2019
DOI: 10.48550/arxiv.1905.10856
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Robust probabilistic modeling of photoplethysmography signals with application to the classification of premature beats

Abstract: In this paper we propose a robust approach to model photoplethysmography (PPG) signals. After decomposing the signal into two components, we focus the analysis on the pulsatile part, related to cardiac information. The goal is to enable a deeper understanding of the information contained in the pulse shape, together with that derived from the rhythm. Our approach combines functional data analysis with a state space representation and guarantees fitting robustness and flexibility on stationary signals, without … Show more

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