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Post Pareto-optimal ranking algorithm for multi-objective optimization using extended angle dominance

机译:用扩展角度优势的多目标优化Posto最优排名算法

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This paper presents a solution ranking algorithm to find the outstanding solutions in given set of non-dominated solutions of multi-objective optimization problems, which are the results from either Multi-Objective Evolutionary Algorithms (MOEAs) or exact methods. The algo-rithm enables the decision makers to identify outstanding solutions without a deep understanding of the problem. The algorithm provides a ranking for all solutions so that they can obtain any top K ranked solutions to implement. This novel parameter-free solution ranking approach is based on two concepts: an extended angle-based dominance technique from the algorithm called ADaptive angle-based pruning Algorithm (ADA) for discovering the knee solutions and the inverse-square law of light for enhancing the diversity of solutions. We evaluate the performance of the approach on several well-known test problems against well-known knee finding algorithms as well as on a practical system design and optimization problem to demonstrate the usefulness of the algorithm. (C) 2020 Elsevier Ltd. All rights reserved.
机译:本文介绍了一个解决方案排名算法,用于找到多目标优化问题的给定非主导解决方案集中的优异解决方案,这是多目标进化算法(MOEAS)或精确方法的结果。 Algo-Rithm使决策者能够识别出色的解决方案,而不会深入了解问题。该算法为所有解决方案提供排名,以便它们可以获得任何最高k个排名的解决方案来实现。这种新型的无参数解决方案排名方法是基于两个概念:从称为自适应角度的修剪算法(ADA)的算法的扩展角度的优势技术,用于发现膝关节解决方案和用于增强的抗体光法解决方案的多样性。我们评估对众所周知的膝关节膝关节算法以及实际系统设计和优化问题的几个众所周知的测试问题的性能,以证明算法的有用性。 (c)2020 elestvier有限公司保留所有权利。

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