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A neural network based infant monitoring system to facilitate diagnosis of epileptic seizures

机译:基于神经网络的婴儿监测系统,有助于诊断癫痫发作

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In this paper, we propose an infant monitoring system that automatically detects epileptic seizures in domestic and hospital environments. The proposed system measures the movements and electroencephalogram (EEG) signals of an infant using a video camera and an electroencephalograph. Seizure features are then extracted from the video images and EEG signals, and the evaluation indices based on medical knowledge are calculated from the features. The system employs a probabilistic neural network for the automatic detection of seizures, thereby allowing the choice/combination of evaluation indices appropriate for the environment via network training. We tested the system in simulated domestic and hospital environments. The validity of the proposed system was reinforced by the results of comparisons with clinical diagnoses.
机译:在本文中,我们提出了一种婴儿监护系统,该系统可以自动检测家庭和医院环境中的癫痫发作。拟议的系统使用摄像机和脑电图仪测量婴儿的运动和脑电图(EEG)信号。然后从视频图像和EEG信号中提取癫痫发作特征,并根据这些特征计算基于医学知识的评估指标。该系统采用概率神经网络来自动检测癫痫发作,从而允许通过网络训练来选择/组合适合环境的评估指标。我们在模拟的家庭和医院环境中测试了该系统。与临床诊断的比较结果增强了所提出系统的有效性。

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