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System Sizing with a Model-Based Approach: Application to the Optimization of a Power Transmission System

机译:基于模型的方法确定系统规模:在输电系统优化中的应用

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摘要

We test the relevance of a model-based approach for sizing and optimizing complex systems. Classically a model-based approach is characterized by a clear partition between the problem description and the solving process. In the case of a design problem, we show that the sizing task could be systematically characterized and therefore could lead to a declarative model combining both system description and design requirements. Once translated into a constraint satisfaction problem, the resulting model can be solved with interval constraint programming methods and algorithms. Our first contribution to this approach is to precisely characterize the sizing task in design. The resulting terminology enables us to easily and systematically express the problem as a constraint satisfaction problem (CSP) which combines in the same model the system description and the design requirements. We have tested the approach on the optimal sizing problem of a power transmission system. Previous authors have described this scalable case study. They provide a mathematical formulation of the problem and solve it with an evolutionary algorithm. Starting from their description, we apply our methodology to model the problem as a CSP and then solve it with interval constraint programming algorithms. Our solutions are more adequate both in computational time and in optimization results than those published in the literature on the same problem. Moreover the declarative nature of constraint programming makes modifications or extensions easier than with evolutionary programming. The explanation of these results is our second contribution to the approach. However some important modelling issues remain to address in order to capture more and more complex system specifications. Further research is presented at the end of this paper.
机译:我们测试了基于模型的方法的大小和优化复杂系统的相关性。传统上,基于模型的方法的特征在于问题描述和解决过程之间的明确区分。在设计问题的情况下,我们表明规模确定任务可以被系统地表征,因此可以导致将系统描述和设计需求结合在一起的声明式模型。一旦转换为约束满足问题,就可以使用区间约束编程方法和算法来求解所得模型。我们对这种方法的第一个贡献是精确表征设计中的尺寸调整任务。由此产生的术语使我们能够轻松,系统地将问题表示为约束满足问题(CSP),该问题在同一模型中结合了系统描述和设计要求。我们已经对动力传输系统的最佳尺寸问题进行了测试。先前的作者已经描述了这个可扩展的案例研究。他们提供了问题的数学表述,并通过进化算法解决了。从他们的描述开始,我们应用我们的方法将问题建模为CSP,然后使用区间约束编程算法进行求解。我们的解决方案在计算时间和优化结果上都比文献中针对同一问题的解决方案更加合适。而且,约束编程的声明性质使修改或扩展比演化编程容易。这些结果的解释是我们对该方法的第二个贡献。但是,为了捕获越来越复杂的系统规范,仍然需要解决一些重要的建模问题。本文的末尾有进一步的研究。

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  • 来源
    《Mathematical Problems in Engineering》 |2018年第9期|6861429.1-6861429.14|共14页
  • 作者单位

    Inst Super Mecan Paris SupMeca, QUARTZ, 3 Rue Fernand Hainaut, F-93407 St Ouen, France;

    Dassault Aviat, Direct Gen Tech, 78 Quai Marcel Dassault, F-92552 St Cloud, France;

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