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首页> 外文期刊>Journal of Medical Systems >Control of Sevoflurane Anesthetic Agent Via Neural Network Using Electroencephalogram Signals During Anesthesia
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Control of Sevoflurane Anesthetic Agent Via Neural Network Using Electroencephalogram Signals During Anesthesia

机译:麻醉期间通过脑电图信号通过神经网络控制七氟醚麻醉剂

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摘要

In this study, power spectrum of the EEG data and the heartbeat data obtained from 250 patients has been applied to the designed Neural network system. A backpropagation artificial neural network has been developed which contains 53 nodes in the input layer, 27 nodes in the hidden and 1 node in the output layer. In the artificial neural network inputs, the power spectral density values corresponding 1-50 Hz frequency interval of the EEG slices which has 10 seconds of time interval, the ratio of the total of the PSD values of current EEG slice to the total PSD values of EEG slice of pre-anesthesia, the ratio of the total PSD values of the EEG data to the total PSD values of the previous EEG data, and the previous anaesthetic gas ratio values have been applied and the network has been educated. The designed neural network system has been tested by using 10 data set obtained from 4 different patients. In the anesthetic gas prediction according to the anesthesia level, successful results have been obtained with the designed system. The system has been able to correctly purposeful responses in average accuracy of 94% of the cases. This method is also computationally fast and acceptable real-time clinical performance has been obtained.
机译:在这项研究中,从250位患者获得的EEG数据和心跳数据的功率谱已应用于设计的神经网络系统。已经开发了一种反向传播人工神经网络,该网络在输入层包含53个节点,在隐藏层包含27个节点,在输出层包含1个节点。在人工神经网络输入中,对应于具有10秒时间间隔的EEG切片的1-50 Hz频率间隔的功率谱密度值,即当前EEG切片的PSD值的总和与EEG切片的总PSD值之比。麻醉前的脑电图切片,脑电图数据的总PSD值与先前脑电图数据的总PSD值之比,以及先前的麻醉气体比值已被应用,并且已经对网络进行了教育。通过使用从4位不同患者获得的10个数据集,对设计的神经网络系统进行了测试。在根据麻醉水平预测麻醉气体时,使用设计的系统已获得成功的结果。该系统能够以94%的平均准确率正确地做出有针对性的响应。该方法在计算上也很快,并且已经获得了可接受的实时临床性能。

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