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Consciousness and Depth of Anesthesia Assessment Based on Bayesian Analysis of EEG Signals

机译:基于脑电信号贝叶斯分析的麻醉评估意识和深度

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This study applies Bayesian techniques to analyze EEG signals for the assessment of the consciousness and depth of anesthesia (DoA). This method takes the limiting large-sample normal distribution as posterior inferences to implement the Bayesian paradigm. The maximum a posterior (MAP) is applied to denoise the wavelet coefficients based on a shrinkage function. When the anesthesia states change from awake to light, moderate, and deep anesthesia, the MAP values increase gradually. Based on these changes, a new function $B_{rm DoA}$ is designed to assess the DoA. The new proposed method is evaluated using anesthetized EEG recordings and BIS data from 25 patients. The Bland–Alman plot is used to verify the agreement of $B_{rm DoA}$ and the popular BIS index. A correlation between $B_{rm DoA}$ and BIS was measured using prediction probability $P_{K}$. In order to estimate the accuracy of DoA, the effect of sample $n$ and variance $tau$ on the maximum posterior probability is studied. The results show that the new index accurately estimates the patient's hypnotic states. Compared with the BIS index in some cases, the $B_{rm DoA}$ index can estimate the patient's hypnotic state in the case of poor signal quality.
机译:这项研究应用贝叶斯技术分析脑电信号,以评估意识和麻醉深度(DoA)。该方法将有限的大样本正态分布作为后验推论,以实现贝叶斯范式。应用最大后验(MAP)基于收缩函数对小波系数进行降噪。当麻醉状态从清醒变为轻度,中度和深度麻醉时,MAP值逐渐增加。基于这些更改,设计了一个新的函数 $ B_ {rm DoA} $ 来评估DoA。使用麻醉的EEG记录和来自25例患者的BIS数据对新提出的方法进行了评估。 Bland-Alman图用于验证 $ B_ {rm DoA} $ 和流行的BIS索引的一致性。使用预测概率<公式Formulatype =“ inline”> $ B_ {rm DoA} $ 和BIS之间的相关性进行了测量tex Notation =“ TeX”> $ P_ {K} $ 。为了估计DoA的准确性,样本 $ n $ 和方差研究最大后验概率的 $ tau $ 。结果表明,新的指数可以准确地估计患者的催眠状态。与某些情况下的BIS索引相比, $ B_ {rm DoA} $ 索引可以估计患者的催眠状态。信号质量差的情况。

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