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Increase or Decrease Network Robustness with Genetic algorithms : A method for maximization or minimization of network robustness in attack or random failure scenarios

机译:利用遗传算法增加或减少网络稳健性:一种最大化或最小化攻击或随机故障情景中网络鲁棒性的方法

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Network robustness is a fundamental measure for finding the network tolerance against failures and attacks. There are many methods to measure network robustness for a variety of networks like a network of routers, transportation network and so on. Increasing network robustness against failures and attacks is a fundamental problem which many methods have been introduced like random preferential node attachment, random link attachment and etc. In this paper, we present a method to increase the attack impact or decrease random failure impact on the network depending on the purpose. Following method uses genetic algorithm as an optimization approach for improving network robustness measurement function. In order to do that, we start to find a sequence of node removals which have the greatest impact on the robustness measurement function. In case of increasing the network robustness, we duplicate the aforementioned nodes. This sequence can also serve us as a guidance for attacking harmful networks, like fire or disease distribution with minimal cost.
机译:网络稳健性是寻找对失败和攻击的网络容忍度的基本措施。有许多方法可以测量像路由器,运输网络等网络等各种网络的网络稳健性。增加对失败和攻击的网络鲁棒性是一种基本问题,许多方法已经引入了随机优先节点附件,随机链路附件等。在本文中,我们提出了一种增加攻击影响或减少网络的随机失效影响的方法取决于目的。以下方法使用遗传算法作为改善网络鲁棒性测量功能的优化方法。为此,我们开始找到一系列节点清除,对鲁棒性测量功能具有最大的影响。在增加网络稳健性的情况下,我们复制了上述节点。该序列还可以为我们作为攻击有害网络的指导,如火灾或疾病分布,具有最低的成本。

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