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Attack-Defense Game between Malicious Programs and Energy-Harvesting Wireless Sensor Networks Based on Epidemic Modeling

机译:基于流行模拟的恶意程序与能量收集无线传感器网络之间的攻击防御游戏

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As energy-harvesting wireless sensor networks (EHWSNs) are increasingly integrated with all walks of life, their security problems have gradually become hot issues. As an attack means, malicious programs often attack sensor nodes in critical locations in the networks to cause paralysis and information leakage of the networks, resulting in security risks. Based on the previous works and the introduction of solar charging, we proposed a novel model, namely, Susceptible-Infected-Low (energy)-Recovered-Dead (SILRD) with solar energy harvesters. Meanwhile, this paper takes Logistic Growth as the drop rate of sensor nodes and the infection rate of multitype malicious programs under nonlinear condition into consideration. Finally, an Λ-Susceptible-Infected-Low (energy)-Recovered-Dead (ΛSILRD) model is proposed. Based on the Pontryagin Maximum Principle, this paper proposes the optimal strategies based on the SILRD with solar energy harvesters and the ΛSILRD. The effectiveness of SILRD with solar energy harvesters was demonstrated by comparison with the general epidemic model. At the same time, by analyzing different charging strategies, we conclude that solar charging is highly efficient. Moreover, we further analyze the influence of controllable and uncontrollable input and various node degrees on ΛSILRD model.
机译:随着能源收获无线传感器网络(EHWSNS)越来越多地与各行各业集成,其安全问题逐渐变得热门问题。作为攻击方式,恶意程序通常攻击网络中的关键位置中的传感器节点,以导致网络的瘫痪和信息泄露,从而导致安全风险。基于以前的作品和太阳能充电的引入,我们提出了一种新颖的模型,即易感感染的低(能量) - 具有太阳能收割机的冻结死(Silrd)。同时,本文考虑了非线性条件下的传感器节点的下降率和多理性恶意计划的落液率和多理性恶意计划的跌落率。最后,提出了一种λ-敏感感染的低(能量)-Recovered-Dead(λSilrd)模型。基于Pontryagin的最大原理,本文提出了基于Silrd的最佳策略,具有太阳能收割机和λsilrd。通过与一般流行模型的比较,证明了Silrd与太阳能收割机的有效性。与此同时,通过分析不同的充电策略,我们得出结论,太阳能充电是高效的。此外,我们进一步分析了可控和无法控制的输入和各种节点度对λSilrd模型的影响。

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