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Filter and processing method to improve R-peak detection for ECG data with motion artefacts from wearable systems

机译:具有可穿戴系统运动伪影的ECG数据的R峰检测的滤波和处理方法

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The electrocardiogram (ECG) is one of the most reliable information sources for assessing cardiovascular health and training success. Since the early 1990s, the heart rate variability (HRV), namely the variation from beat to beat, has become the focus of investigations as it provides insight into the complex interplay of body circulation and the influence of the autonomic nervous system on heartbeats. However, HRV parameters during physical activity are poorly understood, mostly due to the challenging signal processing in the presence of motion artefacts. To derive HRV parameters in time (heart rate (HR)) and frequency domains (high frequency (HF), low frequency (LF)), it is crucial to reliably detect the exact position of the R-peaks. We introduce a full algorithm chain where a sophisticated filtering technique is combined with an enhanced R-peak detection that can cope with motion artefacts in ECG data originating from physical activity.
机译:心电图(ECG)是评估心血管健康和培训成功的最可靠的信息来源之一。自1990年代初以来,心率变异性(HRV)(即每次跳动之间的变化)已成为研究的重点,因为它提供了对人体循环的复杂相互作用以及自主神经系统对心跳影响的洞察力。但是,人们很少了解体育锻炼过程中的HRV参数,这主要是由于存在运动伪影的情况下具有挑战性的信号处理所致。为了在时间(心率(HR))和频域(高频(HF),低频(LF))中导出HRV参数,可靠地检测R峰的确切位置至关重要。我们介绍了完整的算法链,其中将复杂的过滤技术与增强的R峰检测相结合,可以应对源自体力活动的ECG数据中的运动伪像。

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