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Informal likelihood measures in model assessment: Theoretic development and investigation

机译:模型评估中的非正式似然度量:理论发展和研究

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Within hydrology performance criteria such as the Nash-Sutdiffe efficiency have been used to condition the parameter space of a model. Their use is motivated by the fact that the stochastic error series between a model output and corresponding observations is the result of the composite effect of multiple error sources which cannot be described, even in form, a priori. This paper formalises the use of such performance criteria within a Bayesian framework, such as Generalised Likelihood Uncertainty Estimation (GLUE), by introducing the concept of Informal Likelihoods. Informal Likelihoods are used to characterise desirable features in the relationship between the model output and corresponding observed data. A number of common performance criteria are considered as Informal Likelihoods. Analytical results and a simulation indicate all of the performance criteria considered as Informal Likelihoods in this paper have one or more properties which may be considered undesirable, but may perform no less well in conditioning model parameters than formal likelihoods for which the assumptions are only mildly incorrect.
机译:在水文性能标准之内,例如纳什-苏迪夫效率,已被用来调节模型的参数空间。模型的使用和相应的观测值之间的随机误差序列是多个误差源的综合效应的结果,这些误差源甚至无法以先验的形式描述,因此促使它们的使用。本文通过介绍非正式可能性的概念,在贝叶斯框架(例如广义似然不确定性估计(GLUE))中正式确定了此类绩效标准的使用。非正式可能性被用来表征模型输出和相应观测数据之间关系的理想特征。许多常见的绩效标准被认为是“非正式可能性”。分析结果和模拟表明,本文中所有被认为是“非正式可能性”的性能标准均具有一个或多个可能被认为不理想的属性,但在条件模型参数上的表现可能不比假设仅轻微错误的形式似然好。 。

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