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A knowledge-based method for the automatic determination of hydrological model structures

机译:一种基于知识的方法,用于自动测定水文模型结构

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摘要

To determine a suitable hydrological model structure for a specific application context using integrated modelling frameworks, modellers usually need to manually select the required hydrological processes, identify the appropriate algorithm for each process, and couple the algorithms' software components. However, these modelling steps are difficult and require corresponding knowledge. It is not easy for modellers to master all of the required knowledge. To alleviate this problem, a knowledge-based method is proposed to automatically determine hydrological model structures. First, modelling knowledge for process selection, algorithm identification, and component coupling is formalized in the formats of the Rule Markup Language (RuleML) and Resource Description Framework (RDF). Second, the formalized knowledge is applied to an inference engine to determine model structures. The method is applied to three hypothetical experiments and a real experiment. These experiments show how the knowledge-based method could support modellers in determining suitable model structures. The proposed method has the potential to reduce the knowledge burden on modellers and would be conducive to the promotion of integrated modelling frameworks.
机译:为了使用集成建模框架确定特定应用上下文的合适水文模型结构,莫德勒通常需要手动选择所需的水文过程,确定每个过程的适当算法,并耦合算法的软件组件。然而,这些建模步骤难以且需要相应的知识。莫德勒掌握所有必需的知识并不容易。为了减轻这个问题,提出了一种基于知识的方法来自动确定水文模型结构。首先,以规则标记语言(RULEML)和资源描述框架(RDF)的格式形式化用于处理选择,算法标识和组件耦合的建模知识。其次,正式的知识应用于推理引擎以确定模型结构。该方法适用于三个假想实验和实验。这些实验表明,知识的方法如何支持莫德勒确定合适的模型结构。该方法有可能降低莫德尔斯的知识负担,并有利于促进综合建模框架。

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