Key result
Novel adaptive filter improves thoracic bio-impedance signal quality and convergence speed with lower computational complexity.
Why the study?
Thoracic electrical bio-impedance signals in clinical environments are masked by physiological and non-physiological phenomena, complicating stroke volume analysis and requiring computationally efficient processing for wearable healthcare tools.
A proposed regressor clipped normalised higher order filter improves thoracic electrical bio-impedance signal enhancement with reduced computational complexity for remote healthcare monitoring.
Hypothesis-generating for remote bio-impedance monitoring; prospective clinical validation required before adoption.
Analysis of thoracic electrical bio-impedance (TEB) facilitates heart stroke volume in sudden cardiac arrest. This Letter proposes several efficient and computationally simplified adaptive algorithms to display high-resolution TEB component. In a clinical environment, TEB signal encounters with various physiological and non-physiological phenomenon, which masks the tiny features that are important in identifying the intensity of the stroke. Moreover, computational complexity is an important parameter in a modern wearable healthcare monitoring tool. Hence, in this Letter, the authors propose a new signal conditioning technique for TEB enhancement in remote healthcare systems. For this, the authors have chosen higher order adaptive filter as a basic element in the process of TEB. To improve filtering capability, convergence speed, to reduce computational complexity of the signal conditioning technique, the authors apply data normalisation and clipping the data regressor. The proposed implementations are tested on real TEB signals. Finally, simulation results confirm that proposed regressor clipped normalised higher order filter is suitable for a practical healthcare system.
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Rahman et al. (2016) conducted a letter in Sudden cardiac arrest (context for TEB). Regressor clipped normalised higher order filter was evaluated on TEB signal enhancement and computational complexity. A proposed regressor clipped normalized higher order filter improved filtering capability and convergence speed while reducing computational complexity for thoracic electrical bio-impedance signals.
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