Key result
The fixed-lag Kalman smoother outperformed other power line interference filters, achieving shorter step response settling times and higher signal-to-noise ratios with minimal ECG distortion.
Why the study?
Does a fixed-lag Kalman smoother improve the filtering of power line interference in ECG recordings compared to traditional notch and adaptive filters?
Does a fixed-lag Kalman smoother improve the filtering of power line interference in ECG recordings compared to traditional notch and adaptive filters?
A fixed-lag Kalman smoother provides superior filtering of power line interference in ECG recordings with minimal waveform distortion compared to traditional notch and adaptive filters.
May enhance ECG filtering in clinical workflows; leaves open prospective validation before routine adoption.
OBJECTIVE: Filtering power line interference (PLI) from electrocardiogram (ECG) recordings can lead to significant distortions of the ECG and mask clinically relevant features in ECG waveform morphology. The objective of this study is to filter PLI from ECG recordings with minimal distortion of the ECG waveform. METHODS: In this paper, we propose a fixed-lag Kalman smoother with adaptive noise estimation. The performance of this Kalman smoother in filtering PLI is compared to that of a fixed-bandwidth notch filter and several adaptive PLI filters that have been proposed in the literature. To evaluate the performance, we corrupted clean neonatal ECG recordings with various simulated PLI. Furthermore, examples are shown of filtering real PLI from an adult and a fetal ECG recording. RESULTS: The fixed-lag Kalman smoother outperforms other PLI filters in terms of step response settling time (improvements that range from 0.1 to 1 s) and signal-to-noise ratio (improvements that range from 17 to 23 dB). Our fixed-lag Kalman smoother can be used for semi real-time applications with a limited delay of 0.4 s. CONCLUSION AND SIGNIFICANCE: The fixed-lag Kalman smoother presented in this study outperforms other methods for filtering PLI and leads to minimal distortion of the ECG waveform.
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Warmerdam et al. (2016) studied Power line interference in ECG recordings (n=10). Fixed-lag Kalman smoother vs. Fixed-bandwidth notch filter, LMS based filter (IAC), and linear Kalman filter was evaluated on Step response settling time and output signal-to-noise ratio (SNR). The fixed-lag Kalman smoother outperformed other power line interference filters, achieving shorter step response settling times and higher signal-to-noise ratios with minimal ECG distortion.
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