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Using Stochastic Dominance in Multi-Objective Optimizers for Aerospace Design Under Uncertainty

机译:在不确定度下使用多目标优化器的随机优势

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In optimization under uncertainty for aerospace design, statistical moments of the quantity of interest are often treated as separate objectives and are traded off in a multi-objective optimization formulation. However, in many design problems the trade-off between statistical moments can be large and the Pareto front representing this trade-off can include designs with undesirable behavior, such as being robust but being guaranteed to give a worse performance than another design. When a simulation of a system is computationally expensive, obtaining the full Pareto front is unfeasible and so spending optimization time obtaining such undesirable designs wastes time that could be spent obtaining more desirable alternatives. As a remedy, we propose an optimization formulation that can use multiple dominance criteria to avoid generating potentially inferior designs. We consider various orders of stochastic dominance as criteria to use alongside statistical moment based Pareto dominance, and illustrate how this gives rise to improved designs using a limited computational budget in an acoustic horn design problem and a transonic airfoil design problem.
机译:在航空航天设计不确定下的优化中,兴趣数量的统计时刻通常被视为独立的目标,并在多目标优化配方中交易。然而,在许多设计问题中,统计时刻之间的权衡可以很大,并且代表这种权衡的帕累托前线可以包括具有不良行为的设计,例如坚固但被保证给出比另一个设计更糟糕的性能。当系统的模拟是计算昂贵的时,获得完整的帕累托前线是不可行的,因此支出优化时间获得这种不期望的设计浪费了可以花费更好的替代方案的时间。作为补救措施,我们提出了一种优化配方,可以使用多个优势标准来避免产生潜在的劣等设计。我们将各种随机级别的秩序视为基于统计时刻的帕累托支配的标准,并说明了如何在声学角设计问题和跨音翼型设计问题中使用有限的计算预算来改善设计。

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