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Detecting and Rectifying Anomalies in Body Sensor Networks

机译:检测体传感器网络中的异常

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Activity recognition using on body sensors are prone to degradation due to changes on sensor readings. The changes can occur because of degradation or alteration in the behaviour of the sensor with respect to the others. In this paper we propose a method which detects anomalous nodes in the network and takes compensatory actions to keep the performance of the system as high as possible while the system is running. We show on two activity datasets with different configurations of on body sensors that detection and compensation of anomalies make the system more robust against the changes.
机译:由于传感器读数的变化,在体系传感器上使用的活动识别易于降低。 由于传感器相对于其他方式的行为的降低或改变,可能发生变化。 在本文中,我们提出了一种检测网络中的异常节点的方法,并采取补偿动作,以在系统运行时保持系统的性能。 我们在两个活动数据集上显示,具有不同配置的身体传感器的不同配置,对异常的检测和补偿使系统对变化更加强大。

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