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Fault Detection for Medical Body Sensor Networks Under Bayesian Network Model

机译:贝叶斯网络模型下的医用传感器网络故障检测

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We propose a Bayesian network based method for the fault diagnosis problem of medical body sensor networks used to collect physiological signs to monitor the health of patients. We formalize a Bayesian network to describe the body sensor network considering both the spatial and temporal correlation in measurements at different sensors. Then we give the theoretical analysis of the fault detection, false alarm of this method, and the error probability after executing the fault diagnosis algorithm. Finally, Experiments carried out on synthetic medical datasets by injecting faults into real medical datasets show that the simulation performance matches the theoretical analysis closely, and the proposed approach possesses a good detection accuracy with a low false alarm rate.
机译:针对医学传感器网络的故障诊断问题,我们提出了一种基于贝叶斯网络的方法,该方法用于收集生理信号以监测患者的健康状况。我们形式化贝叶斯网络来描述人体传感器网络,同时考虑到在不同传感器处测量的时空相关性。然后对故障检测,该方法的误报以及执行故障诊断算法后的错误概率进行了理论分析。最后,通过将故障注入真实医学数据集对合成医学数据集进行的实验表明,仿真性能与理论分析非常接近,所提出的方法具有良好的检测准确度和较低的误报率。

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