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A hybrid Multi-Objective Genetic Algorithm for Bandwidth Multi-Coloring Problem

机译:带宽多色问题的混合多目标遗传算法

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Standard Genetic Algorithm (GA) yields poor performance on the Graph Coloring Problem (GCP) and its variants. This paper presents a Multi-Objective Genetic Algorithm (MOGA) for Bandwidth Multi-Coloring Problem (BMCP). The problem is a generalization of GCP. In the proposed method, genetic operations are replaced with new ones which suit better to the structure of the problem. Performance of this MOGA framework is further boosted by hybridizing it with a Local Search (LS) algorithm. The aim of this hybrid approach is to increase the variety within the population through the genetic operations and to improve those individuals further by using LS. Several tests were conducted on a collection of benchmarks from GEOM series and promising results are obtained.
机译:标准遗传算法(GA)在图形着色问题(GCP)及其变体上的性能较差。本文提出了一种用于带宽多色问题(BMCP)的多目标遗传算法(MOGA)。问题是GCP的泛化。在提出的方法中,遗传运算被新的替换,从而更适合问题的结构。通过将其与本地搜索(LS)算法混合,可进一步提高此MOGA框架的性能。这种混合方法的目的是通过遗传操作增加种群内的多样性,并通过使用LS进一步改善这些个体。对GEOM系列基准的集合进行了一些测试,并获得了可喜的结果。

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