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Compositional Model Repositories via Dynamic Constraint Satisfaction with Order-of-Magnitude Preferences

机译:通过动态约束满足和阶数优先级的成分模型存储库

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The predominant knowledge-based approach to automated model construction, compositional modelling, employs a set of models of particular functional components. Its inference mechanism takes a scenario describing the constituent interacting components of a system and translates it into a useful mathematical model. This paper presents a novel compositional modelling approach aimed at building model repositories. It furthers the field in two respects. Firstly, it expands the application domain of compositional modelling to systems that can not be easily described in terms of interacting functional components, such as ecological systems. Secondly, it enables the incorporation of user preferences into the model selection process. These features are achieved by casting the compositional modelling problem as an activity-based dynamic preference constraint satisfaction problem, where the dynamic constraints describe the restrictions imposed over the composition of partial models and the preferences correspond to those of the user of the automated modeller. In addition, the preference levels are represented through the use of symbolic values that differ in orders of magnitude.
机译:用于自动化模型构建,组成建模的主要基于知识的方法采用了一组特定功能组件的模型。它的推理机制采用描述系统组成交互组件的方案,并将其转换为有用的数学模型。本文提出了一种新颖的成分建模方法,旨在构建模型库。它从两个方面推动了这一领域的发展。首先,它将组成建模的应用领域扩展到了在相互作用的功能组件方面无法轻易描述的系统,例如生态系统。其次,它可以将用户偏好整合到模型选择过程中。这些特征是通过将构成建模问题转换为基于活动的动态偏好约束满足问题来实现的,其中动态约束描述了对部分模型的构成施加的限制,并且偏好与自动建模者的用户相对应。另外,通过使用数量级不同的符号值来表示偏好级别。

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