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Measuring and Reflecting Depth of Anesthesia Using Wavelet and Power Spectral Density

机译:利用小波和功率谱密度测量和反映麻醉深度

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摘要

This paper evaluates depth of anesthesia (DoA) monitoring using a new index. The proposed method preconditions raw EEG data using an adaptive threshold technique to remove spikes and low-frequency noise. We also propose an adaptive window length technique to adjust the length of the sliding window. The information pertinent to DoA is then extracted to develop a feature function using discrete wavelet transform and power spectral density. The evaluation demonstrates that the new index reflects the patient''s transition from consciousness to unconsciousness with the induction of anesthesia in real time.
机译:本文使用新指标评估了麻醉深度(DoA)监测。所提出的方法使用自适应阈值技术对原始EEG数据进行预处理,以去除尖峰和低频噪声。我们还提出了一种自适应窗口长度技术来调整滑动窗口的长度。然后使用离散小波变换和功率谱密度提取与DoA相关的信息,以开发特征函数。评估表明,新指标实时反映了麻醉诱导患者从意识到无意识的转变。

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