Please use this identifier to cite or link to this item: https://doi.org/10.48441/4427.3785
Publisher DOI: 10.3390/s26123673
Title: Beyond single-lead ECG-derived respiration analysis - use of vectorcardiograms from the EASI-system for breathing frequency estimation : a feasibility study
Language: English
Authors: Kuon, Felix Maximillian 
Bohlen, Lucas 
Jacobsen, Laura 
Riemenschneider, Markus 
Lorenz, Jürgen 
Editor: Star, Alexander 
Wagner, Patrick 
Kintzios, Spyridon 
Keywords: EASI lead system; electrocardiogram-derived respiration (EDR); heart rate variability (HRV); paced breathing; vectorcardiography (VCG)
Issue Date: 9-Jun-2026
Publisher: MDPI
Journal or Series Name: Sensors 
Volume: 26
Issue: 12
Abstract: 
Precise respiration assessment is crucial for heart rate variability (HRV) interpretation as respiratory components—particularly respiratory sinus arrhythmia (RSA)—provide essential information on vagally mediated regulation. Conventional single-lead electrocardiogram-derived respiration (EDR) methods measure the amplitude modulation of the QRS-waveform caused by respiratory chest movements. This causes a displacement of the electrical heart axis in relation to the ECG lead axis, typically within the 2D frontal plane of the Einthoven electrode montage. Another approach is based on heartbeat acceleration and deceleration during respective inspiration and expiration causing RR interval modulation. However, interval-based methods depend on the complexity of sympathovagal factors that affect RSA. The present feasibility study accounts for the 3D rotational movement of the electrical heart axis during the respiratory cycle and avoids non-respiratory neuromodulatory confounds. The beat-to-beat cardiac rotation was extracted from Frank-XYZ coordinates reconstructed via a four-electrode EASI device. In a pilot study with data from 19 healthy adults performing acoustically paced breathing (6–18 bpm), three surrogates ((Formula presented.), (Formula presented.), (Formula presented.)) were compared using a unified Python 3.11.13 pipeline (3D VCG R-peak detection, multivariate Mahalanobis artifact correction, wavelet-based analysis) against a synthetic reference derived from the instructed breathing schedule. The results demonstrated a consistently lower estimation error and higher reference-based signal-to-noise ratio (refSNR), measuring spectral alignment with the paced-breathing trajectory for (Formula presented.) and achieving a mean refSNR of 6.01 dB (vs. 4.62 dB for (Formula presented.) and 3.20 dB for (Formula presented.)) and a mean absolute estimation error of 0.016 Hz (vs. 0.050 Hz and 0.032 Hz, respectively). Notably, (Formula presented.) and (Formula presented.) performance slightly improved at higher heart rates, consistent with the interpretation that higher cardiac sampling density benefits spectral resolution for chest movement-based methods, whereas (Formula presented.) showed no significant heart rate dependence. Furthermore, (Formula presented.) was compared with the EDR results obtained by applying the Kubios-HRV Premium software (version 3.5.0). Kubios-EDR yielded higher precision at elevated breathing frequencies, whereas (Formula presented.) outperformed Kubios-EDR at breathing rates below 10 bpm—a range that is particularly relevant for vagally activating slow breathing protocols or treatments. Future work should validate this method using a direct respiration measurement under spontaneous natural breathing conditions.
URI: https://hdl.handle.net/20.500.12738/20154
DOI: 10.48441/4427.3785
ISSN: 1424-8220
Review status: This version was peer reviewed (peer review)
Institute: Fakultät Life Sciences 
Type: Article
Additional note: Kuon, F.M.; Bohlen, L.; Jacobsen, L.; Riemenschneider, M.; Lorenz, J. Beyond Single-Lead ECG-Derived Respiration Analysis: Use of Vectorcardiograms from the EASI-System for Breathing Frequency Estimation—A Feasibility Study. Sensors 2026, 26, 3673. https://doi.org/10.3390/s26123673
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