Fast Non-dominated Sorting in Multi Objective Genetic Algorithm for Bin Packing Problem

Muhammad Bintang Bahy, Aina Musdholifah
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引用次数: 1

Abstract

The bin packing problem is a problem where goods with different volumes and dimensions are put into a container so that the volume of goods inserted is maximized. The problem of multi-objective bin packing is a problem that is more commonly found in everyday life, because what is considered in packing is usually not only volume.In this research, a multi-objective genetic algorithm is proposed to solve the multi-objective bin packing problem. The proposed genetic algorithm uses non-dominated sorting and crowding distance methods to get the best solution for each objective and to avoid bias. The algorithm is then tested with several test classes that represent different combinations of item and container sizes.From the results of the tests carried out, it was found that the proposed algorithm can find several solutions which are the best candidate solutions for each objective. Also found how the correlation of each objective in the population.
装箱问题多目标遗传算法的快速非支配排序
箱子包装问题是一个将不同体积和尺寸的货物放入容器中,以使插入的货物体积最大化的问题。多目标仓包装问题是一个在日常生活中更常见的问题,因为包装中考虑的通常不仅仅是体积。在本研究中,提出了一种多目标遗传算法来解决多目标装箱问题。所提出的遗传算法使用非支配排序和拥挤距离方法来获得每个目标的最佳解,并避免偏差。然后用几个测试类来测试该算法,这些测试类表示物品和容器大小的不同组合。根据测试结果,发现所提出的算法可以找到几个解,这些解是每个目标的最佳候选解。还发现了各目标在人群中的相关性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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