Title :
Real-Time Closed-Loop Control of Human Heart Rate and Blood Pressure
Author :
Sarabadani Tafreshi, Amirehsan ; Klamroth-Marganska, Verena ; Nussbaumer, Silvio ; Riener, Robert
Author_Institution :
Sensory-Motor Syst. Lab., ETH Zurich, Zurich, Switzerland
Abstract :
Prolonged bed rest has significant negative impacts on the human body, particularly on the cardiovascular system. To overcome adverse effects and enhance functional recovery in bedridden patients, the goal is to mobilize patients as early as possible while controlling and stabilizing their cardiovascular system. In this paper, we used a robotic tilt table that allows early mobilization by modulating body inclination and automated leg movement to control the cardiovascular variables heart rate (HR) or systolic or diastolic blood pressures (sBP, dBP). The design and use of a control system is often done with a simulation model of a plant, but the time-variant and nonlinear nature of the cardiovascular system and subject-specific responses to external stimuli makes the modeling and identification challenging. Instead, we implemented an intelligent self-learning fuzzy controller that does not need any prior knowledge about the plant. The controller modulates the body inclination in order to adjust the cardiovascular parameters, with leg movement considered as a perturbing factor to the controller. The controller performance was evaluated in six healthy subjects. Measured mean values of HR, sBP, and dBP differed from desired reference values by 1.11 beats/min, 5.10 mmHg, and 2.69 mmHg, respectively. With this new control strategy, HR and dBP could be successfully controlled within medically tolerable ranges (deviations <; 2.5 beats/min and <; 5 mmHg from desired values, respectively). The control of sBP was less accurate; the results suggest that simultaneous control of multiple input stimuli rather than only adaptive automatic change of the tilt table angle might improve the controllability.
Keywords :
blood pressure measurement; cardiovascular system; closed loop systems; fuzzy control; learning (artificial intelligence); medical robotics; patient rehabilitation; real-time systems; automated leg movement; blood pressure; body inclination; cardiovascular system; cardiovascular variables heart rate; diastolic blood pressures; human heart rate; intelligent self-learning fuzzy controller; patient mobilization; prolonged bed rest; real-time closed-loop control; robotic tilt table; systolic blood pressures; Blood pressure; Frequency measurement; Heart rate; Physiology; Standards; Steady-state; Actuated tilt table; actuated tilt table; bed rest; bed-rest; cardiovascular system; early mobilization; fuzzy control; intensive care; rehabilitation; reinforcement learning; reinforcement learning, rehabilitation;
Journal_Title :
Biomedical Engineering, IEEE Transactions on
DOI :
10.1109/TBME.2015.2391234