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首页> 外文期刊>Journal of Paleolimnology >Assessing the performance of a diatom transfer function on four Minnesota lake sediment cores: effects of training set size and sample age
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Assessing the performance of a diatom transfer function on four Minnesota lake sediment cores: effects of training set size and sample age

机译:评估硅藻传递函数在明尼苏达州四个沉积岩核上的性能:训练集大小和样本年龄的影响

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Paleolimnological information is often extracted from diatom records using weighted averaging calibration and regression techniques. Larger calibration sample sets yield better inferences because they better characterize the environmental characteristics and species assemblages of the sample region. To optimize inferred information from fossil assemblages, however, it is worth knowing if fewer calibration samples can be used. Furthermore, confidence in environmental reconstructions is greater if we consider the relative importance of (A) similarity between fossil and calibration assemblages and (B) how well fossil taxa respond to the environmental variable of interest. We examine these issues using ~200-year sediment profiles from four Minnesota lakes and a 145-lake surface sediment training set calibrated for total phosphorus (TP). Training set sample sizes ranging from 10 to 145 were created through random sample selection, and models based on these training sets were used to calculate diatom-inferred (DI) TP data from fossil samples. Relationships between DI-TP variability and sample size were used to determine the minimum sample size needed to optimize the model for paleo-reconstruction. Similarly, similarities between fossil and modern assemblages were calculated for each size training set. Finally, fossil and modern assemblages were compared to determine whether older fossil samples had poorer similarity with modern analogs. More than 50–80 samples, depending on lake, were needed to stabilize variability in DI-TP results, and >110 training set samples were needed to minimize modern-fossil assemblage dissimilarities. Dissimilarities appeared to increase with sample age, but only one of the four studied cores displayed a significant trend. We have two recommendations for future studies: (1) be cautious when dealing with smaller training sets, especially if they are used to interpret older fossil assemblages and (2) understand how well fossil taxa are attuned to the variable of interest, as it is critical to evaluating the quality of the diatom-inferred data.
机译:通常使用加权平均校准和回归技术从硅藻记录中提取古生物学信息。较大的校准样品集可以提供更好的推断,因为它们可以更好地表征样品区域的环境特征和物种组成。然而,要优化从化石组合推断的信息,值得知道的是,是否可以使用更少的校准样品。此外,如果我们考虑以下方面的相对重要性,则对环境重建的信心就更大:(A)化石与校准组合之间的相似性,以及(B)化石分类群对目标环境变量的响应程度。我们使用来自四个明尼苏达州湖泊的约200年沉积物剖面图和针对总磷(TP)校准的145个湖面沉积物训练集来研究这些问题。通过随机样本选择创建了介于10到145之间的训练集样本大小,并且基于这些训练集的模型用于从化石样本中计算硅藻推断(DI)TP数据。 DI-TP变异性与样本量之间的关系用于确定优化模型以进行古重建所需的最小样本量。同样,对于每个尺寸的训练集,都计算出化石与现代组合之间的相似性。最后,比较了化石和现代组合物,以确定较旧的化石样品与现代类似物的相似性是否较差。为了稳定DI-TP结果的变异性,需要50-80个以上的样本,具体取决于湖泊,并且需要110个以上的训练集样本才能最大程度地减少现代化石组合的差异。差异似乎随着样本年龄的增加而增加,但是四个研究核心中只有一个显示出明显的趋势。对于未来的研究,我们有两个建议:(1)在处理较小的训练集时要格外小心,尤其是当它们用于解释较旧的化石组合时,尤其是(2)了解化石分类单元如何适应感兴趣的变量,因为它是对于评估硅藻推断数据的质量至关重要。

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