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Innovative continuous non-invasive cuffless blood pressure monitoring based on photoplethysmography technology

机译:基于光电体积描记技术的创新性连续无创无袖带血压监测

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摘要

Purpose: To develop and validate a continuous non-invasive blood pressure (BP) monitoring system using photoplethysmography (PPG) technology through pulse oximetry (PO). Methods: This prospective study was conducted at a critical care department and post-anesthesia care unit of a university teaching hospital. Inclusion criteria were critically ill adult patients undergoing invasive BP measurement with an arterial catheter and PO monitoring. Exclusion criteria were arrhythmia, imminent death condition, and disturbances in the arterial or the PPG curve morphology. Arterial BP and finger PO waves were recorded simultaneously for 30 min. Systolic arterial pressure (SAP), mean arterial pressure (MAP), and diastolic arterial pressure (DAP) were extracted from computer-assisted arterial pulse wave analysis. Inherent traits of both waves were used to construct a regression model with a Deep Belief Network-Restricted Boltzmann Machine (DBN-RBM) from a training cohort of patients and in order to infer BP values from the PO wave. Bland-Altman analysis was performed. Results: A total of 707 patients were enrolled, of whom 135 were excluded. Of the 572 studied, 525 were assigned to the training cohort (TC) and 47 to the validation cohort (VC). After data processing, 53,708 frames were obtained from the TC and 7,715 frames from the VC. The mean prediction biases were -2.98 ± 19.35, -3.38 ± 10.35, and -3.65 ± 8.69 mmHg for SAP, MAP, and DAP respectively. Conclusions: BP can be inferred from PPG using DBN-RBM modeling techniques. The results obtained with this technology are promising, but its intrinsic variability and its wide limits of agreement do not allow clinical application at this time.
机译:目的:开发和验证使用光电容积描记术(PPG)技术通过脉搏血氧饱和度法(PO)的连续无创血压(BP)监测系统。方法:这项前瞻性研究是在大学教学医院的重症监护室和麻醉后护理部门进行的。纳入标准为重症成年患者,他们通过动脉导管和PO监测进行侵入性BP测量。排除标准为心律不齐,即将死亡的状况以及动脉或PPG曲线形态的紊乱。同时记录动脉BP和手指PO波30分钟。从计算机辅助的动脉脉搏波分析中提取收缩压(SAP),平均压(MAP)和舒张压(DAP)。两种波的固有特性都被用来从受训患者队列中使用深度信念网络受限的玻尔兹曼机(DBN-RBM)来构建回归模型,以便从PO波中推断出BP值。进行了Bland-Altman分析。结果:共纳入707例患者,其中135例被排除在外。在研究的572名中,有525名被分配给了训练队列(TC),而47名被分配给了验证队列(VC)。数据处理后,从TC获得53,708帧,从VC获得7,715帧。 SAP,MAP和DAP的平均预测偏差分别为-2.98±19.35,-3.38±10.35和-3.65±8.69 mmHg。结论:使用DBN-RBM建模技术可以从PPG推断BP。用这种技术获得的结果是有希望的,但是其固有的可变性和广泛的一致性限制目前不允许在临床上应用。

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