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Sparse coding of cardiac signals for automated component selection after blind source separation

机译:盲源分离后心脏信号的稀疏编码以自动选择组件

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Wearable sensor technology like textile electrodes provides novel ambulatory health monitoring solutions but most often goes along with low signal quality. Blind Source Separation (BSS) is capable of extracting the Electrocardiogram (ECG) out of heavily distorted multi channel recordings. However, permutation indeterminacy has to be solved, i.e. the automated selection of the desired BSS output. To that end we propose to exploit the sparsity of the ECG modeled as a spike train of successive heartbeats. A binary code derived from a two-item dictionary {peak, no peak} and physiological a-priori information temporally represents every BSS output component. The (best) ECG component is automatically selected based on a modified Hamming distance comparing the components' code with the expected code behavior. Non-standard ECG recordings from ten healthy subjects performing common motions while wearing a sensor garment were subsequently processed in 10 s segments with spatio-temporal BSS. Our sparsity-based selection RCODE achieved 98.1% heart beat detection accuracy (ACC) by selecting a single component each after BSS. Traditional component selection based on higherorder statistics (e.g. skewness) achieved only 67.6% ACC.
机译:诸如纺织电极之类的可穿戴传感器技术可提供新颖的门诊健康监控解决方案,但大多数情况下信号质量较低。盲源分离(BSS)能够从严重失真的多通道记录中提取出心电图(ECG)。然而,必须解决排列不确定性,即,自动选择所需的BSS输出。为此,我们建议利用ECG的稀疏性,将其建模为连续心跳的峰值序列。从两个项目的字典{peak,no peak}和生理先验信息导出的二进制代码在时间上代表每个BSS输出组件。根据修改后的汉明距离,将(最好的)ECG组件自动选择,将其代码与预期的代码行为进行比较。随后使用时空BSS在10 s的片段中处理了来自十名健康受试者在穿着传感器衣服时执行共同动作的非标准ECG记录。我们基于稀疏性的选择RCODE通过在BSS之后每个都选择一个组件来实现98.1%的心跳检测准确性(ACC)。基于高阶统计量(例如偏度)的传统组件选择仅实现了67.6%的ACC。

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