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The mean function provides robustness to linear inverse modelling flow estimation in food webs: A comparison of functions derived from statistics and ecological theories

机译:均值函数为食品网中的线性逆模型流量估计提供了鲁棒性:统计和生态理论得出的函数的比较

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Quantitative estimates of carbon flows within food webs are increasingly viewed as essential to progress on a number of questions in basic and applied ecosystem science. Inverse modelling has been used for more than 20 years to estimate flow values for incomplete data sets. Monte Carlo Markov Chain linear inverse modelling calculates a probability density function for each flow. Among this distribution of possible values for each flow, the mean is generally chosen when a single solution is needed. The objective of the present study is to compare the robustness of the result when using the mean function, compared with 2 other statistical functions and 7 ecological functions derived from ecological theories on ecosystem maturity. The performance of the various functions was tested by comparing their accuracy in reconstructing a complete data set, the marine food web of Sylt-R?m? Bight, with known flows systematically removed. This was carried out on seven habitats and for 4 levels of degradation of the information. The robustness of each function was measured by comparing the estimated values of flows from inverse modelling after degradation with values from the original, complete data set. The analysis of results shows that the error of the estimated flows increases with the degradation of information, independent of the considered function. Two functions, the mean and the system omnivory index, provide more precise results than the others independent of the level of degradation of the information considered. The mean had the least impact on the reconstruction of food web flow values and on their organization described by ecological network analysis indices.
机译:人们越来越多地认为,食物网中碳流动的定量估计对于在基础和应用生态系统科学中的许多问题取得进展至关重要。逆向建模已经使用了20多年,用于估计不完整数据集的流量值。蒙特卡洛马尔可夫链线性反演模型为每个流计算概率密度函数。在每种流量的可能值的这种分布中,通常在需要单个解决方案时选择平均值。本研究的目的是比较使用均值函数时的结果的鲁棒性,并将其与其他两个统计函数和从生态系统成熟度的生态学理论得出的七个生态函数进行比较。通过比较各种功能在重建完整数据集(Sylt-R?m?的海洋食物网)中的准确性来测试各种功能的性能。 Bight,系统地删除了已知的流量。这项工作是在七个栖息地上进行的,信息退化程度达到了4个等级。通过将退化后逆建模的流量估计值与原始完整数据集中的值进行比较,可以测量每个函数的鲁棒性。结果分析表明,估计流量的误差随信息的退化而增加,而与所考虑的功能无关。均值和系统杂项指数这两个函数提供了比其他函数更精确的结果,而与所考虑信息的降级程度无关。平均值对重建食物网流量值以及由生态网络分析指标描述的其组织影响最小。

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