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Stability and bifurcation analysis in a delayed reaction-diffusion malware propagation model

机译:延迟反应扩散恶意软件传播模型的稳定性和分叉分析

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Mobile wireless sensor networks (MWSNs) have become an area of intense research activity due to technical advances in sensors, wireless communications and networking, and signal processing. Many applications, including environment monitoring, battlefield surveillance, and urban search and rescue especially in hazardous situations, are envisaged. However, MWSNs may be vulnerable to malicious interference because of the large-scale characteristics. When a contaminated node communications with its neighbors, multiple copies of the malware are transmitted to its neighbors, which may destroy, block regular communications, or even damage the integrity of regular data packets. Modeling spatial distribution of malware propagation over time is the first step to predict the trend of malware propagation in MWSNs. We propose a novel wireless malware propagation model with the discrete time delay based on reaction-diffusion equations in mobile wireless sensor networks, and study its dynamic behaviors. By analyzing the stability and Hopf bifurcation of the equilibrium of our model, we search for the sufficient conditions, which leads to the malware propagation disappears or continues. Furthermore, we demonstrate that oscillations in this model occur through the destabilization of the stationary solution at a Hopf bifurcation point. And formulas for determining the stability of the bifurcating periodic oscillations are derived by applying the normal form method and center manifold theorem. Finally, we conduct extensive simulations on large-scale MWSNs to evaluate the proposed model. Numerical evidence shows that the spatial-temporal dynamic characteristics of malware propagation in MWSNs are closely related to the packet transmission rate, the communication rang and the mobile behavior of nodes. (C) 2015 Elsevier Ltd. All rights reserved.
机译:由于传感器,无线通信和联网以及信号处理方面的技术进步,移动无线传感器网络(MWSN)已成为研究热点。设想了许多应用,包括环境监视,战场监视以及特别是在危险情况下的城市搜索和救援。但是,由于具有大规模特征,MWSN可能容易受到恶意干扰。当受污染的节点与其邻居进行通信时,恶意软件的多个副本将传输到其邻居,这可能破坏,阻止常规通信,甚至破坏常规数据包的完整性。建模随时间推移的恶意软件传播的空间分布是预测MWSN中恶意软件传播趋势的第一步。我们基于移动无线传感器网络中的反应扩散方程,提出了一种具有离散时间延迟的新型无线恶意软件传播模型,并研究了其动态行为。通过分析模型平衡的稳定性和Hopf分叉,我们寻找足够的条件,从而导致恶意软件传播消失或继续。此外,我们证明了该模型中的振荡是通过在Hopf分叉点上固定解的不稳定而发生的。并应用范式和中心流形定理推导了确定分叉周期振动稳定性的公式。最后,我们对大型MWSN进行了广泛的仿真,以评估所提出的模型。数值证据表明,恶意软件在MWSN中传播的时空动态特征与数据包的传输速率,通信范围和节点的移动行为密切相关。 (C)2015 Elsevier Ltd.保留所有权利。

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