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Intrusion detection model of wireless sensor networks based on game theory and an autoregressive model

机译:基于博弈论的无线传感器网络入侵检测模型及自回归模型

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摘要

An effective security strategy for Wireless Sensor Networks (WSNs) is imperative to counteract security threats. Meanwhile, energy consumption directly affects the network lifetime of a wireless sensor. Thus, an attempt to exploit a low-consumption Intrusion Detection System (IDS) to detect malicious attacks makes a lot of sense. Existing Intrusion Detection Systems can only detect specific attacks and their network lifetime is short due to their high energy consumption. For the purpose of reducing energy consumption and ensuring high efficiency, this paper proposes an intrusion detection model based on game theory and an autoregressive model. The paper not only improves the autoregressive theory model into a non-cooperative, complete-information, static game model, but also predicts attack pattern reliably. The proposed approach improves on previous approaches in two main ways: (1) it takes energy consumption of the intrusion detection process into account, and (2) it obtains the optimal defense strategy that balances the system's detection efficiency and energy consumption by analyzing the model's mixed Nash equilibrium solution. In the simulation experiment, the running time of the process is regarded as the main indicator of energy consumption of the system. The simulation results show that our proposed IDS not only effectively predicts the attack time and the next targeted cluster based on the game theory, but also reduces energy consumption. (C) 2018 Elsevier Inc. All rights reserved.
机译:无线传感器网络(WSNS)的有效安全策略必须抵消安全威胁。同时,能量消耗直接影响无线传感器的网络寿命。因此,尝试利用低消耗入侵检测系统(IDS)来检测恶意攻击产生了很大的意义。现有的入侵检测系统只能检测到特定的攻击,由于它们的高能耗,它们的网络寿命短缺。为降低能耗和确保高效率的目的,本文提出了一种基于博弈论和自回归模型的入侵检测模型。本文不仅将自回商理论模型改善为非合作,完整信息,静态游戏模型,还可以可靠地预测攻击模式。该方法以两种主要方式提高了先前的方法:(1)它考虑了入侵​​检测过程的能耗,并获得了通过分析模型的最佳防御策略,通过分析模型来平衡系统的检测效率和能量消耗。混合腹部均衡溶液。在仿真实验中,该过程的运行时间被认为是系统能耗的主要指标。仿真结果表明,我们的提议ID不仅有效地预测了基于博弈论的攻击时间和下一个目标集群,而且还降低了能量消耗。 (c)2018年Elsevier Inc.保留所有权利。

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