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A Wavelet Approach to Detecting Electrocautery Noise in the ECG

机译:一种检测心电图电烙噪声的小波方法

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A software approach has been developed for detecting electrocautery noise in the electrocardiogram (ECG) using a wavelet decomposition of the signal. With this approach, a clinical monitoring expert system can be forewarned of potential artefacts in trend values derived from the ECG, allowing it to proceed with caution when making decisions based on these trends. In 15 operations spanning 38.5 hours of ECG data, we achieved a false positive rate of 0.71% and a false negative rate of 0.33%. While existing hardware approaches detect the source of the noise without any ability to assess its impact on the measured ECG, our software approach detects only the presence of noise in the signal itself. Furthermore, the software approach is cheaper and easier to implement in a clinical environment than existing hardware approaches.
机译:已经开发了一种软件方法,用于使用信号的小波分解检测心电图(ECG)中的电烙噪声。通过这种方法,可以预先前瞻临床监测专家系统,潜在的人工制品源于来自心电图的趋势价值,允许它在基于这些趋势做出决策时谨慎行事。在跨越38.5小时的ECG数据的15个操作中,我们实现了0.71%的假阳性率,假负率为0.33%。虽然现有硬件方法检测噪声的源,但无需任何能够评估其对测量的ECG的影响,而我们的软件方法仅检测信号本身中的噪声的存在。此外,软件方法比现有的硬件方法更便宜,更容易实现在临床环境中。

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