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A taxonomy-based approach to shed light on the babel of mathematical models for rice simulation

机译:a taxonomy-based approach to shed light on the babel of mathematical models for rice simulation

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摘要

For most biophysical domains, differences in model structures are seldom quantified. Here, we used a taxonomy-based approach to characterise thirteen rice models. Classification keys and binary attributes for each key were identified, and models were categorised into five clusters using a binary similarity measure and the unweighted pair-group method with arithmetic mean. Principal component analysis was performed on model outputs at four sites. Results indicated that (i) differences in structure often resulted in similar predictions and (ii) similar structures can lead to large differences in model outputs. User subjectivity during calibration may have hidden expected relationships between model structure and behaviour. This explanation, if confirmed, highlights the need for shared protocols to reduce the degrees of freedom during calibration, and to limit, in turn, the risk that user subjectivity influences model performance. (C) 2016 Elsevier Ltd. All rights reserved.
机译:对于大多数生物物理领域,很少量化模型结构的差异。在这里,我们使用了基于分类法的方法来表征十三种水稻模型。识别分类关键字和每个关键字的二进制属性,并使用二进制相似性度量和具有算术平均值的非加权对组方法将模型分类为五个聚类。对四个地点的模型输出进行了主成分分析。结果表明(i)结构上的差异通常会导致相似的预测,并且(ii)结构上的相似会导致模型输出的较大差异。校准过程中的用户主观性可能隐藏了模型结构与行为之间的预期关系。如果得到证实,则该解释突出显示了需要共享协议以减少校准期间的自由度,并进而限制用户主观性影响模型性能的风险。 (C)2016 Elsevier Ltd.保留所有权利。

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