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Comparison of single and multi-objective evolutionary algorithms for robust link-state routing

机译:鲁棒链路状态路由的单目标和多目标进化算法的比较

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摘要

Traffic Engineering (TE) approaches are increasingly impor- tant in network management to allow an optimized configuration and resource allocation. In link-state routing, the task of setting appropriate weights to the links is both an important and a challenging optimization task. A number of different approaches has been put forward towards this aim, including the successful use of Evolutionary Algorithms (EAs). In this context, this work addresses the evaluation of three distinct EAs, a single and two multi-objective EAs, in two tasks related to weight setting optimization towards optimal intra-domain routing, knowing the network topology and aggregated traffic demands and seeking to mini- mize network congestion. In both tasks, the optimization considers sce- narios where there is a dynamic alteration in the state of the system, in the first considering changes in the traffic demand matrices and in the latter considering the possibility of link failures. The methods will, thus, need to simultaneously optimize for both conditions, the normal and the altered one, following a preventive TE approach towards robust configurations. Since this can be formulated as a bi-objective function, the use of multi-objective EAs, such as SPEA2 and NSGA-II, came nat- urally, being those compared to a single-objective EA. The results show a remarkable behavior of NSGA-II in all proposed tasks scaling well for harder instances, and thus presenting itself as the most promising option for TE in these scenarios.
机译:流量工程(TE)方法在网络管理中变得越来越重要,以允许优化的配置和资源分配。在链路状态路由中,为链路设置适当权重的任务既是重要的也是具有挑战性的优化任务。为此目的已经提出了许多不同的方法,包括成功使用进化算法(EA)。在这种情况下,这项工作解决了对三个权重分别为一个和两个多目标EA的评估,这两个任务涉及权重设置优化,以实现最佳域内路由,了解网络拓扑和总流量需求,并寻求最小化-消除网络拥塞。在这两个任务中,优化都考虑了场景中系统状态的动态变化,首先考虑流量需求矩阵的变化,然后考虑链路故障的可能性。因此,在针对稳健配置的预防性TE方法之后,该方法将需要同时针对正常情况和变更情况这两种情况进行优化。由于可以将其表述为双目标函数,因此自然而然地将SPEA2和NSGA-II等多目标EA用作单目标EA。结果表明,在所有拟议任务中,NSGA-II的行为都非常出色,可以很好地扩展到较难的情况,因此,在这些情况下,它本身是TE最有希望的选择。

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