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A fault detection method for wireless sensor networks based on improved LTS regression algorithm

机译:基于改进LTS回归算法的无线传感器网络故障检测方法

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摘要

In wireless sensor network, a large number of cheap nodes are deployed in the uncontrollable environment. Therefore, the fault probability of sensor nodes in wireless sensor network is much greater than that in traditional network. According to the impact model, the impact of one event is significantly dependent on the distance between the sensor and event source. So in this paper, we propose a wireless sensor network fault detection method based on the improved LTS regression algorithm. After collecting the change of data of each node when an event occurs, improved LTS regression algorithm will select the best performance data to calculate a series of properties of event source. Then the theoretical value of each sensor would be calculated by those properties. According to the margin between theoretical value and actual value, the faulty sensor can be detected. Theoretically, the robustness of LTS algorithm ensures the stability and high accuracy of performance in this method before the failure rate reaches its break point 50%. Our experiments also demonstrate that this method performs well before the percentage of fault sensor nodes arrives to 50% mentioned above.
机译:在无线传感器网络中,大量廉价节点被部署在不可控制的环境中。因此,无线传感器网络中传感器节点的故障概率大大高于传统网络中传感器节点的故障概率。根据影响模型,一个事件的影响很大程度上取决于传感器与事件源之间的距离。因此,本文提出了一种基于改进的LTS回归算法的无线传感器网络故障检测方法。收集事件发生时每个节点的数据变化后,改进的LTS回归算法将选择性能最佳的数据来计算事件源的一系列属性。然后,将通过这些属性计算每个传感器的理论值。根据理论值与实际值之间的余量,可以检测出故障传感器。从理论上讲,LTS算法的鲁棒性可确保该方法在故障率达到其断裂点50%之前可以保持性能的稳定性和高精度。我们的实验还证明,该方法在故障传感器节点的百分比达到上述50%之前可以很好地执行。

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