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Multi-point accelerometric detection and principal component analysis of heart sounds

机译:心音的多点加速度检测和主成分分析

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摘要

Heart sounds are a fundamental physiological variable that provide a unique insight into cardiac semiotics. However a deterministic and unambiguous association between noises in cardiac dynamics is far from being accomplished yet due to many and different overlapping events which contribute to the acoustic emission. The current computer-based capacities in terms of signal detection and processing allow one to move from the standard cardiac auscultation, even in its improved forms like electronic stethoscopes or hi-tech phonocardiography, to the extraction of information on the cardiac activity previously unexplored. In this report, we present a new equipment for the detection of heart sounds, based on a set of accelerometric sensors placed in contact with the chest skin on the precordial area, and are able to measure simultaneously the vibration induced on the chest surface by the heart's mechanical activity. By utilizing advanced algorithms for the data treatment, such as wavelet decomposition and principal component analysis, we are able to condense the spatially extended acoustic information and to provide a synthetical representation of the heart activity. We applied our approach to 30 adults, mixed per gender, age and healthiness, and correlated our results with standard echocardiographic examinations. We obtained a 93% concordance rate with echocardiography between healthy and unhealthy hearts, including minor abnormalities such as mitral valve prolapse.
机译:心音是一种基本的生理变量,可提供对心脏符号学的独特见解。然而,由于许多和不同的重叠事件会导致声发射,因此心脏动力学中的噪声之间的确定性和明确关联还远未实现。当前在信号检测和处理方面基于计算机的能力使人们可以从标准的心脏听诊(甚至以其改进形式,如电子听诊器或高科技心动心动图)转移到以前未曾探索过的心脏活动信息的提取上。在本报告中,我们基于一组与胸膜区域的胸部皮肤接触的加速度传感器,提供了一种用于检测心音的新设备,并且能够同时测量心电图在胸部表面引起的振动。心脏的机械活动。通过利用高级算法进行数据处理,例如小波分解和主成分分析,我们可以压缩空间扩展的声音信息,并提供心脏活动的综合表示。我们将我们的方法应用于30名成年人,按性别,年龄和健康状况进行混合,然后将结果与标准超声心动图检查相关联。我们在健康和不健康的心脏(包括诸如二尖瓣脱垂等轻微异常)之间的超声心动图检查中的一致性率为93%。

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