Heart beat detection in multimodal physiological data using a hidden semi-Markov model and signal quality indices.

Physiol Meas

Institute of Biomedical Engineering, Department of Engineering Science, University of Oxford, Wellington Square, Oxford OX1 2JD, UK.

Published: August 2015

AI Article Synopsis

  • Accurate heart beat detection in ICU patients is crucial for monitoring health and identifying abnormalities, primarily using ECG signals, but false alarms due to noise and missing data are common.
  • Integrating data from other signals like arterial blood pressure (ABP) and photoplethysmogram (PPG) can help reduce these false alarms.
  • The hidden semi-Markov model (HSMM) was developed to effectively detect heartbeats by analyzing features from ECG and ABP data, achieving an impressive 89.13% accuracy in a key dataset.

Article Abstract

Accurate heart beat detection in signals acquired from intensive care unit (ICU) patients is necessary for establishing both normality and detecting abnormal events. Detection is normally performed by analysing the electrocardiogram (ECG) signal, and alarms are triggered when parameters derived from this signal exceed preset or variable thresholds. However, due to noisy and missing data, these alarms are frequently deemed to be false positives, and therefore ignored by clinical staff. The fusion of features derived from other signals, such as the arterial blood pressure (ABP) or the photoplethysmogram (PPG), has the potential to reduce such false alarms. In order to leverage the highly correlated temporal nature of the physiological signals, a hidden semi-Markov model (HSMM) approach, which uses the intra- and inter-beat depolarization interval, was designed to detect heart beats in such data. Features based on the wavelet transform, signal gradient and signal quality indices were extracted from the ECG and ABP waveforms for use in the HSMM framework. The presented method achieved an overall score of 89.13% on the hidden/test data set provided by the Physionet/Computing in Cardiology Challenge 2014: Robust Detection of Heart Beats in Multimodal Data.

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Source
http://dx.doi.org/10.1088/0967-3334/36/8/1717DOI Listing

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