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Model validation and calibration based on component functions of model output

机译:基于模型输出组件功能的模型验证和校准

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The target in this work is to validate the component functions of model output between physical observation and computational model with the area metric. Based on the theory of high dimensional model representations (HDMR) of independent input variables, conditional expectations are component functions of model output, and the conditional expectations reflect partial information of model output. Therefore, the model validation of conditional expectations tells the discrepancy between the partial information of the computational model output and that of the observations. Then a calibration of the conditional expectations is carried out to reduce the value of model validation metric. After that, a recalculation of the model validation metric of model output is taken with the calibrated model parameters, and the result shows that a reduction of the discrepancy in the conditional expectations can help decrease the difference in model output. At last, several examples are employed to demonstrate the rationality and necessity of the methodology in case of both single validation site and multiple validation sites. (C) 2015 Elsevier Ltd. All rights reserved.
机译:这项工作的目标是通过面积度量来验证物理观测和计算模型之间的模型输出的组成函数。基于独立输入变量的高维模型表示(HDMR)理论,条件期望是模型输出的组成函数,条件期望反映了模型输出的部分信息。因此,条件期望的模型验证表明了计算模型输出的部分信息与观测值的部分信息之间的差异。然后,对条件期望值进行校准以减少模型验证指标的价值。之后,使用校正后的模型参数对模型输出的模型验证度量进行重新计算,结果表明,减少条件期望值的差异可以帮助减小模型输出的差异。最后,利用几个例子来说明在单个验证站点和多个验证站点的情况下该方法的合理性和必要性。 (C)2015 Elsevier Ltd.保留所有权利。

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