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Identification of a nonlinear dynamic biological model using the dominant parameter selection method

机译:运用主参数选择法识别非线性动态生物模型

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The identification of nonlinear models sometimes encounters problems because of the limited amount of available measurements in combination with a large number of uncertain model parameters to be identified. E.g., the determination of the chemical composition of a lettuce crop is a rather expensive procedure; thus the number of experimental measurements is limited. As a result, the number of parameters of the dynamic model that can be successively identified is also limited, and the subset of the parameters to be identified must be chosen in a reasonable way.rnParameter estimation for an extended nonlinear three-state model for lettuce growth in greenhouses is presented in this paper. The varying structural nitrogen concentration and water contents are the new elements included in the model. The dominant parameter selection (DPS) method was used to select a suitable set of identifiable parameters. The resulting calibrated model predicts quite well the experimental data which also include observations with severe nitrogen stress.
机译:非线性模型的识别有时会遇到问题,因为可用测量的数量有限,并且要识别的不确定模型参数很多。例如,确定莴苣作物的化学组成是相当昂贵的程序;因此,实验测量的数量是有限的。结果,可连续识别的动力学模型的参数数量也受到限制,必须以合理的方式选择要识别的参数的子集。■生菜的扩展非线性三态模型的参数估计本文介绍了温室的生长情况。变化的结构氮浓度和水含量是模型中包括的新元素。主导参数选择(DPS)方法用于选择一组合适的可识别参数。所得的校准模型可以很好地预测实验数据,其中还包括严重氮胁迫的观测结果。

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