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Multiobjective optimization techniques applied to engineering problems

机译:多目标优化技术应用于工程问题

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Optimization problems often involve situations in which the user's goal is to minimize and/or maximize not a single objective function, but several, usually conflicting, functions simultaneously. Such situations are formulated as multiobjective optimization problems, also known as multicriteria, multiperformance or vector optimizations. Because multiobjective optimization problems arise in different scientific applications, many researches have focused on developing methods for their solution. Thus, there are several criteria that can be considered to solve such complex optimizations. This paper contributes to the study of optimization problems, by comparing some of these methods. The classical method, based on function scalarization, in which a vector function is transformed into a scalar function, is represented here by the weighted objectives and global criterion methods. A different approach involves hierarchical, trade-off and goal programming, which treats the objective functions as additional constraints. Some multicriteria optimization problems are given to illustrate each methodology studied here. The techniques are initially applied to an environmentally friendly and economically feasible electric power distribution problem. The second application involves a dynamics optimization problem aimed at optimizing the first three natural frequencies.
机译:优化问题通常涉及以下情况:用户的目标是最小化和/或最大化一个目标功能,而不是最小化和/或最大化同时多个(通常是相互冲突的)功能。这种情况被表述为多目标优化问题,也称为多准则,多性能或向量优化。由于多目标优化问题出现在不同的科学应用中,因此许多研究都集中在开发解决方案。因此,可以考虑采用几种标准来解决这种复杂的优化问题。通过比较其中的一些方法,本文有助于研究优化问题。在此,基于函数标量的经典方法(其中矢量函数转换为标量函数)由加权目标和全局准则方法表示。一种不同的方法涉及分层,权衡和目标编程,它将目标功能视为附加约束。给出了一些多准则优化问题,以说明此处研究的每种方法。该技术最初应用于环境友好和经济可行的配电问题。第二个应用程序涉及旨在优化前三个固有频率的动力学优化问题。

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