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首页> 外文期刊>Annals of Operations Research >Enhanced directed search: a continuation method for mixed-integer multi-objective optimization problems
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Enhanced directed search: a continuation method for mixed-integer multi-objective optimization problems

机译:增强的定向搜索:混合整数多目标优化问题的连续方法

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摘要

Multi-objective optimization problems (MOPs) commonly arise in various applications of engineering and management fields. Many real-world MOPs are mixed-integer multiobjective optimization problems (MMOP), where the solution space consists of real and integer decision variables. The research regarding MMOPs is still scarce due to the mixture nature of the solution space and difficulty of finding the set of trade-off solutions. In this work we propose a continuation based method that efficiently solves MMOP problems. Our method, called Enhanced Directed Search (EDS), is capable of steering the search along a predefined direction along the Pareto front in the objective function space. EDS traces the Pareto front by following closest predictor and corrector solutions in the course of optimization. By searching around the objective function boundary, EDS can solve problems with k 2 objectives. With five example problems widely studied in the literature, we demonstrate that EDS outperforms the recently developed Direct Zig Zag algorithm and the popular NSGA-II method.
机译:在工程和管理领域的各种应用中,多目标优化问题(MOP)通常出现。许多现实世界MOP是混合整数多目标优化问题(MMOP),其中解决方案空间由实际和整数决策变量组成。由于溶液空间的混合性和寻找折衷解决方案的难度,有关MMOPS的研究仍然是稀缺的。在这项工作中,我们提出了一种基于延续的方法,有效地解决了MMOP问题。我们的方法称为增强的指向搜索(EDS),能够沿着物镜函数空间沿着Paroto前沿沿着预定方向转向搜索。在优化过程中,EDS通过以下最近的预测器和校正器解决方案追踪Paroto Frower。通过搜索目标函数边界,EDS可以解决K> 2目标的问题。在文献中众所周度地研究了五个示例问题,我们展示了EDS优于最近开发的直接ZAG算法和流行的NSGA-II方法。

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