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Modeling and Robust Optimization for System of Systems Problems under Uncertainty

机译:不确定性下系统问题系统的建模与鲁棒优化

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The paper proposes a novel idea for how to model and optimize uncertain problems of system of systems (SoS). Firstly, the background and necessity on researching SoS and its robust optimization under uncertainty are introduced. Secondly, preparatory models are constructed to model the aggregations and cooperation among SoS and are regarded as the main body of further studies. Subsequently, a scenario-based model to formulate uncertainties and a Markov-based model to simulate uncertainty evolutions of SoS are introduced. Then, a novel idea for how to solving robust optimization under uncertainties in single-stage and multi-stage is proposed. The methods of the researches can be applied to solve SoS problems under uncertainty in real world, such as transportation systems planning, power grid systems operation and competition considered financial cooperation etc.
机译:本文提出了如何模拟和优化系统系统(SOS)的不确定问题的新颖思想。首先,介绍了在不确定性下研究SOS及其鲁棒优化的背景和必要性。其次,建立准备模型以模拟SO之间的聚合和合作,并被视为进一步研究的主体。随后,介绍了基于场景的模型,以制定不确定性和基于马尔可夫的模型,以模拟SOS的不确定演变。然后,提出了一种提出了如何在单阶段和多阶段的不确定性下解决鲁棒优化的新颖思想。该研究的方法可以应用于解决现实世界的不确定性的SOS问题,例如运输系统规划,电网系统运营和竞争被认为是金融合作等。

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