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Automated identification of cardiac signals after blind source separation for camera-based photoplethysmography

机译:盲源分离后基于相机的光体积描记器自动识别心脏信号

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In the field of camera-based photoplethysmography the application of blind source separation (BSS) techniques has extensively stressed to cope with frequently occurring artifacts and noise. Although said techniques can help to extract the cardiac component from a mixture of input sources, permutation indeterminacy inherit to BSS techniques often introduces inaccuracies or requires manual intervention. The current contribution focuses on methods to automatically select the cardiac component from the output of BSS techniques applied to camera-based photoplethysmograms. To that end, we propose simple Markov models to describe and subsequently identify cardiac components. It is shown that good results can be obtained by combining different simple Markov models.
机译:在基于照相机的光体积描记术领域中,盲源分离(BSS)技术的应用已被广泛强调以应对频繁出现的伪影和噪声。尽管所述技术可以帮助从输入源的混合物中提取心脏成分,但是BSS技术所继承的排列不确定性通常会引入误差或需要人工干预。当前的贡献集中于从BSS技术的输出中自动选择心脏成分的方法,这些技术应用于基于照相机的光电容积描记图。为此,我们提出了简单的马尔可夫模型来描述和随后识别心脏组件。结果表明,通过组合不同的简单马尔可夫模型可以获得良好的结果。

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