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RELIABILITY OF GENOTYPE-SPECIFIC PARAMETER ESTIMATION FOR CROP MODELS: INSIGHTS FROM A MARKOV CHAIN MONTE-CARLO ESTIMATION APPROACH

机译:作物模型的基因型特异性参数估计的可靠性:来自马尔可夫链Monte-Carlo估计方法的见解

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摘要

Parameter estimation is a critical step in successful application of dynamic crop models to simulate crop growth and yield under various climatic and management scenarios. Although inverse modeling parameterization techniques significantly improve the predictive capabilities of models, whether these approaches can recover the true parameter values of a specific genotype or cultivar is seldom investigated. In this study, we applied a Markov Chain Monte-Carlo (MCMC) method to the DSSAT dry bean model to estimate (recover) the genotype-specific parameters (GSPs) of 150 synthetic recombinant inbred lines (RILs) of dry bean. The synthetic parents of the population were assigned contrasting GSP values obtained from a database, and each of these GSPs was associated with several quantitative trait loci. A standard inverse modeling approach that simultaneously estimated all GSPs generated a set of values that could reproduce the original synthetic observations, but many of the estimated GSP values significantly differed from the original values. However, when parameter estimation was carried out sequentially in a stepwise manner, according to the genetically controlled plant development process, most of the estimated parameters had values similar to the original values. Developmental parameters were more accurately estimated than those related to dry mass accumulation. This new approach appears to reduce the problem of equifinality in parameter estimation, and it is especially relevant if attempts are made to relate parameter values to individual genes.
机译:参数估计是成功应用动态作物模型模拟各种气候和管理情景下作物生长和产量的关键步骤。尽管逆建模参数化技术显著提高了模型的预测能力,但这些方法能否恢复特定基因型或品种的真实参数值却很少被研究。在本研究中,我们将马尔可夫链蒙特卡罗(MCMC)方法应用于DSSAT干豆模型,以估计(恢复)150个干豆合成重组自交系(RIL)的基因型特异性参数(GSP)。该群体的合成亲本被分配了从数据库中获得的对比GSP值,每个GSP都与几个数量性状位点相关。同时估计所有GSP的标准逆建模方法生成了一组值,可以重现原始合成观测值,但许多估计GSP值与原始值存在显著差异。然而,当按照遗传控制的植物发育过程,以逐步的方式顺序进行参数估计时,大多数估计参数的值与原始值相似。与干物质积累相关的发育参数相比,发育参数的估计更准确。这种新方法似乎可以减少参数估计中的等终局性问题,如果试图将参数值与单个基因联系起来,这种方法尤其重要。

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