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首页> 外文期刊>Sensors >A Fast Multimodal Ectopic Beat Detection Method Applied for Blood Pressure Estimation Based on Pulse Wave Velocity Measurements in Wearable Sensors
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A Fast Multimodal Ectopic Beat Detection Method Applied for Blood Pressure Estimation Based on Pulse Wave Velocity Measurements in Wearable Sensors

机译:一种基于脉搏波速度测量的可穿戴传感器血压快速多模态异位搏动检测方法

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Automatic detection of ectopic beats has become a thoroughly researched topic, with literature providing manifold proposals typically incorporating morphological analysis of the electrocardiogram (ECG). Although being well understood, its utilization is often neglected, especially in practical monitoring situations like online evaluation of signals acquired in wearable sensors. Continuous blood pressure estimation based on pulse wave velocity considerations is a prominent example, which depends on careful fiducial point extraction and is therefore seriously affected during periods of increased occurring extrasystoles. In the scope of this work, a novel ectopic beat discriminator with low computational complexity has been developed, which takes advantage of multimodal features derived from ECG and pulse wave relating measurements, thereby providing additional information on the underlying cardiac activity. Moreover, the blood pressure estimations’ vulnerability towards ectopic beats is closely examined on records drawn from the Physionet database as well as signals recorded in a small field study conducted in a geriatric facility for the elderly. It turns out that a reliable extrasystole identification is essential to unsupervised blood pressure estimation, having a significant impact on the overall accuracy. The proposed method further convinces by its applicability to battery driven hardware systems with limited processing power and is a favorable choice when access to multimodal signal features is given anyway.
机译:异位搏动的自动检测已成为一个经过深入研究的主题,文献提供了通常结合了心电图(ECG)形态分析的多种建议。尽管已被很好地理解,但它的使用通常被忽略,特别是在实际监视情况下,例如在线评估可穿戴式传感器中获取的信号。基于脉搏波速度考虑因素的连续血压估计是一个突出的例子,它依赖于仔细的基准点提取,因此在心动过速增加期间会受到严重影响。在这项工作的范围内,已经开发了一种计算复杂度低的新型异位搏动鉴别器,它利用了源自ECG和脉搏波相关测量的多峰特征,从而提供了有关潜在心脏活动的更多信息。此外,从Physionet数据库获取的记录以及在老年医学设施中进行的小范围实地研究中记录的信号,都仔细检查了血压估计值对异位搏动的脆弱性。事实证明,可靠的收缩前期识别对于无监督的血压估计必不可少,这对总体准确性有重大影响。所提出的方法由于其适用于处理能力有限的电池驱动的硬件系统而进一步令人信服,并且当无论如何都给出对多峰信号特征的访问时,是一种有利的选择。

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