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A study on the effect of mutation in genetic algorithms for mesh router placement in wireless mesh networks

机译:遗传算法对无线网状网络中网状路由器布局的影响研究

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With the emergence of wireless networking paradigm, several optimization problems are appearing. Such problem are related to optimizing network connectivity, coverage and stability. The resolution of these problems turns out to be crucial for optimized network performance. In the case of Wireless Mesh Networks, such problems include computing placement of mesh router nodes so that network performance is optimized. However, as these optimization problems are known to be computationally hard to solve, Genetic Algorithms (GAs) have been recently investigated as effective resolution methods. Mutation operator is one of the GA ingredients. Unlike crossover operators, which achieve to transmit genetic information from parents to offsprings, mutation operators usually make some small local perturbation of the individuals, having thus less impact on individuals. Moreover, crossover is "a must" operator in GA and is usually applied with high probability, while mutation operators when implemented, are applied with small probability. Due to this, mutation operator is usually considered as a secondary operator. However, many studies in the literature have shown that mutation when effectively combined with selection operators can impYove the performance of GAs. In this work we present the results of an experimental study on the effect of mutation and selection operators in GA for mesh router nodes placement problem. The study aims to identify the mutation and selection types that work best for instances of different characteristics.
机译:随着无线网络范例的出现,出现了一些优化问题。此类问题与优化网络连接性,覆盖范围和稳定性有关。这些问题的解决对于优化网络性能至关重要。对于无线网状网络,此类问题包括计算网状路由器节点的位置,从而优化网络性能。但是,由于已知这些优化问题在计算上难以解决,因此最近研究了遗传算法(GA)作为有效的解决方法。变异算子是GA成分之一。与交叉算子可以将遗传信息从父母传递给后代不同,变异算子通常会对个体造成一些小的局部干扰,因此对个体的影响较小。此外,交叉是GA中的“必须”运算符,通常以较高的概率应用,而变异运算符在实施时以较小的概率应用。因此,通常将变异算子视为次要算子。但是,文献中的许多研究表明,与选择算子有效结合时,突变会降低GA的性能。在这项工作中,我们提出了针对网格路由器节点放置问题的遗传算法中的变异和选择算子影响的实验研究结果。该研究旨在确定最适合不同特征实例的突变和选择类型。

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