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Comparison of linear and nonlinear regression for modeling the first-order degradation of pest-control substances in soil

机译:线性和非线性回归用于模拟土壤中害虫控制物质的一级降解的比较

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First-order kinetic models are often used to profile the degradation of pest-control compounds in soil. This approach is based on enzyme theory and is often favored due to its simplicity and its requirement by regulatory agencies. Here, linear and nonlinear regression approaches to modeling first-order decay are compared. Composite residual plots of many soil degradation data sets are presented on a normalized scale. These plots illustrate the general error structure for the data and are useful for detecting common mis-specifications of the models. Results indicate that a nonlinear regression approach to modeling first-order decay of compounds in soil more accurately describes most data sets when compared with a linear approach. Specifically, the observed error structure does not support the broad use of a logarithmic transformation to stabilize the variance. In addition, models generated using the linear approach generally exhibit more dramatic systematic deviations from the observations as compared with models generated using the nonlinear approach. The analysis methods described here may be useful for comparing alternative models in this and other research areas. [References: 22]
机译:一阶动力学模型通常用于描述土壤中害虫控制化合物的降解情况。这种方法基于酶理论,由于其简单性以及监管机构的要求而经常受到青睐。在这里,比较了对一阶衰减建模的线性和非线性回归方法。许多土壤退化数据集的复合残差图以标准化比例显示。这些图说明了数据的一般误差结构,对于检测模型的常见错误规格很有用。结果表明,与线性方法相比,建模土壤中化合物的一阶衰减的非线性回归方法可以更准确地描述大多数数据集。具体而言,观察到的误差结构不支持广泛使用对数变换来稳定方差。此外,与使用非线性方法生成的模型相比,使用线性方法生成的模型通常会表现出更大的观测系统偏差。此处描述的分析方法对于比较此研究领域和其他研究领域中的替代模型可能有用。 [参考:22]

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