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Wavelength assignment for reducing in-band crosstalk attack propagation in optical networks: ILP formulations and heuristic algorithms

机译:波长分配以减少光网络中的带内串扰攻击传播:ILP公式和启发式算法

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Today's Transparent Optical Networks (TONs) are highly vulnerable to various physical-layer attacks, such as high-power jamming, which can cause severe service disruption or even service denial. The transparency of TONs enables certain attacks to propagate through the network, not only increasing their damage proportions, but also making source identification and attack localization more difficult. High-power jamming attacks causing in-band crosstalk in switches are amongst the most malicious of such attacks. In this paper, we propose a wavelength assignment scheme to reduce their damage assuming limited attack propagation capabilities. This complements our previous work in Furdek et al. (M. Furdek, N. Skorin-Kapov, M. Grbac, Attack-aware wavelength assignment for localization of in-band crosstalk attack propagation, IEEE/OSA Journal of Optical Communications and Networking 2 (11) (2010) 1000-1009) where we investigated infinite jamming attack propagation to find an upper bound on the network vulnerability to such attacks. Here, we consider a more realistic scenario where crosstalk attacks can spread only via primary and/or secondary attackers and define new objective criteria for wavelength assignment, called the PAR (Primary Attack Radius) and SAR (Secondary Attack Radius), accordingly. We formulate the problem variants as integer linear programs (ILPs) with the objectives of minimizing the PAR and SAR values. Due to the intractability of the ILP formulations, for larger instances we propose GRASP (Greedy Randomized Adaptive Search Procedure) heuristic algorithms to find suboptimal solutions in reasonable time. Results show that these approaches can obtain solutions using the same number of wavelengths as classical wavelength assignment, while significantly reducing jamming attack damage proportions in optical networks.
机译:当今的透明光网络(TON)极易受到各种物理层攻击的影响,例如大功率干扰,这可能导致严重的服务中断甚至拒绝服务。 TON的透明性使某些攻击可以通过网络传播,这不仅增加了它们的破坏比例,而且使源识别和攻击定位更加困难。在此类攻击中,最恶意的攻击是在交换机中引起带内串扰的大功率干扰攻击。在本文中,我们提出了一种波长分配方案,以在假设攻击传播能力有限的情况下减少其损害。这补充了我们先前在Furdek等人的工作。 (M.Furdek,N.Skorin-Kapov,M.Grbac,用于带内串扰攻击传播的本地化的感知攻击波长分配,IEEE / OSA光通信与网络杂志2(11)(2010)1000-1009)我们研究了无限干扰攻击的传播,以找到此类攻击的网络漏洞上限。在这里,我们考虑一个更现实的情况,即串扰攻击只能通过主要和/或次要攻击者传播,并为波长分配定义了新的客观标准,分别称为PAR(主要攻击半径)和SAR(次要攻击半径)。我们将问题变量表述为整数线性程序(ILP),目的是最大程度地降低PAR和SAR值。由于ILP公式的难处理性,对于较大的实例,我们提出GRASP(贪婪随机自适应搜索过程)启发式算法,以在合理的时间内找到次优解决方案。结果表明,这些方法可以使用与经典波长分配相同的波长数来获得解决方案,同时显着降低光网络中的干扰攻击损害比例。

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