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首页> 外文期刊>Theoretical Biology and Medical Modelling >The effect of parameter variability in the allometric projection of leaf growth rates for eelgrass ( Zostera marina L.) II: the importance of data quality control procedures in bias reduction
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The effect of parameter variability in the allometric projection of leaf growth rates for eelgrass ( Zostera marina L.) II: the importance of data quality control procedures in bias reduction

机译:参数变异性对鳗草叶片生长速率异速投影的影响II:数据质量控制程序在减少偏差中的重要性

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摘要

Eelgrass grants important ecological benefits including a nursery for waterfowl and fish species, shoreline stabilization, nutrient recycling and carbon sequestration. Upon the exacerbation of deleterious anthropogenic influences, re-establishment of eelgrass beds has mainly depended on transplantation. Productivity estimations provide valuable information for the appraisal of the restoration of ecological functions of natural populations. Assessments over early stages of transplants should preferably be nondestructive. Allometric scaling of eelgrass leaf biomass in terms of matching length provides a proxy that reduces leaf biomass and productivity estimations to simple measurements of leaf length and its elongation over a period. We examine how parameter variability impacts the accuracy of the considered proxy and the extent on what data quality and sample size influence the uncertainties of the involved allometric parameters. We adapted a Median Absolute Deviation data quality control procedure to remove inconsistencies in the crude data. For evaluating the effect of parametric uncertainty we performed both a formal exploration and an analysis of the sensitivity of the allometric projection method to parameter changes. We used parameter estimates obtained by means of nonlinear regression from crude as well as processed data. We obtained reference leaf growth rates by allometric projection using parameter estimates produced by the crude data, and then considered changes in fitted parameters bounded by the modulus of the vector of the linked standard errors, we found absolute deviations up to 10?% of reference values. After data quality control, the equivalent maximum deviation was under 7?% of corresponding reference rates. Therefore, the addressed allometric method is robust. Even the smaller sized samples in the quality controlled dataset produced better accuracy levels than the whole set of crude data. We propose quality control of data as a highly recommended step in the overall procedure that leads to reliable allometric surrogates of eelgrass leaf growth rates. The proliferation of inconsistent replicates in the crude data points towards the importance of discarding incomplete leaves. We also recommend avoiding errors in estimating the biomass of small leaves for which precision of the used analytical scale might be an issue.
机译:鳗草具有重要的生态效益,包括为水禽和鱼类提供苗圃,稳定海岸线,养分循环利用和固碳。随着人为有害影响的加剧,鳗草床的重建主要取决于移植。生产力估算为评估自然种群的生态功能提供了有价值的信息。移植早期的评估应优选无损。就匹配长度而言,鳗草叶片生物量的异度缩放提供了减少叶片生物量和生产力估计值的代理,可简化对叶片长度及其在一段时间内的伸长率的测量。我们研究了参数可变性如何影响所考虑代理的准确性,以及数据质量和样本大小对涉及的异体参数不确定性的影响程度。我们采用了中位数绝对偏差数据质量控制程序,以消除原始数据中的不一致之处。为了评估参数不确定性的影响,我们进行了正式探索和对异速投影法对参数变化的敏感性的分析。我们使用了通过非线性回归从原油以及加工数据中获得的参数估计值。我们使用原始数据产生的参数估计值通过异速投影获得参考叶的生长速率,然后考虑拟合参数的变化,该变化以链接的标准误差的向量的模数为边界,我们发现绝对偏差最大为参考值的10%。 。经过数据质量控制后,等效最大偏差低于相应参考速率的7%。因此,所提出的异速测量方法是鲁棒的。即使是质量控制数据集中的较小样本,其准确度也比整个原始数据集更高。我们建议对数据进行质量控制,这是在整个过程中强烈建议采取的步骤,该步骤可产生可靠的异地替代的鳗草叶片生长速率。原始数据中不一致的重复样本的扩散表明丢弃不完整叶片的重要性。我们还建议避免在估计小叶片生物量时出现错误,因为对于这些叶片,所用分析规模的精度可能会成为问题。

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