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Updated: Oct 2, 2026

Acquisition and Semi-Automated Analysis of Respiratory Muscle Surface Electromyography
Published on: January 24, 2025
Respiratory motion estimation from ECG using dipole position tracking
Amaël Mombereau1, Josselin Duchateau2, Michel Haïssaguerre2
1Univ. Bordeaux, INSERM, CRCTB, U-1045, IHU Liryc, Bordeaux, F-33000, France.
Abstract:
Respiration affects the electrocardiogram (ECG) through heart motion and changes in thoracic conductivity, leading to the development of ECG-derived respiration (EDR). Here, we propose a dipole-based EDR approach that tracks the heart's beat-to-beat rigid-body motion from standard 12-lead ECG recordings and encodes each beat as a six-dimensional log-SE(3) descriptor. An unsupervised Rayleigh-quotient formulation extracts a respiratory surrogate by maximizing spectral energy in the respiratory band (0.1-0.4 Hz) without requiring a reference signal. A cohort of 80 participants was analyzed, including healthy volunteers (n=51, 49% women) and patients with ischemic heart disease (n=29, 21% women). Performance was evaluated against amplitude-based methods (QRSpk and QRS integral) and a VCG-based approach using Pearson correlation (CC) and breathing rate error (MAE). The proposed method achieved median CC=0.87 and MAE=0.7 BPM, comparable to VCG (CC=0.85, MAE=0.89 BPM) and superior to amplitude-based methods (CC=0.75-0.78, MAE=0.93-1.24 BPM; p<0.05). Performance was significantly reduced for all methods in ischemic patients (p<0.0001), and a significant sex-pathology interaction was observed (p<0.01). However, the dipole method remained the most accurate. A dedicated 128-electrode pipeline revealed a dominant cranio-caudal cardiac displacement of 7.6 mm consistent with imaging literature, and a sequential activation of all six degrees of freedom across the respiratory cycle. This framework provides a robust, physiologically grounded approach for respiratory estimation from ECG, with potential applications in clinical monitoring and non-invasive characterization of cardio-thoracic dynamics.

