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Automatic Signal Quality Index Determination of Radar-Recorded Heart Sound Signals Using Ensemble Classification

机译:使用集合分类自动信号质量指标确定雷达记录的心声信号

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Objective: Radar technology promises to be a touchless and thereby burden-free method for continuous heart sound monitoring, which can be used to detect cardiovascular diseases. However, the first and most crucial step is to differentiate between high- and low-quality segments in a recording to assess their suitability for a subsequent automated analysis. This paper gives a comprehensive study on this task and first addresses the specific characteristics of radar-recorded heart sound signals. Methods: To gather heart sound signals recorded from radar, a bistatic radar system was built and installed at the university hospital. Under medical supervision, heart sound data were recorded from 30 healthy test subjects. The signals were segmented and labeled as high- or low-quality by a medical expert. Different state-of-the-art pattern classification algorithms were evaluated for the task of automated signal quality determination and the most promising one was optimized and evaluated using leave-one-subject-out cross validation. Results: The proposed classifier is able to achieve an accuracy of up to 96.36% and demonstrates a superior classification performance compared with the state-of-the-art classifier with a maximum accuracy of 76.00%. Conclusion: This paper introduces an ensemble classifier that is able to perform automated signal quality determination of radar-recorded heart sound signals with a high accuracy. Significance: Besides achieving a higher performance compared with state-of-the-art classifiers, this study is the first one to deal with the quality determination of heart sounds that are recorded by radar systems. The proposed method enables contactless and continuous heart sound monitoring for the detection of cardiovascular diseases.
机译:目的:雷达技术承诺是一种无意义的,从而为连续的心声监测提供负担的方法,可用于检测心血管疾病。然而,第一和最关键的步骤是在记录中区分高质量和低质量的段,以评估其适用于随后的自动化分析。本文对这项任务进行了全面的研究,首先解决了雷达记录的心声信号的具体特征。方法:要收集从雷达记录的心声音信号,建造并安装在大学医院的双孔雷达系统。在医疗监督下,心声数据从30个健康的测试科目记录。通过医学专家将信号分段并标记为高或低质量。评估了不同的最先进的模式分类算法,用于自动信号质量确定的任务,并且最有希望的是使用休假进行优化和评估的优化,并使用休假交叉验证进行评估。结果:拟议的分类器能够实现高达96.36%的准确性,并与最先进的分类器相比,展示了卓越的分类性能,最大精度为76.00%。结论:本文介绍了一个能够以高精度执行自动信号质量确定雷达记录的心声信号的自动化信号质量。意义:除了与最先进的分类器相比实现更高的性能外,本研究是第一个处理雷达系统记录的心脏声音质量确定的研究。该方法使得能够对心血管疾病的检测实现接触和连续的心声监测。

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