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Sharing is caring? Measurement error and the issues arising from combining 3D morphometric datasets

机译:分享在乎吗?测量误差和合并3D形态计量数据集引起的问题

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摘要

Geometric morphometrics is routinely used in ecology and evolution and morphometric datasets are increasingly shared among researchers, allowing for more comprehensive studies and higher statistical power (as a consequence of increased sample size). However, sharing of morphometric data opens up the question of how much nonbiologically relevant variation (i.e., measurement error) is introduced in the resulting datasets and how this variation affects analyses. We perform a set of analyses based on an empirical 3D geometric morphometric dataset. In particular, we quantify the amount of error associated with combining data from multiple devices and digitized by multiple operators and test for the presence of bias. We also extend these analyses to a dataset obtained with a recently developed automated method, which does not require human‐digitized landmarks. Further, we analyze how measurement error affects estimates of phylogenetic signal and how its effect compares with the effect of phylogenetic uncertainty. We show that measurement error can be substantial when combining surface models produced by different devices and even more among landmarks digitized by different operators. We also document the presence of small, but significant, amounts of nonrandom error (i.e., bias). Measurement error is heavily reduced by excluding landmarks that are difficult to digitize. The automated method we tested had low levels of error, if used in combination with a procedure for dimensionality reduction. Estimates of phylogenetic signal can be more affected by measurement error than by phylogenetic uncertainty. Our results generally highlight the importance of landmark choice and the usefulness of estimating measurement error. Further, measurement error may limit comparisons of estimates of phylogenetic signal across studies if these have been performed using different devices or by different operators. Finally, we also show how widely held assumptions do not always hold true, particularly that measurement error affects inference more at a shallower phylogenetic scale and that automated methods perform worse than human digitization.
机译:几何形态计量学通常在生态学和进化中使用,形态计量数据集在研究人员之间越来越多地共享,从而可以进行更全面的研究和更高的统计能力(由于样本量的增加)。但是,形态计量学数据的共享提出了一个问题,即在结果数据集中引入了多少非生物学相关的变化(即测量误差)以及该变化如何影响分析。我们基于经验3D几何形态计量数据集执行一组分析。特别是,我们量化与组合来自多个设备的数据并由多个操作员数字化相关的错误量,并测试是否存在偏差。我们还将这些分析扩展到使用最近开发的自动化方法获得的数据集,该方法不需要人为数字化的地标。此外,我们分析了测量误差如何影响系统发育信号的估计,以及其影响与系统发育不确定性的影响相比。我们表明,当组合由不同设备产生的表面模型时,甚至在由不同操作员数字化的地标中,测量误差可能很大。我们还记录了少量但明显的非随机误差(即偏差)的存在。通过排除难以数字化的界标,可以大大减少测量误差。如果与减少尺寸的程序结合使用,我们测试的自动化方法的错误级别较低。系统误差估计比系统误差影响更大。我们的结果总体上强调了地标选择的重要性和估计测量误差的有用性。此外,如果已使用不同的设备或由不同的操作人员执行,则测量误差可能会限制整个研究中系统发育信号估计值的比较。最后,我们还显示了广泛持有的假设并不总是成立,特别是在较浅的系统发育尺度上,测量误差对推断的影响更大,并且自动化方法的性能不及人类数字化。

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