Why the study?
Minimally invasive mitral valve repair is complex and exposes patients and staff to radiation, but automating these procedures using continuum robots is hindered by nonlinear behavior that creates modeling and control challenges.
Does a model-based position control method improve trajectory following and target position accuracy in a continuum robot for minimally invasive mitral valve repair?
Does a model-based position control method improve trajectory following and target position accuracy in a continuum robot for minimally invasive mitral valve repair?
A novel model-based position control method for a continuum robot demonstrated high accuracy and computational efficiency in a cardiovascular phantom, showing potential for automating minimally invasive mitral valve repair.
Supports robotic mitral repair development; leaves open human trials before any clinical use.
Minimally invasive mitral valve repair offers significant advantages over traditional open-heart surgery, yet it remains a complex procedure that exposes both patients and medical staff to radiation. To address these challenges, a significant research interest is growing in automating these manual procedures. Continuum robots represent a promising approach, thanks to their ability to navigate confined spaces. However, their nonlinear behavior presents challenges in modeling and control. In this study, we developed a robust position control method for a variable-length tendon-driven continuum robot. We designed a control system that effectively tracks the desired target positions by employing a constant curvature model and a Jacobian-based control algorithm with real-time position feedback. We assessed the stability of our system through Lyapunov analysis, demonstrating reliable convergence to these target positions. Experimental validation conducted in a cardiovascular phantom demonstrated significant improvements with respect to the state of the art. Our method achieved a trajectory following error of approximately 2.43 mm [1.63, 3.23] and a target position error of about 1.92 mm [1.73, 3.13]. Moreover, the computation time per trajectory point was reduced to approximately 0.04 seconds, highlighting enhanced computational efficiency. These results showcase improved accuracy and efficiency in minimally invasive mitral valve repair procedures.
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Bicchi et al. (2025) studied this question.
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