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Detection of selective forwarding attacks based on adaptive learning automata and communication quality in wireless sensor networks

机译:基于自适应学习自动机和无线传感器网络的通信质量的选择性转发攻击检测

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摘要

Wireless sensor networks face threats of selective forwarding attacks which are simple to implement but difficult to detect. It is difficult to distinguish between malicious packet dropping and the normal packet loss on unstable wireless channels. For this situation, a selective forwarding attack detection method is proposed based on adaptive learning automata and communication quality; the method can eliminate the impact of normal packet loss on selective forwarding attack detection and can detect ordinary selective forwarding attack and special cases of selective forwarding attack. The current and comprehensive communication quality of nodes are employed to reflect the short- and long-term forwarding behaviors of nodes, and the normal packet loss caused by unstable channels and medium-access-control layer collisions is considered. The adaptive reward and penalty parameters of a detection learning automata are determined by the comprehensive communication quality of the node and the voting of its neighbors to reward normal nodes or punish malicious ones. Simulation results indicate the effectiveness of the proposed method in detecting ordinary selective forwarding attacks, black-hole attacks, on-off attacks, and energy exhaustion attacks. In addition, the communication overhead of the method is lower than that of other methods.
机译:无线传感器网络面临易于实施但难以检测的选择性转发攻击的威胁。很难区分恶意数据包丢弃和不稳定的无线通道上的正常数据包丢失。对于这种情况,基于自适应学习自动机和通信质量提出了一种选择性转发攻击检测方法;该方法可以消除正常分组损失对选择性转发攻击检测的影响,并可以检测普通选择性转发攻击和选择性转发攻击特殊情况。使用节点的当前和全面的通信质量来反映节点的短期和长期转发行为,并且考虑由不稳定通道和中等访问控制层冲突引起的正常分组丢失。检测学习自动机的自适应奖励和惩罚参数由节点的全面通信质量和邻居的投票决定,以奖励正常节点或惩罚恶意。仿真结果表明提出方法检测普通选择性转发攻击,黑洞攻击,开关攻击和能源耗尽攻击的有效性。另外,该方法的通信开销低于其他方法的通信开销。

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