黑麦草叶片生长模型的改进

Vincent Migault, D. Combes, P. Barre, B. Gueye, G. Louarn, A. Escobar-Gutiérrez
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引用次数: 2

摘要

要了解草地的使用价值是如何产生的,就必须对植物的形态发生进行研究和建模。本研究侧重于形态发生的一个部分,即利用数学函数建立叶片生长模型。本研究的目的是评估五个函数对叶片生长动力学的拟合性能。所选的五个函数是Logistic、Chanter、Gompertz、Hyperbola 和 Beta 生长函数。为了评估函数的拟合性能,使用了温室实验的数据。这些数据是 10 种基因型的 1933 片叶子在 4 种光质处理下的生长动力学。该实验再现了田间条件下的遗传和光照多样性。使用平方误差总和(SSE)、平方误差均值(MSE)和阿凯克信息准则(AIC)等标准对拟合优度进行的比较表明,贝塔生长函数是黑麦草叶片生长模型的最佳函数。
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Improved modelling of ryegrass foliar growth
To understand how the grassland use-value is creates, it is necessary to study and model the morphogenesis of plants. This study focuses on one part of the morphogenesis, the modelling of foliar growth using mathematical function. The aim of this study is to evaluate fitting performance of five functions on foliar growth kinetics. The five selected functions are: Logistic, Chanter, Gompertz, Hyperbola and Beta Growth function. To evaluate fitting performance of functions, data from a greenhouse experiment were used. These data are the kinetics of leaf growth of 1933 leaves from 10 genotypes under 4 light quality treatments. This experiment recreates genetic and light diversity as in field condition. The comparison of goodness of fit using criteria such as sum of squared errors (SSE), mean of squared errors (MSE) and Akaike's information criterion (AIC) shows that the Beta Growth function is the best function to model the ryegrass foliar growth.
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