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Sensor Single and Multiple Anomaly Detection in Wireless Sensor Networks for Healthcare

机译:用于医疗保健的无线传感器网络中的传感器单次和多次异常检测

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Wireless Body Area Network is used in healthcare applications for collecting information from remotely monitored patients. As they work in medical Applications, these kinds of networks must be robust and flexible to the sensors failure. This means that it must differentiate between patient's emergency alarms, and ill-behaved sensor's false alarms. In this paper, we propose an approach for faulty measurements detection in order to make alarming of emergency situations more precisely. The proposed approach is based on decision tree, threshold biasing and linear regression. Our objective is to detect single and multiple faults in order to reduce unnecessary healthcare intervention. The proposed approach has been applied to real healthcare dataset. Experimental results demonstrate the effectiveness of the proposed approach in achieving high Detection Rate and low False Positive Rate. The ability of this algorithm to detect single and multiple anomalies make it more reliable for medical emergency use.
机译:无线人体局域网在医疗保健应用中用于从远程监控的患者中收集信息。当它们在医疗应用中工作时,这些类型的网络必须对传感器故障具有鲁棒性和灵活性。这意味着它必须区分患者的紧急警报和行为异常的传感器的虚假警报。在本文中,我们提出了一种用于故障测量检测的方法,以使紧急情况的警报更加精确。所提出的方法基于决策树,阈值偏差和线性回归。我们的目标是检测单个或多个故障,以减少不必要的医疗干预。所提出的方法已经应用于实际的医疗保健数据集。实验结果证明了该方法在实现高检测率和低误报率方面的有效性。该算法检测单个和多个异常的能力使其在医疗紧急情况下更加可靠。

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