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A unified approach of simultaneous state estimation andrnanomalous node detection in distributed wireless sensor networks

机译:分布式无线传感器网络中同时状态估计和异常节点检测的统一方法

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摘要

Detection of anomalous node in distributed wireless sensor networks is extremely important for powerful inference and network reliability. In this paper, we propose a powerful linear statistical model for estimating the state values of the sensor nodes longitudinally, and the estimated state values are used for detecting the anomalous nodes. Our proposed approach is powerful because it considers the effect of the nearest neighbors on the current state values and then detects the anomalous nodes based on the estimated state values. Our method can estimate the missing state values of the sensor nodes, which are kept in sleep mode for energy conservation. We also propose an alternative Bayesian model that is computationally faster for state estimation and anomaly detection. The effectiveness of the proposed model is investigated through extensive simulation studies, and the usefulness of our algorithm is numerically assessed. The performance of the proposed approach is compared to that of the traditional approaches through simulation studies. The proposed model can be effectively used in security surveillance, pattern recognition, habitat monitoring, etc.
机译:分布式无线传感器网络中异常节点的检测对于强大的推理和网络可靠性非常重要。在本文中,我们提出了一个强大的线性统计模型,用于纵向估计传感器节点的状态值,并将估计的状态值用于检测异常节点。我们提出的方法功能强大,因为它考虑了最近邻居对当前状态值的影响,然后根据估计的状态值检测异常节点。我们的方法可以估计传感器节点的丢失状态值,这些状态值保持在睡眠模式以节省能量。我们还提出了一种替代性的贝叶斯模型,该模型在计算上更快地用于状态估计和异常检测。通过广泛的仿真研究,对所提出模型的有效性进行了研究,并对算法的有效性进行了数值评估。通过仿真研究,将提出的方法的性能与传统方法的性能进行了比较。所提出的模型可以有效地用于安全监视,模式识别,栖息地监视等。

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