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Active Robust Optimization: Optimizing for Robustness of Changeable Products

机译:主动稳健优化:优化可变产品的鲁棒性

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摘要

To succeed in a demanding and competitive market, great attention needs to be given to the process of product design. Incorporating optimization into the process enables the designer to find high-quality products according to their simulated performance. However, the actual performance may differ from the simulation results due to a variety of uncertainty factors. Robust optimization is commonly used to search for products that are less affected by the anticipated uncertainties. Changeability can improve the robustness of a product, as it allows the product to be adapted to a new configuration whenever the uncertain conditions change. This ability provides the changeable product with an active form of robustness.udSeveral methodologies exist for engineering design of changeable products, none of which includes optimization. This study presents the Active Robust Optimization (ARO) framework that offers the missing tools for optimizing changeable products. A new optimization problem is formulated, named Active Robust Optimization Problem (AROP). The benefit in designing solutions by solving an AROP lies in the realistic manner adaptation is considered when assessing the solutions' performance.udThe novel methodology can be applied to optimize any product that can be classified as a changeable product, i.e., it can be adjusted by its user during normal operation. This definition applies to a huge variety of applications, ranging from simple products such as fans and heaters, to complex systems such as production halls and transportation systems.udThe ARO framework is described in this dissertation and its unique features are studied. Its ability to find robust changeable solutions is examined for different sources of uncertainty, robustness criteria and sampling conditions.udAdditionally, a framework for Active Robust Multi-objective Optimization is developed. This generalisation of ARO itself presents many challenges, not encountered in previous studies. Novel approaches for evaluating and comparing changeable designs comprising multiple objectives are proposed along with algorithms for solving multi-objective AROPs.udThe framework and associated methodologies are demonstrated on two applications from different fields in engineering design. The first is an adjustable optical table, and the second is the selection of gears in a gearbox.
机译:为了在苛刻和竞争激烈的市场中取得成功,需要对产品设计过程给予极大的关注。将优化整合到过程中,可使设计人员根据其模拟性能找到高质量的产品。但是,由于各种不确定因素,实际性能可能与仿真结果有所不同。稳健的优化通常用于搜索受预期不确定性影响较小的产品。可变性可以提高产品的耐用性,因为无论何时不确定条件发生变化,可变性都可以使产品适应新的配置。这种能力为可变产品提供了一种积极的鲁棒性。 ud针对可变产品的工程设计存在多种方法,其中没有一种方法包括优化。这项研究提出了主动鲁棒优化(ARO)框架,该框架提供了用于优化可变产品的缺失工具。制定了一个新的优化问题,称为主动鲁棒优化问题(AROP)。通过解决AROP来设计解决方案的好处在于,在评估解决方案的性能时,要考虑到适应性。 ud这种新颖的方法可以用于优化可归类为可变产品的任何产品,即可以对其进行调整由其用户在正常操作过程中。该定义适用于各种各样的应用,从简单的产品(如风扇和加热器)到复杂的系统(如生产车间和运输系统)。 ud本文对ARO框架进行了描述,并研究了其独特的功能。针对不确定性,鲁棒性标准和采样条件的不同来源,研究了其找到鲁棒的可变解决方案的能力。 ud另外,开发了主动鲁棒多目标优化框架。 ARO本身的这种概括本身提出了许多挑战,而以前的研究并未遇到这些挑战。提出了用于评估和比较包含多个目标的可变设计的新颖方法,以及用于解决多目标AROP的算法。 ud在工程设计的不同领域的两个应用程序上演示了该框架和相关方法。第一个是可调光学平台,第二个是变速箱中齿轮的选择。

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    Shaul Salomon;

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  • 年度 2019
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