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Information extraction from sound for medical telemonitoring

机译:从声音中提取信息以进行医疗远程监控

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Today, the growth of the aging population in Europe needs an increasing number of health care professionals and facilities for aged persons. Medical telemonitoring at home (and, more generally, telemedicine) improves the patient's comfort and reduces hospitalization costs. Using sound surveillance as an alternative solution to video telemonitoring, this paper deals with the detection and classification of alarming sounds in a noisy environment. The proposed sound analysis system can detect distress or everyday sounds everywhere in the monitored apartment, and is connected to classical medical telemonitoring sensors through a data fusion process. The sound analysis system is divided in two stages: sound detection and classification. The first analysis stage (sound detection) must extract significant sounds from a continuous signal flow. A new detection algorithm based on discrete wavelet transform is proposed in this paper, which leads to accurate results when applied to nonstationary signals (such as impulsive sounds). The algorithm presented in this paper was evaluated in a noisy environment and is favorably compared to the state of the art algorithms in the field. The second stage of the system is sound classification, which uses a statistical approach to identify unknown sounds. A statistical study was done to find out the most discriminant acoustical parameters in the input of the classification module. New wavelet based parameters, better adapted to noise, are proposed in this paper. The telemonitoring system validation is presented through various real and simulated test sets. The global sound based system leads to a 3% missed alarm rate and could be fused with other medical sensors to improve performance.
机译:如今,欧洲老龄化人口的增长需要越来越多的医疗保健专业人员和老年人设施。在家中进行医疗远程监控(更广泛地说,是远程医疗)可以提高患者的舒适度并降低住院费用。本文使用声音监视作为视频远程监视的替代解决方案,处理嘈杂环境中警报声音的检测和分类。所提出的声音分析系统可以检测受监视公寓中各处的遇险声音或日常声音,并通过数据融合过程连接到经典医疗远程监控传感器。声音分析系统分为两个阶段:声音检测和分类。第一个分析阶段(声音检测)必须从连续的信号流中提取大量声音。提出了一种新的基于离散小波变换的检测算法,将其应用于非平稳信号(如脉冲声音)时,可以得到准确的结果。本文提出的算法在嘈杂的环境中进行了评估,与本领域的最新算法相比具有优势。系统的第二阶段是声音分类,它使用统计方法来识别未知声音。进行了统计研究,以找出分类模块输入中最有区别的声学参数。本文提出了一种新的基于小波的参数,可以更好地适应噪声。远程监控系统的验证通过各种真实和模拟的测试集进行。基于全局声音的系统导致3%的未命中警报率,并且可以与其他医疗传感器融合以提高性能。

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