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Automatic Detection of General Anesthetic-States using ECG-Derived Autonomic Nervous System Features

机译:使用ECG衍生的自主神经系统特征自动检测通用麻醉状态

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Electroencephalogram (EEG)-based prediction systems are used to target anesthetic-states in patients undergoing procedures with general anesthesia (GA). These systems are not widely employed in resource-limited settings because they are cost-prohibitive. Although anesthetic-drugs induce highly-structured, oscillatory neural dynamics that make EEG-based systems a principled approach for anesthetic-state monitoring, anesthetic-drugs also significantly modulate the autonomic nervous system (ANS). Because ANS dynamics can be inferred from electrocardiogram (ECG) features such as heart rate variability, it may be possible to develop an ECG-based system to infer anesthetic-states as a low-cost and practical alternative to EEG-based anesthetic-state prediction systems. In this work, we demonstrate that an ECG-based system using ANS features can be used to discriminate between non-GA and GA states in sevoflurane, with a GA F1 score of 0.834, [95% CI, 0.776, 0.892], and in sevoflurane-plus-ketamine, with a GA F1 score of 0.880 [0.815, 0.954]. With further refinement, ECG-based anesthetic-state systems could be developed as a fully automated system for anesthetic-state monitoring in resource-limited settings.
机译:基于脑电图(EEG)的预测系统用于靶向经过全身麻醉(GA)的程序的患者中的麻醉状态。这些系统不广泛用于资源限制的设置,因为它们是成本持久的。虽然麻醉药物诱导高度结构化的振荡神经动态,使基于脑电图的系统成为麻醉状态监测的原则性方法,麻醉药物也显着调节自主神经系统(ANS)。因为可以从诸如心率可变性的心电图(ECG)特征的心电图(ECG)特征中推断出ANS动态,所以可以开发基于ECG的系统的ECG的系统,以作为基于EEG的麻醉状态预测的低成本和实际替代品系统。在这项工作中,我们证明使用ANS特征的基于ECG的系统可用于区分七氟烷的非GA和GA状态,具有GA F. 1 得分为0.834,[95%CI,0.776,0.892]和在七氟烷 - 加氯胺酮,具有GA F. 1 得分为0.880 [0.815,0.954]。通过进一步改进,可以将ECG的麻醉状态系统作为资源限制设置中的麻醉状态监测的全自动系统开发为全自动系统。

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