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Optimal Design of Energy Systems Using Constrained Grey-Box Multi-Objective Optimization

机译:约束灰箱多目标优化的能源系统优化设计

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摘要

The (global) optimization of energy systems, commonly characterized by high-fidelity and large-scale complex models, poses a formidable challenge partially due to the high noise and/or computational expense associated with the calculation of derivatives. This complexity is further amplified in the presence of multiple conflicting objectives, for which the goal is to generate trade-off compromise solutions, commonly known as Pareto-optimal solutions. We have previously introduced the p-ARGONAUT system, parallel AlgoRithms for Global Optimization of coNstrAined grey-box compUTational problems, which is designed to optimize general constrained single objective grey-box problems by postulating accurate and tractable surrogate formulations for all unknown equations in a computationally efficient manner. In this work, we extend p-ARGONAUT towards multi-objective optimization problems and test the performance of the framework, both in terms of accuracy and consistency, under many equality constraints. Computational results are reported for a number of benchmark multi-objective problems and a case study of an energy market design problem for a commercial building, while the performance of the framework is compared with other derivative-free optimization solvers.
机译:通常以高保真度和大规模复杂模型为特征的能源系统的(全局)优化部分由于巨大的噪声和/或与导数计算相关的计算费用而带来了巨大的挑战。在存在多个相互冲突的目标的情况下,这种复杂性会进一步放大,为此,目标是生成折衷的折衷解决方案,通常称为帕累托最优解决方案。我们之前已经介绍了p-ARGONAUT系统,用于全局优化灰箱计算问题的并行AlgoRithms,其旨在通过在计算中为所有未知方程式假定准确且易于处理的替代公式来优化一般约束的单目标灰箱问题。有效的方式。在这项工作中,我们将p-ARGONAUT扩展到多目标优化问题,并在许多相等性约束下,在准确性和一致性方面测试框架的性能。报告了许多基准多目标问题的计算结果,以及针对商业建筑的能源市场设计问题的案例研究,同时将框架的性能与其他无导数优化求解器进行了比较。

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