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使用基于聚偏二氟乙烯的可穿戴指环和卷积神经网络检测低心排血量指数

Detection of Low Cardiac Index using a Polyvinylidene Fluoride-Based Wearable Ring and Convolutional Neural Networks.

作者信息

Ansari Sardar, Golbus Jessica R, Tiba Mohamad H, McCracken Brendan, Wang Lu, Aaronson Keith D, Ward Kevin R, Najarian Kayvan, Oldham Kenn R

机构信息

Department of Emergency Medicine, University of Michigan, Ann Arbor, MI, 48109 USA.

Department of Internal Medicine, University of Michigan, Ann Arbor, MI 48109 USA.

出版信息

IEEE Sens J. 2021 Jul 1;21(13):14281-14289. doi: 10.1109/jsen.2020.3022273. Epub 2020 Nov 3.

Abstract

This study investigated the use of a wearable ring made of polyvinylidene fluoride film to identify a low cardiac index (≤2 L/min). The waveform generated by the ring contains patterns that may be indicative of low blood pressure and/or high vascular resistance, both of which are markers of a low cardiac index. In particular, the waveform contains reflection waves whose timing and amplitude are correlated with pulse travel time and vascular resistance, respectively. Hence, the pattern of the waveform is expected to vary in response to changes in blood pressure and vascular resistance. By analyzing the morphology of the waveform, our aim was to create a tool to identify patients with low cardiac index. This was done using a convolutional neural network which was trained on data from animal models. The model was then tested on waveforms that were collected from patients undergoing pulmonary artery catheterization. The results indicate high accuracy in classifying patients with a low cardiac index, achieving an area under the receiver operating characteristics and precision-recall curves of 0.88 and 0.71, respectively.

摘要

本研究调查了一种由聚偏二氟乙烯薄膜制成的可穿戴指环用于识别低心指数(≤2升/分钟)的情况。该指环产生的波形包含可能指示低血压和/或高血管阻力的模式,而这两者都是低心指数的标志。特别是,该波形包含反射波,其时间和幅度分别与脉搏传播时间和血管阻力相关。因此,预计波形模式会随着血压和血管阻力的变化而变化。通过分析波形的形态,我们的目标是创建一种工具来识别低心指数患者。这是通过使用卷积神经网络来完成的,该网络在来自动物模型的数据上进行训练。然后在从接受肺动脉导管插入术的患者收集的波形上对该模型进行测试。结果表明在对低心指数患者进行分类时具有很高的准确性,受试者操作特征曲线下面积和精确召回曲线下面积分别达到0.88和0.71。

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