Key result
The Blaschke unwinding adaptive Fourier decomposition based signal compression algorithm achieved high compression efficiency (average CR 42.27 at N=7) while accurately preserving R peak information.
A novel Blaschke unwinding AFD-based algorithm effectively compresses ECG signals while preserving critical R-peak information for clinical analysis.
May support efficient ECG data handling; leaves open clinical validation before practice adoption.
This paper presents a novel signal compression algorithm based on the Blaschke unwinding adaptive Fourier decomposition (AFD). The Blaschke unwinding AFD is a newly developed signal decomposition theory. It utilizes the Nevanlinna factorization and the maximal selection principle in each decomposition step, and achieves a faster convergence rate with higher fidelity. The proposed compression algorithm is applied to the electrocardiogram signal. To assess the performance of the proposed compression algorithm, in addition to the generic assessment criteria, we consider the less discussed criteria related to the clinical needs-for the heart rate variability analysis purpose, how accurate the R-peak information is preserved is evaluated. The experiments are conducted on the MIT-BIH arrhythmia benchmark database. The results show that the proposed algorithm performs better than other state-of-the-art approaches. Meanwhile, it also well preserves the R-peak information.
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Tan et al. (2018) studied Arrhythmia (ECG signal compression) (n=48). Blaschke unwinding adaptive Fourier decomposition (AFD) based signal compression algorithm vs. Other state-of-the-art compression algorithms was evaluated on Compression performance (Compression Ratio, Percentage Root-Mean-Square Difference) and QRS detection accuracy. The Blaschke unwinding adaptive Fourier decomposition based signal compression algorithm achieved high compression efficiency (average CR 42.27 at N=7) while accurately preserving R peak information.
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