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用于心血管波形和间期分析的开源基准测试工具箱。

An open source benchmarked toolbox for cardiovascular waveform and interval analysis.

机构信息

Department of Biomedical Informatics, Emory University School of Medicine, Woodruff Memorial Research Bldg, Suite 4100, 101 Woodruff Circle, Atlanta, GA 30322, United States of America. Department of Epidemiology, Rollins School of Public Health at Emory University, 1518 Clifton Road NE, Room 3053, Atlanta, GA 30322, United States of America.

出版信息

Physiol Meas. 2018 Oct 11;39(10):105004. doi: 10.1088/1361-6579/aae021.

Abstract

OBJECTIVE

This work aims to validate a set of data processing methods for variability metrics, which hold promise as potential indicators for autonomic function, prediction of adverse cardiovascular outcomes, psychophysiological status, and general wellness. Although the investigation of heart rate variability (HRV) has been prevalent for several decades, the methods used for preprocessing, windowing, and choosing appropriate parameters lacks consensus among academic and clinical investigators. Moreover, many of the important steps are omitted from publications, preventing reproducibility.

APPROACH

To address this, we have compiled a comprehensive and open-source modular toolbox for calculating HRV metrics and other related variability indices, on both raw cardiovascular time series and RR intervals. The software, known as the PhysioNet Cardiovascular Signal Toolbox, is implemented in the MATLAB programming language, with standard (open) input and output formats, and requires no external libraries. The functioning of our software is compared with other widely used and referenced HRV toolboxes to identify important differences.

MAIN RESULTS

Our findings demonstrate how modest differences in the approach to HRV analysis can lead to divergent results, a factor that might have contributed to the lack of repeatability of studies and clinical applicability of HRV metrics.

SIGNIFICANCE

Existing HRV toolboxes do not include standardized preprocessing, signal quality indices (for noisy segment removal), and abnormal rhythm detection and are therefore likely to lead to significant errors in the presence of moderate to high noise or arrhythmias. We therefore describe the inclusion of validated tools to address these issues. We also make recommendations for default values and testing/reporting.

摘要

目的

本研究旨在验证一组变异性指标的数据处理方法,这些方法有望成为自主功能、不良心血管结局预测、心理生理状态和整体健康的潜在指标。尽管心率变异性(HRV)的研究已经流行了几十年,但在预处理、窗口化和选择合适参数方面的方法在学术和临床研究人员之间缺乏共识。此外,许多重要步骤在出版物中被省略,从而阻碍了可重复性。

方法

为了解决这个问题,我们编写了一个全面的、开源的模块化工具包,用于计算 HRV 指标和其他相关变异性指数,包括原始心血管时间序列和 RR 间隔。该软件称为 PhysioNet 心血管信号工具箱,用 MATLAB 编程语言实现,具有标准(开放)输入和输出格式,不需要外部库。我们的软件功能与其他广泛使用和引用的 HRV 工具箱进行了比较,以确定重要的差异。

主要结果

我们的研究结果表明,HRV 分析方法的微小差异会导致不同的结果,这可能是导致研究缺乏可重复性和 HRV 指标临床应用的原因之一。

意义

现有的 HRV 工具箱不包括标准化的预处理、信号质量指数(用于去除噪声段)和异常节律检测,因此在存在中度到高度噪声或心律失常的情况下,很可能会导致严重的错误。因此,我们描述了包含验证工具来解决这些问题。我们还对默认值、测试/报告提出了建议。

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