计数据过于乐观。当应用于独立数据集时,模型的性能要比统计交叉验证所建议的要弱得多。我们讨论了这些问题的原因,并描述了留一站出交叉验证和聚类引导作为聚类训练集的适当方法。使用这些方法,我们证明大多数睾丸变形虫-水文传递函数的性能比以前假定的要差,并且重建的不确定性更高。

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