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Removal of cardiopulmonary resuscitation artifacts from human ECG using an efficient matching pursuit-like algorithm

机译:使用高效匹配的类似追踪算法从人的心电图去除心肺复苏伪影

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We present a computationally efficient and numerically robust solution to the problem of removing artifacts due to precordial compressions and ventilations from the human electrocardiogram (ECG) in an emergency medicine setting. Incorporated into automated external defibrillators, this would allow for simultaneous ECG signal analysis and administration of precordial compressions and ventilations, resulting in significant clinical improvement to the treatment of cardiac arrest patients. While we have previously demonstrated the feasibility of such artifact removal using a multichannel Wiener filter, we here focus on an efficient matching pursuit-like approach making practical real-time implementations of such a scheme feasible for a wide variety of sampling rates and filter lengths. Using more realistic data than what have been previously available, we present evidence showing the excellent performance of our approach and quantify its computational complexity.
机译:我们提出了一种有效的计算方法,并在数值上可靠地解决了在紧急情况下从人心电图(ECG)中去除由于心前区压迫和通气引起的伪影的问题。结合到自动体外除颤器中,这将允许同时进行ECG信号分析以及心前区压迫和通气管理,从而对心脏骤停患者的治疗产生重大的临床改善。尽管我们先前已经证明了使用多通道维纳滤波器去除这种伪影的可行性,但我们这里集中于一种高效的匹配追踪样方法,使这种方案的实际实时实现对于各种采样率和滤波器长度都是可行的。使用比以前更实际的数据,我们提供的证据表明了我们方法的出色性能并量化了其计算复杂性。

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