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Taxonomic harmonization may reveal a stronger association between diatom assemblages and total phosphorus in large datasets

机译:在大型数据集中,分类学上的协调可能揭示硅藻组合与总磷之间的更强关联

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摘要

Diatom data have been collected in large-scale biological assessments in the United States, such as the U.S. Environmental Protection Agency's National Rivers and Streams Assessment (NRSA). However, the effectiveness of diatoms as indicators may suffer if inconsistent taxon identifications across different analysts obscure the relationships between assemblage composition and environmental variables. To reduce these inconsistencies, we harmonized the 2008-2009 NRSA data from nine analysts by updating names to current synonyms and by statistically identifying taxa with high analyst signal (taxa with more variation in relative abundance explained by the analyst factor, relative to environmental variables). We then screened a subset of samples with QA/QC data and combined taxa with mismatching identifications by the primary and secondary analysts. When these combined "slash groups" did not reduce analyst signal, we elevated taxa to the genus level or omitted taxa in difficult species complexes. We examined the variation explained by analyst in the original and revised datasets. Further, we examined how revising the datasets to reduce analyst signal can reduce inconsistency, thereby uncovering the variation in assemblage composition explained by total phosphorus (TP), an environmental variable of high priority for water managers. To produce a revised dataset with the greatest taxonomic consistency, we ultimately made 124 slash groups, omitted 7 taxa in the small naviculoid (e.g., Sellaphora atomoides) species complex, and elevated Nitzschia, Diploneis, and Tryblionella taxa to the genus level. Relative to the original dataset, the revised dataset had more overlap among samples grouped by analyst in ordination space, less variation explained by the analyst factor, and more than double the variation in assemblage composition explained by TP. Elevating all taxa to the genus level did not eliminate analyst signal completely, and analyst remained the most important predictor for the genera Sellaphora, Mayamaea, and Psammodictyon, indicating that these taxa present the greatest obstacle to consistent identification in this dataset. Although our process did not completely remove analyst signal, this work provides a method to minimize analyst signal and improve detection of diatom association with TP in large datasets involving multiple analysts. Examination of variation in assemblage data explained by analyst and taxonomic harmonization may be necessary steps for improving data quality and the utility of diatoms as indicators of environmental variables.
机译:硅藻数据是在美国进行的大规模生物学评估中收集的,例如美国环境保护局的国家河流与溪流评估(NRSA)。但是,如果不同分析师之间的分类单元识别不一致,则硅藻作为指标的有效性可能会受到影响,从而掩盖了组合物成分与环境变量之间的关系。为减少这些不一致性,我们通过将名称更新为当前同义词并通过统计方式识别具有较高分析信号的分类单元(相对丰度较大的分类单元,由分析员因素解释,相对于环境变量),协调了来自9位分析师的2008-2009 NRSA数据。 。然后,我们通过QA / QC数据筛选了样本的子集,并结合了主要和次要分析师识别出的不正确组合的分类单元。当这些组合的“斜线组”没有减少分析人员的信号时,我们将分类单元提高到属水平,或者在困难物种复合物中省略了分类单元。我们检查了分析师在原始数据集和修订的数据集中解释的差异。此外,我们研究了如何修改数据集以减少分析人员的信号可以减少不一致之处,从而揭示总磷(TP)解释的组合物成分变化,总磷是水管理者的高度优先环境变量。为了产生具有最大分类学一致性的修订数据集,我们最终创建了124个斜线组,在小型海军类(例如Sellaphora atomoides)物种复合物中省略了7个分类单元,并将Nitzschia,Diploneis和Tryblionella分类单元提升到属水平。相对于原始数据集,经修订的数据集在按排序空间中按分析器分组的样本之间有更多的重叠,由分析器因素解释的变化较小,而由TP解释的组合物组成的变化则是两倍以上。将所有分类单元提高到属水平并不能完全消除分析人员的信号,分析人员仍然是Sellaphora,Mayamaea和Psammodictyon属的最重要预测因子,这表明这些分类单元是该数据集中一致性识别的最大障碍。尽管我们的过程并未完全消除分析人员的信号,但这项工作提供了一种方法,可在涉及多个分析人员的大型数据集中最大程度地减少分析人员信号并改善与TP的硅藻关联检测。分析人员解释的组装数据变化以及分类学一致性可能是提高数据质量和使用硅藻作为环境变量指标的必要步骤。

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