Adaptive control of cardiac rhythms
Gabriel da Silva Lima1, Marcelo Amorim Savi2, Wallace Moreira Bessa3
1Turku Intelligent Embedded and Robotic Systems Lab, Faculty of Technology, University of Turku, Turku, Finland.
Insights
This study developed an adaptive controller to regulate abnormal cardiac rhythms using a mathematical heart model. The controller effectively normalizes electrocardiogram (ECG) signals, reducing errors and control effort without prior system knowledge.
Area of Science:
- Cardiovascular Physiology
- Biomedical Engineering
- Control Systems
Background:
- Cardiac rhythms are crucial for cardiovascular physiology, typically monitored via electrocardiograms (ECGs).
- Pathological cardiac rhythms can arise from disruptions in the heart's electrical conduction system (SA, AV, HP nodes).
- Existing methods often require detailed system knowledge, limiting applicability.
Purpose of the Study:
- To investigate the control of cardiac rhythms to restore normal heart function from pathological states.
- To develop and evaluate an adaptive controller for regulating ECG signals.
- To assess the controller's performance in the presence of inter- and intrapatient variability.
Main Methods:
- Utilized a mathematical model of the heart as a network of three coupled nonlinear oscillators.
- Induced pathological rhythms via external stimulation of the sinoatrial (SA) node.
- Designed an adaptive controller based on Lyapunov stability principles, acting on the SA node signal.
- Evaluated controller performance assuming the model was unknown to the controller (simulated environment).
Main Results:
- The adaptive controller reduced tracking error by 20% and control effort by 3% compared to conventional feedback.
- The controller successfully normalized abnormal ECG signals, guiding them towards expected healthy behavior.
- Performance was maintained despite inter- and intrapatient variability, without requiring prior system information.
Conclusions:
- An adaptive controller can effectively regulate ECG signals to prevent critical cardiac events.
- This approach offers a robust method for managing cardiac rhythm disorders, adaptable to individual patient variations.
- The controller's ability to function without prior system knowledge enhances its clinical potential.
Abstract:
Cardiac rhythms are related to heart electrical activity, being the essential aspect of the cardiovascular physiology. Usually, these rhythms are represented by electrocardiograms (ECGs) that are useful to detect cardiac pathologies. Essentially, the heart activity starts in the sinoatrial node (SA) node, the natural pacemaker, propagating to the atrioventricular node (AV), and finally reaching the His-Purkinje complex (HP). This paper investigates the control of cardiac rhythms in order to induce normal rhythms from pathological responses. A mathematical model that presents close agreement with experimental measurements is employed to represent the heart functioning. The adopted model comprises a network of three nonlinear oscillators that represent each one of the cardiac nodes, connected by delayed couplings. The pathological behavior is induced by an external stimulus in the SA node. An adaptive controller is proposed acting in the SA node considering an strategy based on the signal obtained by the natural pacemaker and its regularization. The incorporation of adaptive compensation in a Lyapunov-based control scheme allows the compensation for the unknown dynamics. The controller ability to deal with interpatient variability is evaluated by assuming that the heart model is not available to the controller design, being used only in the simulator to assess the control performance. Results show that the adaptive term can reduce the control effort by around 3% while reducing the tracking error by 20%, when compared to the conventional feedback approach. Additionally, the controller can avoid abnormal rhythms, turning the ECG closer to the expected normal behavior and preventing critical cardiac responses. Therefore, this work demonstrates that an adaptive controller can be used to regulate the ECG signal without prior information about the system and disregarding inter- and intrapatient variability.
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