2016
DOI: 10.3233/bme-161583
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An approach to predict Sudden Cardiac Death (SCD) using time domain and bispectrum features from HRV signal

Abstract: In this paper we present a method to predict Sudden Cardiac Arrest (SCA) with higher order spectral (HOS) and linear (Time) features extracted from heart rate variability (HRV) signal. Predicting the occurrence of SCA is important in order to avoid the probability of Sudden Cardiac Death (SCD). This work is a challenge to predict five minutes before SCA onset. The method consists of four steps: pre-processing, feature extraction, feature reduction, and classification. In the first step, the QRS complexes are d… Show more

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Cited by 14 publications
(20 citation statements)
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“…Shen et al [28] applied 1Hz to 50Hz IIR filter to remove baseline wander in their hardware while Raka et al [22] chose different bandwidth of 0.5Hz to 45Hz for the filter. Houshyarifar et al [9] and Ebrahimzahed et al [12] used two stages moving average filter while Devi et al [6] and Nayan et al [29] have used Fast Fourier Transform to identify and remove the noise. Meanwhile, Acharya et al [10] have used wavelet technique for denoising processes.…”
Section: Signal Pre-processingmentioning
confidence: 99%
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“…Shen et al [28] applied 1Hz to 50Hz IIR filter to remove baseline wander in their hardware while Raka et al [22] chose different bandwidth of 0.5Hz to 45Hz for the filter. Houshyarifar et al [9] and Ebrahimzahed et al [12] used two stages moving average filter while Devi et al [6] and Nayan et al [29] have used Fast Fourier Transform to identify and remove the noise. Meanwhile, Acharya et al [10] have used wavelet technique for denoising processes.…”
Section: Signal Pre-processingmentioning
confidence: 99%
“…Various sample length is used to extract the ECG features in the available SCD detection and prediction models. Normally one-minute sample starting right before the event of VFib to allow minute-by-minute prediction for up to 3 hours recording [9,10,12,22]. However, Vanitha and Sheela et al [7,8] have used overlapping 10-minute sample window to analyze half an hour SDDB recordings while Devi et al [6] used four minutes sample duration for the same purpose.…”
Section: Signal Pre-processingmentioning
confidence: 99%
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“…Where X (f) is the Fourier transform of x (t) and * represents conjugate complex. As seen from (2), bispectrum contains the information about the relation of phase between the frequency components at f1, f2 and f1 + f2 [10]. Bispectrum can be estimated through several methods such as biased, parametric, direct and indirect methods.…”
Section: Bispectrum Analysismentioning
confidence: 99%